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Traditional Ethnomedical and Ethnobotanical Applications and Uses of Piper Nigrum

1 - Department of Physiology, The “Carol Davila” University of Medicine and Pharmacy, Bucharest, Romania

2 - Akadimia of Ancient Greek and Traditional Chinese Medicine, Athens, Greece

3 - Elkyda, Research & Education Centre of Charismatheia, Athens, Greece

4 - Pan-Hellenic Organization of Educational Programs (P.O.E.P.), Athens, Greece

5 - Tilburg Institute for Law, Technology, and Society (TILT), Tilburg University, DE Tilburg, The Netherlands

6 - Corvers Greece IKE, Athens, Greece

7 - Department of Gynecology, The “Carol Davila” University of Medicine and Pharmacy, Bucharest, Romania

8 - Panait Sirbu Obstetrics and Gynaecology Hospital Bucharest, Bucharest, Romania

9 - The “Carol Davila” University of Medicine and Pharmacy, Bucharest, Romania

10 - Department of General Surgery, The “Carol Davila” University of Medicine and Pharmacy, Bucharest, Romania

11 - Department of General Surgery, “Dr. Carol Davila” Clinical Hospital of Nephrology, Bucharest, Romania

12 - Department of Research, “Dr. Carol Davila” University Central Military Emergency Hospital, Bucharest

13 - Discipline of Dermatology, The “Carol Davila” University of Medicine and Pharmacy, Bucharest, Romania

Correspondence: Argyrios Periferakis, argyrisperiferakis@gmail.com

DOI: https://doi.org/10.55453/rjmm.2025.128.4.3

Received: 6 March 2025

Revised: 23 April 2025

Accepted: 13 May 2025

Abstract:

Ethnomedicine and ethnobotany have been at the forefront of current scientific focus. The focus of this review is Piper nigrum, for which there exists a wide host of traditional ethnomedical and ethnobotanical applications, recorded mostly from India and the surrounding regions where black pepper is native. These applications cover a wide range of pathologies, including cardiovascular, pulmonary, gastrointestinal, gynaecological, endocrine, integumentary and neurological, and viral diseases and colds. While some of these applications are confirmed by modern research, the majority have not been tested using modern scientific methods, and perhaps many more applications remain to be documented. Finally, it must be noted that some interesting non- medical applications comprise the application of black pepper, as an insecticide/larvicide, are worth further consideration, especially given the newer policies at a European and international level.

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Citation:

Periferakis A, Troumpata L, Periferakis K, Adalis GM, Periferakis AT, Georgatos-Garcia S, Maier C, Costache AC, Garofil DN, Costache DO. Traditional Ethnomedical and Ethnobotanical Applications and Uses of Piper Nigrum. R. J. Mil. Med. 2025, 128(4): 286-303; https://doi.org/10.55453/rjmm.2025.128.4.3

Article content:

INTRODUCTION

Herbs and spices have been used for medicinal, preservative, and culinary purposes since antiquity in numerous traditional medicine systems [1-4]. In recent years, there has been an increase in research efforts, dealing both with recording ethnomedical and ethnobotanical practices across different regions, and verifying the reported uses by employing modern analytical and experimental methods [5-8]. The focus of this review is black pepper ( P. nigrum ), which has a long history of culinary history and use.

In Indian culinary tradition, black pepper has been an integral part since about the 2nd millennium BC, and numerous traditional herbal recipes are mentioned by Venkatachalapathi et al. [9]. Many ethnozoological uses of P. nigrum , combined with other components, also exist in India [10]. Given that Piper nigrum was originally cultivated in India [11], it makes sense that the record of relevant ethnomedicinal and ethnobotanical applications will be rich in this country and in the surrounding regions. Traditional uses of P. nigrum are reported from nearby regions as well.

TRADITIONAL ETHNOBOTANICAL AND ETHNOMEDICINAL APPLICATIONS OF BLACK PEPPER

Applications in Cardiovascular System Pathologies

Regarding cardiovascular pathologies, the fruit of P. nigrum is mixed with other ingredients in a powder in the area of Odisha, India, to combat hypertension [17]. Based on in vivo experiments in rats, it was proven that piperine could normalise hypertension and aortic ring reactivity [62]; therefore, there is at least experimental confirmation of the previous usage. An additional use for cardiovascular pathologies is recorded in the area of Tiruvallur where P. nigrum is used in different formulations, along with other plants and herbs, in these uses [16].

Table 1: Traditional ethnomedical and ethnobotanical applications of P. nigrum.
Part of the Plant Used Country/Region Type of Ailment Year Reference
Cardiovascular Pathologies
Seeds (used to make a decoction with Z. officinale leaves) Maharashtra, India Generalised oedema 2006 [12]
Seeds (used to make a paste with leaves of C. ternatea L.) Tamil Nadu, India Leg swelling 2012 [13]
Seeds (made into paste with other plant parts, and used to make tablets) Odisha, India Haemorrhoids 2012 [14]
Fruits Tamil Nadu, India Good circulation promotion 2015 [15]
Different parts in various formulations Tamil Nadu, India Cardiovascular pathologies 2016 [16]
Fruits (powdered with other ingredients) Odisha, India Hypertension 2018 [17]
Respiratory Pathologies
Seeds (powder for internal administration) Tamil Nadu, India Cough 2007 [18]
Bronchial disorders
Seeds, fruits Orissa, India Cough 2010 [19]
Different parts of the plant (combined with E. cardamomum, A. galanga, Z. officinale, and sugar) Western Ghats, India Asthma 2011 [20]
Seeds (powdered added in V. negundo L. leaf decoction with honey) Odisha, India Cough 2012 [14]
Raw fruits Kerala, India Sinusitis 2015 [21]
Seed (powder combined with dried leaf powder of G. bosvallia) Madhya Pradesh, India Whooping cough 2018 [22]
Gastrointestinal Pathologies
Leaves (leaf juice is mixed with leaf and root bark powder of K. grandiflora, and leaf powder of C. halicacabum) Tamil Nadu, India General gastric problems 2005 [23]
Seeds (dried and swallowed) Tamil Nadu, India Stomach ache 2006 [24]
Seeds (powdered, mixed with root of P. margaritiferum Scott) Odissa, India Dysentery 2010 [25]
Seeds (powdered, with bark decoction of P. xylocarpum)
Fruits (powdered, mixed with T. dioica leaf decoction)
Different parts of the plant (combined with different plants) Western Ghats, India General gastric problems 2011 [20]
Different parts of the plant Tamil Nadu, India General gastric problems 2012 [26]
Fruits (combined with numerous different plants and made into a decoction) Karnataka, India Intestinal ulcers 2012 [27]
Aphthae
Seeds [combined with T. asthmatica (L. f.) Wight & Arn roots, garlic and fruits of S. cumini, made into paste] Karnataka, India Jaundice 2012 [28]
Fruits (in powder form – oral adm.) Assam, India
Seeds (mixed with seeds of B. roxburghii and jaggery, made into tablets) Maharashtra, India
Fruits (combined with C. dactylon and P. amarus leaves – subsequently an extract is produced) Tamil Nadu, India
Seeds Assam, India Indigestion 2013 [29]
Leaves (used to make an infusion) Misiones, Argentina Digestive complaints 2014 [30]
Fruits (macerated with other plants to make pills) Jhenaidah, Bangladesh Ulcer 2014 [31]
Fruits (powder for oral administration) Kerala, India Stomach ache 2014 [32]
Indigestion
Raw fruit Kerala, India Vomiting 2015 [21]
Seeds (crushed and mixed with different ingredients) Phnom Penh, Cambodia Liver pathologies 2017 [33]
Different parts (combined with C. diococcum, C. aromatica, P. nigrum, and P. betle and salt) South Western Ghats, India Stomachache 2018 [9]
Fever, General Anti-Inflammatory Actions, Musculoskeletal Complaints and Stomatological Pathologies
Fruit (powdered with A. vasica Nees) Karnataka, India Fever 2005 [34]
Seeds (mixed with powder of H. isora L., A. sativum rhizome, and gingelly oil, and boiled) Tamil Nadu, India Earache 2007 [18]
Different parts of the plant (combined with A. vasica and honey to form a paste) Western Ghats, India Headache, earache 2011 [20]
Different parts of the plant (combined with E. cardamomum, A. galanga, Z. officinale, and sugar) Headache
Fruits (mixed and macerated with other plant parts and then made into a paste) Jessore & Narail, Bangladesh Bone fractures 2011 [35]
Seeds (paste with Caesalpinia bonduc L. and honey) Odisha, India Fever 2012 [14]
Seeds (powdered and applied with salt) Tamil Nadu, India Toothache 2012 [26]
Fruits (combined with different plant parts, ground and boiled in water) Karnataka, India Gingival wounds 2012 [27]
Seeds [with macerated leaves of E. indica (L.) Gaertn] Rajshahi & Nawabganj, Bangladesh Spinal cord pain 2013 [36]
Seeds [powdered with macerated roots of L. aspera (Willd.) Link] Headache due to fever or dog bite
Seeds (powdered with crushed bark of D. peregrina L.) Chest pain (various causes)
Seeds (powdered with macerated whole S. cordata to create a paste) Abscess
Fruit (decoction or infusion) Batan, Philippines Toothache 2013 [37]
Seeds Assam, India Pain (of various causes) 2013 [29]
Fruit (powdered in C. serratum decoction/root extract) Bengal & Andhra Pradesh, India Fever 2014 [38]
Fruits Tamil Nadu, India Throat pain 2015 [15]
Seeds (paste) Kerala, India Fever, cuts, wounds 2015 [21]
Seeds/fruits (as part of a multi-plant mixture) High Atlas, Morocco Musculoskeletal complaints 2016 [39]
Seeds/fruit (powdered) Khushab, Pakistan Malarial fever and body pain 2017 [40]
Seeds (combined with animal and plant parts) Chota Nagpur Plateau, India Headache 2017 [41]
Fruit (powdered in O. sanctum L. leaf decoction with palmgur) India (different regions) Fever 2018 [42]
Different parts (combined with C. caudata, O. sanctum, C. monophylla, and P. nigrum, combined with milk and honey) South Western Ghats Fever 2018 [9]
Gynaecological and Reproductive System Pathologies
Fruits (mixed with C. pareira L.) Assam, India Post-partum birth control 1982 [43]
Fruits Assam, India Post-partum pain 2008 [44]
Lactation difficulties
Seeds [combined with a paste of T. cordifolia (Willd.)] Eastern Rajasthan, India Leucorrhoea 2010 [45]
Fruit (powdered mixed with the root juice of A. aspera) Narail & Jessore, Bangladesh Menstrual pain 2011 [35]
Fruits (powdered and added to a macerated mixture of different components to make pills) Prolapse of uterus
Seeds (macerated with roots of P. daemia Forsk., and made into pills) Rajshahi district, Bangladesh Menstrual irregularities 2012 [46]
Seeds Assam, India Post-labour ailments 2013 [29]
Fruit (powdered, mixed with P. hydropiper leaf paste and made into pills) Jhenaidah, Bangladesh Menstrual pain 2014 [31]
Seeds (ground with newly-sprouted N. arbor-tristis leaves to make pills) Jammu, India Menorrhagia 2014 [47]
Seeds (powdered with leaves of P. granatum and mixed with water; a filtrate is then produced) Leucorrhoea
Seeds (powdered with eight spoons of S. indicum seeds and jaggery and boiled in water) Oligomenorrhea
Seeds (powdered with two spoons of S. indicum seeds and jaggery and boiled in water) Hypomenorrhoea
Fruit (macerated) Andaman & Nicobar islands, India Lactation difficulties 2015 [48]
Seeds/fruits (as part of a multi-plant mixture) High Atlas, Morocco General gynaecological complaints 2016 [39]
Different parts (combined with A. excelsa, C. aromatica, P. nigrum and P. betle, and coconut oil) South Western Ghats, India Menstrual irregularities 2018 [9]
Neurological Pathologies
Seeds [powdered and added into the flower extract of Calotropis procera (Aiton)] Uttarakhand, India Epilepsy 2013 [49]
Leave extract Thailand Insomnia 2014 [50]
Seeds (made into pills combined with L. interrupta roots)
Seeds (made into pills combined with other plants)
Chota Nagpur Plateau, India Epilepsy 2017 [41]
Seeds (mixed with honey) Insomnia
Endocrine Pathologies
Fruits (crushed with fruits of C. nymphaeifolia Vent.) Jessore, Bangladesh Goiter 2011 [51]
Seeds (added to a juice of three leaves of M. charantia L.) Mauritius Type 2 diabetes mellitus 2014 [52]
Fruits (used to make a decoction) Songkhla, Thailand Diabetic neuropathy 2015 [53]
Different parts (with A. marmelos, C. aromatica, P. betle, coconut oil and honey to make a herbal preparation) South Western Ghats, India Diabetes mellitus 2018 [9]
Ailments of Viral Cause and Common Cold
Different parts of the plant (combined with other plants into a paste) Shimoga, India Common cold 2010 [54]
Seeds, fruits Orissa, India Common cold 2010 [19]
Different parts of the plant (combined with A. vasica and honey to form a paste) Western Ghats, India Common cold 2011 [20]
Seeds (powdered, with dried ginger and palm sugar made into a coffee-like preparation)
Seeds (powdered, added with salt in an omelette)
Tamil Nadu, India Common cold 2012 [26]
Fruits (mixed with multiple plant components in a complex preparation) Rajshahi, Bangladesh Influenza 2012 [55]
Seed (powder with roots of S. virginianum L.) Rajshahi & Nawabganj, Bangladesh Chickenpox 2013 [36]
Leaves (mixed with ginger and honey) Kodagu, India Common cold 2013 [56]
Fruits (powdered for oral administration) Tamil Nadu, India Viral hepatitis 2014 [57]
Seeds (used to make a decoction)
Different parts (combined with E. variegata, O. tenuiflorum, P. nigrum and P. betle, and honey)
South Western Ghats, India Common cold 2018 [9]
Treatment of Parasitic Infections
Fruits (crushed and mixed with ghee) Assam, India Scabies 2006 [58]
Seeds (boiled in milk and water) Eastern Rajasthan, India Malaria 2010 [45]
Leaves (crushed, applied either alone or in combination with other components) Ringworm
Fruits Karnataka, India Scabies 2014 [59]
Treatment of Bites
Seeds (powder for internal administration) Tamil Nadu, India Snake bite 2007 [18]
Seeds (powdered and mixed with butter) Eastern Rajasthan, India Snake bite 2010 [45]
Fruits (macerated with leaves of A. indica) Narail & Jessore, Bangladesh Snake bite 2011 [35]
Fruits (made into a paste with lime juice and the roots of L. indica, and C. medica) Karnataka, India Snake bite 2012 [27]
Fruits (ground with root of D. metel) Jhenaidah, Bangladesh Dog bite 2014 [31]
Flowers (mixed with ghee) Various regions, India Snake bite 2017 [60]
Different parts (combined with C. diococcum, C. aromatica, P. nigrum, and P. betle and salt) South Western Ghats, India Dog bite 2018 [9]
Different parts (combined with T. indica, C. aromatica, P. betle and coconut oil) Scorpion bite
Treatment of Skin Diseases
Seeds (powdered and added to crushed, soaked and filtered P. murex L., mixed with sugar candy) Eastern Rajasthan, India Various skin diseases 2010 [45]
Seeds (macerated with part plants and honey to make pills) Jessore, Bangladesh Various skin diseases 2011 [51]
Fruits (ground with minerals, camphor and other plant parts) Karnataka, India Foot xeroderma 2012 [27]
Fruits (made into a paste with other plant parts and coconut oil, and boiled) Gangrene
Seeds (powder mixed with betel leaf paste) Hyderabad, India Eczema 2013 [61]
Fruits Karnataka, India Dandruff 2014 [59]
Pruritus
Eczema
Bed sores
Boils

Another application regarding the cardiovascular system concerns the use of seeds of P. nigrum , combined with roots of Rawolfia serpentina , dried rhizome of Zingiber officinale , and seeds of Piper longum , all in paste form, which are used to make tablets; these are then administered orally for 10 to 15 days to treat haemorrhoids [14]. In Tamil Nadu, India, the fruit of P. nigrum is used to promote a state of overall health and good circulation [15].

Many ethnomedical and ethnobotanical applications are concerned with swelling and the presence of oedema, either localised or generalised. In many cases, a pathology of cardiovascular nature is the cause of oedema formation [63]. In the district of Amravati, India, a decoction made from the leaves of Zingiber officinale and P . nigrum seeds is taken once daily for 5 days to treat generalised swelling [12]. A paste made from leaves of Clitoria ternatea L. and P. nigrum seeds is applied on swollen legs in Sivagangai district, India [13].

Applications in Respiratory System Pathologies

In the region of Western Ghats, the Kani healers combine Elettaria cardamomum , Alpinia galanga , and Zingiber officinale , combined with sugar, to treat headache and asthma [20]. In the region of Kerala, the raw fruit of black pepper is used to treat sinusitis [21], while the seed and fruit are used to treat cough [19], in Orissa, India. In Odisha, a decoction of black pepper seeds and Vitex negundo L. leaves mixed with honey is taken orally to relieve cough [14].

In Madhya Pradesh, India, a preparation consisting of the dried leaf powder of Glossocardia bosvallia and the powder of P. nigrum seeds is administered to patients with whooping cough [22]. This pathology is caused by Bordetella pertussis , a bacterial pathogen whose presence has been recorded in human populations for centuries. Its importance is currently considered to be of endemic proportions despite the existence of an appropriate vaccine [64].

Applications in Gastrointestinal System Pathologies

For general gastric problems, in the region of Western Ghats, India, P. nigrum is combined with Tephrosia purpurea , Carmona retusa , and Piper hymenophyllum and used by the Kani healers [20]. In the Nadar community of the Atoor village, in Tamil Nadu, black pepper is used to treat gastric complaints of various causes [26]. In another area of Tamil Nadu, gastric complaints are treated with a mixture of P. nigrum leaf juice, leaf powder, and root bark powder of Kleinia grandiflora , and powder from Cardiospermum halicacabum leaves [23].

The powder of Piper nigrum fruits is administered in the Silent Valley of Tamil Nadu, to treat stomach ache and indigestion [32]. In other parts of India, the dried seeds are taken orally [24]. An infusion made from P. nigrum leaves is used to treat digestive problems by Polish migrants in Misiones, Argentina [30].

In Assam, the seeds of the plant are given to treat indigestion [29]. The raw fruit of P. nigrum is given to treat vomiting in regions of Kerala [21]. In the case of a stomach ache, the same preparation as for dog bites is used in some regions of the SW Ghats, India [9]. In Bargarh, the powder of seeds and fruits is combined with different parts of different parts, in various formulations, to treat infantile diarrhoea, in infants and adults, and dysentery [65].

Quite a number of formulation exist regarding the treatment of jaundice; for example, in the region of Karnataka, P. nigrum seeds are mixed with roots of Tylophora asthmatica L., garlic and fruits of Syzygium cumini ; in the region of Assam, the fruits of black pepper are used in powder form; in the region of Maharashtra, its seeds are mixed with jaggery and Balanotis roxburghii seeds; in the region of and Tamil Nadu, its fruits are is combined with ground leaves of Cynodon dactylon and Phyllanthus amarus and an extract is produced [28]. This last use is also mentioned by [66], based on the earlier research of [67]. Regarding liver pathologies, a paste containing crushed black pepper seeds and four other ingredients is used by the Khmer traditional healers in Cambodia [33].

For the treatment of ulcers, in the Jhenaidah district of Bangladesh, leaves of Polygonum hydropiper , nutmeg, a fruit of Terminalia chebula , Carum carvi , and young leaves of Cynodon dactylon are mixed with Piper nigrum , and macerated to prepare a pill mixture [31]. Another therapy, this time specifically for intestinal ulcers, comes from the Uttara Kannada district of India, where the fruits of P. nigrum are used in combination with about 10 different plant parts and made into a water decoction with jaggery to be orally administered; the same preparation is used in the case of aphthae.

Antipyretic and General Anti-Inflammatory Applications and Musculoskeletal Complaints

In the village of the Shimoga district, Karnataka, India, black pepper powder is mixed into the leaf paste of Adhatoda vasica Nees; this formulation is then made into pills for oral administration [34]. In other parts of India, black pepper powder is added to Clerodendrum serratum decoctions or aqueous root extracts, which are then administered once per day orally, for three days [38]. The Kani healers of Western Ghats have a preparation containing P. nigrum , honey, and parts of Alpinia vasica , which they use to cure headaches and earaches; the same tribe uses another formulation to treat headaches as well as asthma [20]. In the region of Assam, seeds of black pepper are used to treat pains in different parts of the body, from different causes [29]. The fruits of the plant are used to treat throat pain in the area of Tamil Nadu [15].

In different regions of India, P. nigrum and palmgur are added to the leaf decoction of Ocimum sanctum L. [42]. A similar preparation is used in the SW Ghats [9]. In the region of Kerala, the paste of the seeds is known to have an anti-inflammatory effect in cases of fever, cuts, and wounds [21]. In the district of Odisha, Caesalpinia bonduc L. is made into a paste along with seeds of P. nigrum , and taken with honey to cure fever [14]. A complex mixture of plant and animal parts, containing black pepper seeds, is made into pills and administered orally once per day, for 10 days, to treat headache in the Chota Nagpur Plateau [41].

For the treatment of earache, in the area of Tamil Nadu, the fruit powder of Helicteres isora L. is boiled with P. nigrum seeds, A. sativum rhizome, and gingelly oil; the resulting fluid is applied locally in the affected area [18].

In Pakistan, black pepper seeds are also known for their antipyretic properties, and also for their action against fever-induced body pain, when the fever is of malarial origin [40].

In Bangladesh, there are many different anti-inflammatory uses of black pepper reported, such as a paste made from black pepper seeds and macerated leaves of Eleusine indica (L.) Gaertn applied once daily for 21 days, in cases of pain in the spinal cord. In the case of severe headache due to fever or dog bites, the macerated roots of non-flowering Leucas aspera (Willd.) Link is mixed with 10-15 powdered seeds of Piper nigrum L., and prepared for oral administration. As a form of abscess treatment, a paste made from macerated Sida cordata (Burm.f.) Borss.Waalk. is mixed with black pepper seed powder and applied around the abscess. Finally, in the case of chest pain of various causes, seed powder is mixed with crushed bark of Diospyros peregrina L., and applied locally, particularly in the cases where the chest pain is caused by gout [36].

In other regions of Bangladesh, in Jessore and Narail, some of the leaves of Morus indica are mixed with rhizomes of Zingiber officinale , 20 fruits of Piper nigrum , and 25-30 drops of oil prepared from seeds of Brassica campestris ; this mixture is then macerated thoroughly and applied as a thick paste over the affected area. A bandage is then placed over the applied paste and changed, along with the mixture, every 7 days [35]. Another preparation, containing P. nigrum as part of a multi-plant mixture called Msahan, is used in the High Atlas region of Morocco [39], to treat general musculoskeletal complaints.

In the Philippines, a decoction or infusion of black pepper is used to cure a toothache [37]. In India, again, to treat toothache, in the Atoor village, powdered pepper and salt are applied in dental cavities [26]. Still on the subject of oral-related pathologies, a complex infusion is made, containing many different plant parts along with P. nigrum fruits , which is then used, when lukewarm, to gargle, when there are gingival complaints [27].

Applications in Gynaecological and Reproductive System Pathologies

One ethnomedicinal preparation containing P. nigrum , as part of a multi-plant mix, comes from the High Atlas region of Morocco, and is named Msahan; it is used generally to treat various types of gynaecological complaints [39]. For post-labour ailments, the seeds of P. nigrum are used in Assam, India [29]; specifically for post-partum pain, the fruit of P. nigrum is administered in Tinsukia district, India [44]. In the same regions, there also exist some ethnomedical recipes for post-partum birth control [68]; for example, in some cases, the fruits of P. nigrum are used, along with pieces of Cissampelos pareira L., and the duration of administration depends on the desired length of contraception [43].

Menorrhagia, i.e., heavy menstrual bleeding, is defined as a bleeding of over 80 mL per menstrual cycle, and usually occurs as a result of uterine abnormalities, endometrial abnormalities, ovulation, or coagulation disorders; the treatments and their effectiveness vary depending on the primary cause [69]. In Udhampur, India, the newly sprouted leaves of Nyctanthes arbor-tristis are ground along with Piper nigrum seeds to make 2 g tablets, which are administered twice per day for two weeks [47].

Oligomenorrhoea is another type of menstrual cycle disorder, where the menstrual cycle lasts more than 35 days and less than 90 days [70], or the total menstrual cycles per year are between 5 and 7 [71]. It is a problem of increasing importance in recent years [72]. The usual causes are associated with endocrine disorders [73]. In Udhampur, India, eight spoons of Sesamum indicum seeds and the powder of Piper nigrum seeds and jaggery are boiled in water until the volume is reduced by half; the produced liquid is taken twice a day, for 15 days, before the due date of each successive period [47]. A similar treatment is used in cases of hypomenorrhea [47], which is defined as a menstrual bleeding of 1-2 days or when the amount of blood is too low, even in the context of a normal duration of menstruation [74].

Leucorrhoea, or fluor albus, may be physiological in women, during menstruation, or pathological; in this latter case, a foul smell, colour changes, and other symptoms such as itching and a burning sensation are present. Usually, pathological leucorrhoea is associated with a urogenital infection [75]. There are two recorded ethnobotanical treatments for leucorrhoea containing P. nigrum in India. The first one is from the region where a paste of Tinospora cordifolia (Willd.) is combined with five seeds of black pepper and administered once in the morning [45]. In the district of Udhampur, India, the leaves of Punica granatum are crushed, the powder from P. nigrum seeds is added, and then both are mixed with water; a filtrate is then produced, which is consumed twice a day [47].

Another common gynaecological problem is menstrual pain, i.e., primary dysmenorrhoea, which affects both young and adult females, especially from a quality-of-life perspective; treatment remains mostly symptomatologic [76]. The Kavirajes tribe in Bangladesh mixes one fruit of P. nigrum with the juice of one root of Achyranthes aspera , and gives it to affected females on an empty stomach once only [35]. In the same country, in the district of Jhenaidah, a paste obtained from the leaves of Polygonum hydropiper is mixed with 1 powdered fruit of Piper nigrum , to make pills that are taken thrice per day for 2-3 days [31].

Menstrual cycle irregularities are a relatively common problem in many populations, affecting between 5% and over 30% of females of reproductive age [77]. There exists several modifiable and non-modifiable risk factors associated with irregular menstruation [78,79]; regardless, irregular menstruation is associated with some pathologies and a decrease in quality of life (80). In the SW Ghats, India, Ailanthus excelsa , Curcuma aromatica , Piper nigrum , and Piper betle are combined with coconut oil and made into a herbal remedy for the cure of menstrual problems [9]. In the Rajshahi district, Bangladesh, the roots of Pergularia daemia Forsk. are macerated with 2-3 seeds of Piper nigrum L. , and then pills are made, which are taken thrice daily [46].

Uterine prolapse, one of the manifestations of pelvic organ prolapse in women, affects over 5% of most female population worldwide [81-83]. In Bangladesh, in the Jessore and Narail districts, the roots of Abutilon indicum , Glycosmis pentaphylla , Eleusine indica , and Amaranthus spinosus , are mixed together and macerated, and then sugar and 21 powdered black pepper fruits are added and 42 pills are prepared from this mixture; 1 pill is taken daily for 14 days [35].

In the case of lactation difficulties, the macerated fruit of P. nigrum is orally administered by the healers of the tribes of Andaman and Nicobar islands, India [48]. In Tinsukia district, the fruit of Piper nigrum is used to increase breast milk production [44].

Applications in Neurological Problems

Of particular note are the mentions of P. nigrum in the context of traditional Indian medicinal approaches to epilepsy. The seed of the plant, when combined with either Laportea interrupta roots or the stem of Cissus repanda , and the roots of Leea macrophylla , and Mucuna pruriens , is used to treat epilepsy in the Chota Nagpur Plateau, in India. Also in the same area, for the treatment of insomnia, P. nigrum is mixed with fresh honey from the Indian honey bee ( Apis cerana indica ), and applied inside the nose [41]. In the region of Uttarakhand, powdered seeds of P. nigrum are mixed with the flower extract of Calotropis procera (Aiton) [49]. Meanwhile, in Thailand, the leaf extract from P. nigrum , which has a demonstrably high melatonin content, is traditionally used to treat insomnia [50].

Applications in Endocrine Pathologies

In Jessore, Bangladesh, the crushed fruits of P. nigrum are combined with crushed fruits of Colocasia nymphaeifolia Vent. and taken twice daily for 7 days, to treat goiter [51]. Goiter can be attributed to a number of causes, the most common of them being iodine deficiency; the worldwide prevalence of goiter is quite high [84].

For the treatment of diabetes mellitus, in the Walayar valley, India, different parts of Aegle marmelos , Curcuma aromatica , Piper nigrum , and Piper betle are combined with coconut oil and honey to make the relevant herbal medicine [9]. Specifically for type 2 diabetes mellitus, a juice from three leaves of Momordica charantia L. and Piper nigrum , to be consumed once a week, is administered [52]. For the treatment of one of the complications of diabetes, diabetic neuropathy-associated numbness, a decoction made from the fruits of black pepper in Songkhla province , Thailand, its administration has a proven hypoglycaemic effect in rats [85].

Applications in Ailments of Viral Cause and Colds

In Bangladesh, the roots of Solanum virginianum L. are powdered and mixed with black pepper seed powder to cure chickenpox [36], an extremely contagious viral disease caused by the Varicella-Zoster virus [86]. In Tamil Nadu, India, the powder from Piper nigrum fruits is administered orally in cases of viral hepatitis [57]; viral hepatitis is attributable in most cases to the five different hepatitis viruses [87].

In the district of Shimoga, India, to treat the common cold, P. nigrum Linn. and Allium sativum Linn. are combined with plants of the Caesalpiniaceae spp. and made into a paste, which is taken orally for 3-4 days [54]. In Tirunelveli hills of Western Ghats, India, P.

nigrum is combined with Alpinia vasica and honey, and the resulting paste is used by Kani traditional healers against the common cold, but also against headache, and earache [20]. In the Karnataka region of India, the leaves of P. nigrum are pounded and mixed with ginger and honey; they are taken for 3-5 days orally to treat the common cold and associated cough [56]. The fruits and seeds of Piper nigrum are used to treat the common cold in Orissa, India [19]. Seed powder is swallowed to treat cough and bronchial disorders in Coimbatore district, India [18].

In the Kanyakumari district, Tamil Nadu, India, black pepper is used in a number of formulations for different ailments. Regarding the treatment of the common cold, black pepper, dried ginger, and palm sugar are mixed along with water to prepare a coffee-like drink, which is then administered to patients; omelettes are also made with powdered pepper and salt and given to such patients [26].

In the Walayar valley of India, a decoction made from seeds of P. nigrum is used as a treatment for cough and cold; another more complex herbal preparation containing black pepper, from the same area, also exists [9].

For the treatment of influenza, caused by the viruses of the Orthomyxoviridae family [88] in Rajshahi district, Bangladesh, a complex preparation comprising 12 fruits of black pepper, along with a number of different plant parts, is used [55].

Applications in the Treatment of Parasitic Infections

There are reports that if black pepper seeds are boiled in milk and water and administered orally, once in the morning for a period of 4 to 5 days, the multiplication of malarial parasites is decreased and splenomegaly regresses [45]. In the case of ringworm infection, the crushed leaves of the plant are rubbed directly onto the parasite; in other cases, the leaves are crushed and mixed with cow milk or mustard oil or crushed with bulblets of garlic and mixed with lemon juice is applied on ringworm to affect a complete cure [45]. Both of these antiparasitic applications are common in the region of Eastern Rajasthan, India.

Scabies is increasingly being diagnosed, at least in certain countries [89]; it is caused by the host-specific human scabies mite (Sarcoptes scabiei varietas hominis). While the infection is not life-threatening on its own, bacterial superinfections are common [90]. In the Central Western Ghats region, India, the fruits of black pepper are used to treat scabies [59]. In Assam, the crushed fruits of P. nigrum are mixed with ghee and the resulting product is orally administered [58].

Applications in the Treatment of Bites

In Eastern Rajasthan, seed powder mixed with butter is given orally against snake bite [45]. Α similar preparation exists for snakebitten animals in Uttaranchal, India [91]. The same recipe is also known in other areas of India, while the paste of P. nigrum flowers with ghee is administered orally for the same purpose [60]. In the region of Karnataka, the fruits of P. nigrum along with the root of Citrus medica and Leea indica , are used to make a paste, mixed with lime juice, which can be both applied externally and swallowed, in cases of snake bite [27]. The powder of black pepper seeds is administered internally to counteract the effects of snake poison, in the Coimbatore district , India [18]. In Bangladesh, several leaves of Aristolochia indica are mixed with 2-3 fruits of Piper nigrum , and are then macerated; finally, a juice is obtained which is administered immediately [35].

Finally, for the treatment of dog bites, in the district of Jhenaidah, fruits of P. nigrum are mixed with roots of Datura metel and ground. The resulting ground mass is administered orally as soon as possible [31]. In the SW Ghats, India, Canthium diacocum is combined with Curcuma aromatica , Piper nigrum , and Piper betle , and salt, to make a preparation used in the case of dog bites [9]. In the same region, P. nigrum is combined with Tamarindus indica , Curcuma aromatica , Piper betle , and coconut oil to treat scorpion bites [9].

Applications in the Treatment of Skin Diseases

Crushed Pedalium murex L. is soaked in water overnight, filtered the next morning, mixed with sugar candy and seed powder of black pepper, and then administered orally as a treatment for various skin diseases in Eastern Rajasthan, India [45]. Again, for skin diseases generically, seeds of P. nigrum are macerated with roots of Rauwolfia serpentina (L.) Benth. ex Kurz and rhizomes of Zingiber officinale Roscoe, with honey added afterwards; in this way, pills are made which are administered daily for 3 weeks, for prophylaxis, in Jessore, Bangladesh [51]. In Central Western Ghats, India, the fruits of P. nigrum are used to treat dandruff, pruritus, eczema, bed sores, and boils [59]. Regarding eczema, a different traditional cure, comprising the powder of black pepper seeds and betel leaf paste, applied daily, is used in Hyderabad, India [61].

For foot xeroderma, the fruit of P. nigrum along with the seed and bark of Semecarpus anacardium , the fruit of Vernonia anthelmintica , the flower bud of Syzygium aromaticum , and the rhizome of Curcuma longa are ground with copper sulphate, camphor tablets, and boiled in cow’s ghee, grease, and paraffin; they are then applied externally [27]. A rather more complex preparation with more than 10 plant parts, comprising also the fruits of P. nigrum , is made into a paste with coconut oil and boiled; it is applied externally after it has cooled [27].

DISCUSSION

Research in phytochemistry has revealed the remarkable therapeutic properties of black pepper. While its antimicrobial, antiparasitic, and antiviral effects are well-known, many other beneficial properties of black pepper extracts have been researched thoroughly, including its anti-inflammatory, anticonvulsant, and analgesic properties [92-94]. It seems that it may be possible to use it, in an adjuvant role, in a mode similar to that of capsaicin [95,96]; perhaps its integration in 3D-printed biomaterials [97-99] as a potent antimicrobial would represent another promising application. Related to inflammation, based on a review of available data, it was concluded that the terpenes present in black pepper, in combination with taurine, can have an anti-atherogenic effect, with parallel antimicrobial and metabolic benefits [100]. Given the extensive number of ethnomedical and ethnobotanical data, as presented in this text, and also discussed by various authors [11,101,102], it can be observed that a number of them are corroborated by recent experimental data, while the effectiveness of others is still to be determined. For example, the addition of piperine in the treatment of jaundice or of various gynecological problems warrants further research. Cutaneous applications may show effectiveness due to the potential of piperine to modulate cellular and humoral components in the skin, as well as interact with inflammatory pathways, in a similar manner as other phytochemicals [103-106]. Other traditional applications of piperine in neurological problems, namely epilepsy, may be of importance, given the prevalence and severity of certain epileptic syndromes [107-109]. In addition to testing the effectiveness and applicability of reported uses, a sustained effort should be made to complete the recording of such uses across different cultures, where black pepper has been used extensively for centuries.

Combination of Black Pepper with Acupuncture

Given that capsaicin has been proven an effective anti-bacterial [110] anti-inflammatory agent when applied at acupuncture points [95], a promising research direction seems to be the application of black pepper cream in similar points, alone or combined with capsaicin and other phytochemicals. Currently, there exist protocols for acupuncture in diabetic patients, with the acupuncture points Zusanli (ST36), Shenshu (BL23), Sanyinjiao (SP6), Yishu (EX-B3), and Zhongwan (CV12) being the most studied; protocols for diabetic neuropathy, one of the main complications, also exist and are presented in detail by Ma et al. [111]. The available evidence indicates that acupuncture is useful as an adjuvant therapy in diabetic patients [112], although the design and completion of more long-term trials is considered necessary.

Continuing on the potential combinations of acupuncture with the traditional applications of black pepper, it is noted that based on the research from the area of Bangladesh, black pepper is applied as a paste in case of gout-related chest pain [36]. Regarding gout and gouty arthritis, there are currently available acupuncture protocols [113-115], while based on a recent case study, it is possible to use acupuncture and moxibustion in the context of renal insufficiency [116]. Notably, recent research has demonstrated the renoprotective potential of piperine in the case of hyperuricemic nephropathy [117].

Black Pepper in Metabolic Diseases

Another interesting research direction concerns the effect of black pepper on glucose and lipid regulation. Regarding glycaemic control, in rats, black pepper extract was found capable of reducing blood glucose [85,118]. Inhibition of aldose reductase was noted by [119]; aldose reductase is the enzyme most associated with the complications of diabetes [120,121]. More recent research results in vitro are also in favour of the hypoglycaemic activity of black pepper [122,123].

These findings are important in the context of increasing incidence and prevalence and complications of diabetes mellitus [124-132], the associated mortality [133-135], the adverse effects of antidiabetic drugs [136-138], and the burden of disease [139-141]. Moreover, intestinal dysbiosis, specifically with Enterobacteriaceae and Candida species, was found to be a risk factor for diabetes mellitus type 1 [131]; piperine is effective against such pathogens and thus it could, hopefully, be used in a dual antiglycemicantimicrobial role.

In rats, the addition of black pepper to their diet had a hypolipidemic effect [142,143]. A more recent successful experiment, performed by administering the methanolic leaf extract of Piper guineense , a species of pepper native to West Africa, in female diabetic rats, indicates that it can be used in the management of diabetic patients, with no adverse biochemical effects [144]. A leaf extract from the same plant species has demonstrated properties beneficial for glycaemic control in vitro [145]. In rats, immunohistochemical and histological data support the antidiabetic potential of black pepper in combination with other compounds [146], although further research is required on the matter. Such experiments are in accordance with a recent trend in evaluating the potential beneficial effects of spices in diabetic patients [147].

Hyperlipidaemia is associated with diabetes mellitus [148,149] and is, in all contexts, a risk factor for morbidity and mortality [150152]. Therefore, the administration of black pepper extracts in general and piperine in particular, in high enough – but tolerable – concentrations, will benefit glycaemic and lipidaemic control both in diabetic and non-diabetic patients. Based on evidence on the interplay between obesity and inflammation [153], and taking into account the evidence in favour of piperine application in cases of obesity and inflammation, it is reasonable to consider the potential of a two-pronged effect of piperine administration in such cases.

Anticarcinogenic Effect of Piperine

It appears that there is a significant corpus of data in favour of anticarcinogenic effects of piperine [11,154-157]. When taking into account the different pathways, like molecular and metabolic, implicated in carcinogenesis (e.g., [158-169]), it is clear that there are numerous potential pathways upon which piperine may act to exert its anticarcinogenic potential. We would like to highlight the potential effectiveness of piperine in the treatment of hepatocellular carcinoma [170], the most prevalent form of liver cancer [171], and other phytochemicals were already shown to be good candidates [172,173]; this raises the possibility of combining piperine and the already used somatostatin analogues [174,175], to increase their effectiveness, in this and other forms of cancers. Piperine could be combined with a number of other natural compounds, which have a known anticarcinogenic potential [168,176] to maximize their efficiency; furthermore, taking into account the potential associations of certain pathogens with cancer [177,178], it could function both in an anticarcinogenic and anti-inflammatory role. The association of diabetes and colorectal cancer [179] also opens new avenues for piperine applications with a dual effect.

Non-medical properties of P. nigrum

Black pepper also has some notable ethnomedical veterinary uses, with the fruit being included in pastes or creams or infusions, to treat blotting [180], constipation, skin infections [181], various ailments [55], and helminthic infections [182] in animals. Other uses are also reported in the literature [183-187].

Perhaps more important are the applications of P. nigrum as a component of insecticides and larvicides. Early evidence of the insecticidal and larvicidal potential of black pepper, piperine, and its derivatives was provided by a number of experiments [188-190]. A later experiment by [191], documented the toxicity of black pepper extract on the rice weevil, Sitophilus oryzae (L.). It was previously observed that when exposed to white pepper, all the Anopheles larvae died [192], and it was then that the potential of this plant as an anti-malarial agent was first realised. A mix of ground black pepper and piperine was found to be very effective against a number of larvae of the same species [193]. Crucially, the mode of action of black pepper extracts is different from that of pyrethroids, meaning that potential resistance to the latter will not affect the action of the former; they both exhibit a marked potential for synergistic action between them [194]. Even more importantly, black pepper extracts and piperine are not toxic to other organisms and do not persist in the environment [195,196]. Piperine itself has been shown to be effective against the larvae of Aedes aegypti , the vector of the yellow fever and Dengue fever viruses [197,198]. Regarding a less dangerous species of mosquito, Culex pipiens , the common house mosquito, the study of [199] demonstrated that piperine-based dienehydrazide derivatives were more effective than piperine itself or Deltamethrin. Another study investigated the potency of P. nigrum against ant species, along with that of other plant extracts; the results were promising, revealing a viable alternative [200].

Given the adverse impacts of larvicides and insecticides in both the environment and human health [201-203], and existing threats to the biodiversity of different environments [204-207], efforts to incorporate natural compounds into insecticides and larvicides should intensify. The increased effectiveness of such compounds is important both in the context of agriculture [208-210] and, perhaps more importantly, in the context of the insect-borne diseases [211-213].

In response to the aforementioned health and safety concerns, both the European Union (EU) and the United Nations (UN) (https://sdgs.un.org/goals) have implemented measures to regulate and reduce reliance on hazardous chemicals, while exploring natural alternatives. The EU’s regulatory framework (e.g., Regulation (EC) No 1107/2009 [214], Regulation (EU) 2022/1438 [215], Directive 2009/128/EC [216]), multilateral treaties like the Rotterdam Convention [217,218] and the Stockholm Convention [219,220], and research and development (R&D) programs strongly emphasize promoting directly or indirectly innovation in plant-based substances. The EU also provides funding opportunities through Horizon Europe [221], the largest research and innovation program supporting projects in sustainable agriculture, biodiversity, and green technologies.

Additionally, global initiatives such as the International Plant Protection Convention (IPPC) [222], the intergovernmental treaty that aims to protect the world’s plants, agricultural products and natural resources from plant pests and the FAO (Food and Agriculture Organization of the United Nations) Guidelines on Pesticide Management [223,224] provide the necessary foundation for the establishment of national legislation and policies for pest and pesticides management, with the potential inclusion of more favourable conditions for biopesticides. Other organizations, such as OECD (https://www.oecd.org/), have dealt with the topic of biopesticides while there are countries worldwide with dedicated frameworks on the matter, like the US EPA (www.epa.gov/pesticides/ biopesticides) and China’s Plan for Green and Sustainable Agricultural Development [225], encouraging biological control methods to reduce synthetic pesticide use.

CONCLUSION

Piperine and black pepper extracts exhibit ethnomedical and ethnobotanical applications, which should be explored further, with the aim of developing novel therapeutic solutions for a number of different pathologies. Future research should concentrate on elucidating the effectiveness of such applications in in vivo settings, using modern methods, and exploring the potential of increasing the active concentration via the application of novel delivery methods.

Finally, the non-medical applications of piperine and black pepper in general are promising in the field of insecticides/larvicide development, in accordance with the new directives of the EU and of other nations.

Conflicts of interest and sources of funding

The authors declare no conflict of interest. No artificial intelligence automatically generated text was inserted in this manuscript, and no image was previously published in another journal or is under consideration of being published elsewhere. This research received no external funding.

Authors’ contribution

Conceptualization AP, ATP, AFG, DOC and CC; methodology AP, AFG, DOC and CC; validation AP, MP, DOC, and CC; formal analysis AP, LT, KP, ATP, GMA, AFG and CC; investigation AP, LT, KP, ATP, GMA, SPG, AFG and DLC; resources AFG and DLC; data curation DOC; writing—original draft preparation AP, ATP, SPG, AFG; writing—review and editing AP, ATP, DOC, and CC; supervision AP, MP, DOC and CC; project administration AP, AFG, and DLC. All authors have read and agreed to the published version of the manuscript elaboration

Ethics approval and consent to participate

Not applicable.

Patient consent for publication

Not applicable.

References

  1. Nagalingam M, Arumugam G. Antimicrobial activity of some Indian folklore medicinal plants against drug resistant bacteria and fungi isolated from clinical samples. Asian Journal of Plant Science & Research. 2011;5:49-56.
  2. Periferakis A, Periferakis K. On the Dissemination of Acupuncture to Europe. JournalNX. 2020;6(07):201-9.
  3. Periferakis A. H Εμφάνιση του Βελονισμού στην Ευρώπη, 1683-1850 – Ascensus Acupuncturae in Europam, 1683-1850. Athens, Greece: Akadimia of Ancient Greek and Traditional Chinese Medicine; 2021.
  4. Matos LC, Machado JP, Monteiro FJ, Greten HJ. Understanding Traditional Chinese Medicine Therapeutics: An Overview of the Basics and Clinical Applications. Healthcare (Basel). 2021;9(3).
  5. Periferakis A, Periferakis K, Badarau IA, Petran EM, Popa DC, Caruntu A, et al. Kaempferol: Antimicrobial Properties, Sources, Clinical, and Traditional Applications. Int J Mol Sci. 2022;23(23).
  6. Periferakis A, Periferakis AT, Troumpata L, Periferakis K, Scheau AE, Savulescu-Fiedler I, et al. Kaempferol: A Review of Current Evidence of Its Antiviral Potential. Int J Mol Sci. 2023;24(22).
  7. Periferakis A, Periferakis A-T, Troumpata L, Periferakis K, Georgatos-Garcia S, Touriki G, et al. Pinosylvin: A Multifunctional Stilbenoid with Antimicrobial, Antioxidant, and Anti-Inflammatory Potential. Current Issues in Molecular Biology. 2025;47(3):204.
  8. Amza A, Spînu D, Marcu D, Nicodin T, Cinteză E, Georgescu D, et al. The Benefits of Phytotherapy in Chronic Pelvic Pain Syndrome. Romanian Journal of Military Medicine. 2024;127(4):263.
  9. Venkatachalapathi A, Sangeeth T, Ali MA, Tamilselvi SS, Paulsamy S, Al-Hemaidc FMA. Ethnomedicinal assessment of Irula tribes of Walayar valley of Southern Western Ghats, India. Saudi J Biol Sci. 2018;25(4):760-75.
  10. Chellappandian M, Pandikumar P, Mutheeswaran S, Gabriel Paulraj M, Prabakaran S, Duraipandiyan V, et al. Documentation and quantitative analysis of local ethnozoological knowledge among traditional healers of Theni district, Tamil Nadu, India. J Ethnopharmacol. 2014;154(1):116-30.
  11. Takooree H, Aumeeruddy MZ, Rengasamy KRR, Venugopala KN, Jeewon R, Zengin G, et al. A systematic review on black pepper (Piper nigrum L.): from folk uses to pharmacological applications. Crit Rev Food Sci Nutr. 2019;59(sup1):S210-s43.
  12. Jagtap SD, Deokule SS, Bhosle SV. Some unique ethnomedicinal uses of plants used by the Korku tribe of Amravati district of Maharashtra, India. J Ethnopharmacol. 2006;107(3):463-9.
  13. Shanmugam S, Rajendran K, Suresh K. Traditional uses of medicinal plants among the rural people in Sivagangai district of Tamil Nadu, Southern India. Asian Pacific Journal of Tropical Biomedicine. 2012;2(1, Supplement):S429-S34.
  14. Mallik BK, Panda T, Padhy RN. Traditional Herbal Practices by the Ethnic People of Kalahandi District of Odisha, India. Asian Pacific Journal of Tropical Biomedicine. 2012;2(2, Supplement):S988-S94.
  15. Francis Xavier T, Kannan M, Auxilia A. Observation on the traditional phytotherapy among the Malayali tribes in Eastern Ghats of Tamil Nadu, South India. J Ethnopharmacol. 2015;165:198-214.
  16. Esakkimuthu S, Mutheeswaran S, Arvinth S, Paulraj MG, Pandikumar P, Ignacimuthu S. Quantitative ethnomedicinal survey of medicinal plants given for cardiometabolic diseases by the non-institutionally trained siddha practitioners of Tiruvallur district, Tamil Nadu, India. J Ethnopharmacol. 2016;186:329-42.
  17. Sethiya NK, Ahmed NM, Shekh RM, Kumar V, Kumar Singh P, Kumar V. Ethnomedicinal, phytochemical and pharmacological updates on Hygrophila auriculata (Schum.) Hiene: an overview. Journal of Integrative Medicine. 2018;16(5):299-311.
  18. Kumar PP, Ayyanar M, Ignacimuthu S. Medicinal plants used by Malasar tribes of Coimbatore district, Tamil Nadu. 2007.
  19. Rout S, Panda S. Ethnomedicinal plant resources of Mayurbhanj district, Orissa. 2010.
  20. Ayyanar M, Ignacimuthu S. Ethnobotanical survey of medicinal plants commonly used by Kani tribals in Tirunelveli hills of Western Ghats, India. J Ethnopharmacol. 2011;134(3):851-64.
  21. Vijayakumar S, Morvin Yabesh JE, Prabhu S, Manikandan R, Muralidharan B. Quantitative ethnomedicinal study of plants used in the Nelliyampathy hills of Kerala, India. Journal of Ethnopharmacology. 2015;161:238-54.
  22. Wagh VV, Jain AK. Status of ethnobotanical invasive plants in western Madhya Pradesh, India. South African Journal of Botany. 2018;114:171-80.
  23. Ayyanar M, Ignacimuthu S. Traditional knowledge of Kani tribals in Kouthalai of Tirunelveli hills, Tamil Nadu, India. J Ethnopharmacol. 2005;102(2):246-55.
  24. Ignacimuthu S, Ayyanar M, Sivaraman KS. Ethnobotanical investigations among tribes in Madurai District of Tamil Nadu (India). J Ethnobiol Ethnomed. 2006;2:
  25. 25. Sen SK, Behera LM. Ethnomedicinal plants used by the tribals of Bargarh district to cure diarrhoea and dysentery. 2008.
  26. Jeeva S, Femila V. Ethnobotanical investigation of Nadars in Atoor village, Kanyakumari District, Tamilnadu, India. Asian Pacific Journal of Tropical Biomedicine. 2012;2(2, Supplement):S593-S600.
  27. Bhat P, Hegde G, Hegde GR. Ethnomedicinal practices in different communities of Uttara Kannada district of Karnataka for treatment of wounds. J Ethnopharmacol. 2012;143(2):501-14.
  28. Sharma J, Gairola S, Gaur RD, Painuli RM. The treatment of jaundice with medicinal plants in indigenous communities of the Sub-Himalayan region of Uttarakhand, India. J Ethnopharmacol. 2012;143(1):262-91.
  29. Bhuyan B, Baishya K. Ethno medicinal value of various plants used in the preparation of traditional rice beer by different tribes of Assam, India. Drug Invention Today. 2013;5(4):335-41.
  30. Kujawska M, Hilgert NI. Phytotherapy of Polish migrants in Misiones, Argentina: legacy and acquired plant species. J Ethnopharmacol. 2014;153(3):810-30.
  31. Tumpa SI, Hossain MI, Ishika T. Ethnomedicinal uses of herbs by indigenous medicine practitioners of Jhenaidah district, Bangladesh. Journal of Pharmacognosy and Phytochemistry. 2014;3(2):23-33.
  32. Yabesh JE, Prabhu S, Vijayakumar S. An ethnobotanical study of medicinal plants used by traditional healers in silent valley of Kerala, India. J Ethnopharmacol. 2014;154(3):774-89.
  33. Chassagne F, Deharo E, Punley H, Bourdy G. Treatment and management of liver diseases by Khmer traditional healers practicing in Phnom Penh area, Cambodia. Journal of Ethnopharmacology. 2017;202:38-53.
  34. Mahishi P, Srinivasa BH, Shivanna MB. Medicinal plant wealth of local communities in some villages in Shimoga District of Karnataka, India. J Ethnopharmacol. 2005;98(3):307-12.
  35. Biswas KR, Tania Khan TK, Monalisa MN, Auditi Swarna AS, Tasneema Ishika TI, Mehreen Rahman MR, et al. Medicinal plants used by folk medicinal practitioners of four adjoining villages of Narail and Jessore Districts, Bangladesh. 2011.
  36. Rahmatullah M, Khatun Z, Barua D, Alam MU, Jahan S, Jahan R. Medicinal plants used by traditional practitioners of the Kole and Rai tribes of Bangladesh. J Altern Complement Med. 2013;19(6):483-91.
  37. Abe R, Ohtani K. An ethnobotanical study of medicinal plants and traditional therapies on Batan Island, the Philippines. J Ethnopharmacol. 2013;145(2):554-65.
  38. Patel JJ, Acharya SR, Acharya NS. Clerodendrum serratum (L.) Moon. – a review on traditional uses, phytochemistry and pharmacological activities. J Ethnopharmacol. 2014;154(2):268-85.
  39. Teixidor-Toneu I, Martin GJ, Ouhammou A, Puri RK, Hawkins JA. An ethnomedicinal survey of a Tashelhit-speaking community in the High Atlas, Morocco. J Ethnopharmacol. 2016;188:96-110.
  40. Shah A, Rahim S. Ethnomedicinal uses of plants for the treatment of malaria in Soon Valley, Khushab, Pakistan. Journal of Ethnopharmacology. 2017;200:84-106.
  41. Dey A, Gorai P, Mukherjee A, Dhan R, Modak BK. Ethnobiological treatments of neurological conditions in the Chota Nagpur Plateau, India. J Ethnopharmacol. 2017;198:33-44.
  42. Singh D, Chaudhuri PK. A review on phytochemical and pharmacological properties of Holy basil (Ocimum sanctum L.). Industrial Crops and Products. 2018;118:367-82.
  43. Tiwari KC, Majumder R, Bhattacharjee S. Folklore Information from Assam for Family Planning and Birth Control. International Journal of Crude Drug Research. 1982;20(3):133-7.
  44. Buragohain J. Folk medicinal plants used in gynecological disorders in Tinsukia district, Assam, India. Fitoterapia. 2008;79(5):388-92.
  45. Upadhyay B, Parveen, Dhaker AK, Kumar A. Ethnomedicinal and ethnopharmaco-statistical studies of Eastern Rajasthan, India. J Ethnopharmacol. 2010;129(1):64-86.
  46. Hasan ME, Shakila Akter SA, Piya NS, Nath PK, Nova USR, Chowdhury HR, et al. Variations in selection of medicinal plants by tribal healers of the soren clan of the Santal tribe: a study of the Santals in Rajshahi district, Bangladesh. 2012.
  47. Bhatia H, Sharma YP, Manhas RK, Kumar K. Ethnomedicinal plants used by the villagers of district Udhampur, J&K, India. J Ethnopharmacol. 2014;151(2):1005-18.
  48. Chander MP, Kartick C, Vijayachari P. Ethnomedicinal knowledge among Karens of Andaman & Nicobar Islands, India. J Ethnopharmacol. 2015;162:127-33.
  49. Sharma J, Gairola S, Gaur RD, Painuli RM, Siddiqi TO. Ethnomedicinal plants used for treating epilepsy by indigenous communities of sub-Himalayan region of Uttarakhand, India. J Ethnopharmacol. 2013;150(1):353-70.
  50. Padumanonda T, Johns J, Sangkasat A, Tiyaworanant S. Determination of melatonin content in traditional Thai herbal remedies used as sleeping aids. Daru. 2014;22(1):6.
  51. Islam F, Jahan FI, Seraj S, Malek I, Sadat A, Bhuiyan MSA, et al. Variations in diseases and medicinal plant selection among folk medicinal practitioners: a case study in Jessore district, Bangladesh. American Eurasian Journal of Sustainable Agriculture. 2011;5(2):282-91.
  52. Mootoosamy A, Fawzi Mahomoodally M. Ethnomedicinal application of native remedies used against diabetes and related complications in Mauritius. J Ethnopharmacol. 2014;151(1):413-44.
  53. Neamsuvan O, Madeebing N, Mah L, Lateh W. A survey of medicinal plants for diabetes treating from Chana and Nathawee district, Songkhla province, Thailand. J Ethnopharmacol. 2015;174:82-90.
  54. Rajakumar N, Shivanna MB. Traditional herbal medicinal knowledge in Sagar taluk of Shimoga district, Karnataka, India. IJNPR. 2010;1(1):102-8.
  55. Rahmatullah M, Hasan A, Parvin W, Moniruzzaman M, Khatun A, Khatun Z, et al. Medicinal plants and formulations used by the Soren clan of the Santal tribe in Rajshahi district, Bangladesh for treatment of various ailments. Afr J Tradit Complement Altern Med. 2012;9(3):350-9.
  56. Lingaraju DP, Sudarshana MS, Rajashekar N. Ethnopharmacological survey of traditional medicinal plants in tribal areas of Kodagu district, Karnataka, India. Journal of Pharmacy Research. 2013;6(2):284-97.
  57. Sivasankari B, Anandharaj M, Gunasekaran P. An ethnobotanical study of indigenous knowledge on medicinal plants used by the village peoples of Thoppampatti, Dindigul district, Tamilnadu, India. J Ethnopharmacol. 2014;153(2):408-23.
  58. Saikia AP, Ryakala VK, Sharma P, Goswami P, Bora U. Ethnobotany of medicinal plants used by Assamese people for various skin ailments and cosmetics. J Ethnopharmacol. 2006;106(2):149-57.
  59. Bhat P, Hegde GR, Hegde G, Mulgund GS. Ethnomedicinal plants to cure skin diseases-an account of the traditional knowledge in the coastal parts of Central Western Ghats, Karnataka, India. J Ethnopharmacol. 2014;151(1):493-502.
  60. Upasani SV, Beldar VG, Tatiya AU, Upasani MS, Surana SJ, Patil DS. Ethnomedicinal plants used for snakebite in India: a brief overview. Integr Med Res. 2017;6(2):114-30.
  61. Policepatel SS, Manikrao VG. Ethnomedicinal plants used in the treatment of skin diseases in Hyderabad Karnataka region, Karnataka, India. Asian Pacific Journal of Tropical Biomedicine. 2013;3(11):882-6.
  62. Diwan V, Poudyal H, Brown L. Piperine attenuates cardiovascular, liver and metabolic changes in high carbohydrate, high fat-fed rats. Cell Biochem Biophys. 2013;67(2):297-304.
  63. Koirala A, Pourafshar N, Daneshmand A, Wilcox CS, Mannemuddhu SS, Arora N. Etiology and Management of Edema: A Review. Advances in Kidney Disease and Health. 2023;30(2):110-23.
  64. Decker MD, Edwards KM. Pertussis (Whooping Cough). J Infect Dis. 2021;224(12 Suppl 2):S310-s20.
  65. Sahu AR, Behera N, Mishra S. Use of ethnomedicinal plants by natives of bargarh district of Orissa, India. Ethnobotanical Leaflets. 2010;14:889910.
  66. Patel JR, Tripathi P, Sharma V, Chauhan NS, Dixit VK. Phyllanthus amarus: ethnomedicinal uses, phytochemistry and pharmacology: a review. J Ethnopharmacol. 2011;138(2):286-313.
  67. Shanmugam S, Manikandan K, Rajendran K. Ethnomedicinal survey of medicinal plants used for the treatment of diabetes and jaundice among the villagers of Sivagangai District, Tamilnadu. Ethnobotanical leaflets. 2009;2009(1):22.
  68. Semwal DK, Semwal RB, Vermaak I, Viljoen AM. From arrow poison to herbal medicine–the ethnobotanical, phytochemical and pharmacological significance of Cissampelos (Menispermaceae). Journal of ethnopharmacology. 2014;155 2:1011-28.
  69. James AH. Heavy menstrual bleeding: work-up and management. Hematology Am Soc Hematol Educ Program. 2016;2016(1):236-42.
  70. Deligeoroglou E, Tsimaris P. Menstrual disturbances in puberty. Best Pract Res Clin Obstet Gynaecol. 2010;24(2):157-
  71. 71. Cardigno P. Homeopathy for the treatment of menstrual irregularities: a case series. Homeopathy. 2009;98(2):97-106.
  72. Yavari M, Khodabandeh F, Tansaz M, Rouholamin S. A neuropsychiatric complication of oligomenorrhea according to iranian traditional medicine. Iran J Reprod Med. 2014;12(7):453-8.
  73. He Y, Zheng D, Shang W, Wang X, Zhao S, Wei Z, et al. Prevalence of oligomenorrhea among women of childbearing age in China: A large community-based study. Women’s Health. 2020;16:1745506520928617.
  74. De Sanctis V, Soliman AT, Tzoulis P, Daar S, Di Maio S, Millimaggi G, et al. Hypomenorrhea in Adolescents and Youths: Normal Variant or Menstrual Disorder? Revision of Literature and Personal Experience. Acta Biomed. 2022;93(1):e2022157.
  75. Trilisnawati D, Purwoko IH, Devi M, Nugroho SA, Toruan TL. Etiology, diagnosis, and treatment of leukorrhea. Bioscientia Medicina: Journal of Biomedicine and Translational Research. 2021;5(6):571-90.
  76. Itani R, Soubra L, Karout S, Rahme D, Karout L, Khojah HMJ. Primary Dysmenorrhea: Pathophysiology, Diagnosis, and Treatment Updates. Korean J Fam Med. 2022;43(2):101-8.
  77. Mahfouz MS, Abdelmageed MM, Alqassim AY, Hakami TKM, Alshekh MM, Hamithi DMA, et al. Menstrual irregularities associated with COVID-19 vaccines among women in Saudi Arabia: A survey during 2022. Open Med (Wars). 2023;18(1):20230804.
  78. Bae J, Park S, Kwon JW. Factors associated with menstrual cycle irregularity and menopause. BMC Womens Health. 2018;18(1):36.
  79. Mittiku YM, Mekonen H, Wogie G, Tizazu MA, Wake GE. Menstrual irregularity and its associated factors among college students in Ethiopia, 2021. Front Glob Womens Health. 2022;3:917643.
  80. Attia GM, Alharbi OA, Aljohani RM. The Impact of Irregular Menstruation on Health: A Review of the Literature. Cureus. 2023;15(11):e49146.
  81. Olsen AL, Smith VJ, Bergstrom JO, Colling JC, Clark AL. Epidemiology of surgically managed pelvic organ prolapse and urinary incontinence. Obstet Gynecol. 1997;89(4):501-6.
  82. Nygaard I, Barber MD, Burgio KL, Kenton K, Meikle S, Schaffer J, et al. Prevalence of symptomatic pelvic floor disorders in US women. Jama. 2008;300(11):1311-6.
  83. Khadgi J, Poudel A. Uterine prolapse: a hidden tragedy of women in rural Nepal. Int Urogynecol J. 2018;29(11):1575-8.
  84. Gaitan E, Nelson NC, Poole GV. Endemic goiter and endemic thyroid disorders. World J Surg. 1991;15(2):205-15.
  85. Kaleem M, Sheema SH, Bano B. Protective effects of Piper nigrum and Vinca rosea in alloxan induced diabetic rats. Indian J Physiol Pharmacol. 2005;49(1):65-71.
  86. Breuer J, Fifer H. Chickenpox. BMJ Clin Evid. 2011;2011.
  87. Castaneda D, Gonzalez AJ, Alomari M, Tandon K, Zervos XB. From hepatitis A to E: A critical review of viral hepatitis. World J Gastroenterol. 2021;27(16):1691-715.
  88. Foster JE, Mendoza JA, Seetahal J. Chapter 7 – Viruses as Pathogens: Animal Viruses, With Emphasis on Human Viruses. In: Tennant P, Fermin G, Foster JE, editors. Viruses: Academic Press; 2018. p. 157-87.
  89. Sunderkötter C, Aebischer A, Neufeld M, Löser C, Kreuter A, Bialek R, et al. Increase of scabies in Germany and development of resistant mites? Evidence and consequences. J Dtsch Dermatol Ges. 2019;17(1):15-23.
  90. Sunderkötter C, Wohlrab J, Hamm H. Scabies: Epidemiology, Diagnosis, and Treatment. Dtsch Arztebl Int. 2021;118(41):695-704.
  91. Dey A, De JN. Traditional use of plants against snakebite in Indian subcontinent: a review of the recent literature. Afr J Tradit Complement Altern Med. 2012;9(1):153-74.
  92. Bukhari IA, Alhumayyd M, Mahesar A, Gilani A. The analgesic and anticonvulsant effects of piperine in mice. Journal of Physiology and Pharmacology. 2013;64(6):789.
  93. Tasleem F, Azhar I, Ali SN, Perveen S, Mahmood ZA. Analgesic and anti-inflammatory activities of Piper nigrum L. Asian Pacific journal of tropical medicine. 2014;7:S461-S8.
  94. Belemkar S, Kumar A, Pata MK. Pharmacological screening of herbal extract of piper nigrum (Maricha) and Cinnamomum zeylanicum (Dalchini) for anticonvulsant activity. Invent Rapid Ethnopharmacol. 2013;2:1-5.
  95. Petran EM, Periferakis A, Troumpata L, Periferakis AT, Scheau AE, Badarau IA, et al. Capsaicin: Emerging Pharmacological and Therapeutic Insights. Curr Issues Mol Biol. 2024;46(8):7895-943.
  96. Dumitrache MD, Jieanu AS, Scheau C, Badarau IA, Popescu GDA, Caruntu A, et al. Comparative effects of capsaicin in chronic obstructive pulmonary disease and asthma (Review). Exp Ther Med. 2021;22(3):917.
  97. Periferakis A, Periferakis A-T, Troumpata L, Dragosloveanu S, Timofticiuc I-A, Georgatos-Garcia S, et al. Use of biomaterials in 3D printing as a solution to microbial infections in arthroplasty and osseous reconstruction. Biomimetics. 2024;9(3):154.
  98. Timofticiuc I-A, Călinescu O, Iftime A, Dragosloveanu S, Caruntu A, Scheau A-E, et al. Biomaterials adapted to VAT photopolymerization in 3D printing: characteristics and medical applications. Journal of Functional Biomaterials. 2023;15(1):7.
  99. Timofticiuc I-A, Dragosloveanu S, Caruntu A, Scheau A-E, Badarau IA, Garofil ND, et al. 3D Bioprinting in Limb Salvage Surgery. Journal of Functional Biomaterials. 2024;15(12):383.
  100. Swiderski J, Sakkal S, Apostolopoulos V, Zulli A, Gadanec LK. Combination of Taurine and Black Pepper Extract as a Treatment for Cardiovascular and Coronary Artery Diseases. Nutrients. 2023;15(11):2562.
  101. Behera SK, Misra MK. Indigenous phytotherapy for genito-urinary diseases used by the Kandha tribe of Orissa, India. J Ethnopharmacol. 2005;102(3):319-25.
  102. Sureshkumar J, Silambarasan R, Ayyanar M. An ethnopharmacological analysis of medicinal plants used by the Adiyan community in Wayanad district of Kerala, India. European Journal of Integrative Medicine. 2017;12:60-73.
  103. McLoone P, Oladejo TO, Kassym L, McDougall GJ. Honey Phytochemicals: Bioactive Agents With Therapeutic Potential for Dermatological Disorders. Phytother Res. 2024;38(12):5741-64.
  104. Caruntu C, Boda D, Musat S, Caruntu A, Mandache E. Stress-induced mast cell activation in glabrous and hairy skin. Mediators Inflamm. 2014;2014:105950.
  105. Singh H, Mishra AK, Mohanto S, Kumar A, Mishra A, Amin R, et al. A recent update on the connection between dietary phytochemicals and skin cancer: emerging understanding of the molecular mechanism. Ann Med Surg (Lond). 2024;86(10):5877-913.
  106. Caruntu C, Boda D. Evaluation through in vivo reflectance confocal microscopy of the cutaneous neurogenic inflammatory reaction induced by capsaicin in human subjects. J Biomed Opt. 2012;17(8):085003.
  107. Fiest KM, Sauro KM, Wiebe S, Patten SB, Kwon CS, Dykeman J, et al. Prevalence and incidence of epilepsy: A systematic review and meta-analysis of international studies. Neurology. 2017;88(3):296-303.
  108. Radu M, Roza E, Daniel Mihai T, Teleanu R. Genetic epilepsy with febrile seizures plus – an overview. Romanian Journal of Neurology. 2021;20:217.
  109. Riza A-L, Streață I, Roza E, Budișteanu M, Iliescu C, Burloiu C, et al. Phenotypic and Genotypic Spectrum of Early-Onset Developmental and Epileptic Encephalopathies—Data from a Romanian Cohort. Genes. 2022;13(7):1253.
  110. Periferakis AT, Periferakis A, Periferakis K, Caruntu A, Badarau IA, Savulescu-Fiedler I, et al. Antimicrobial Properties of Capsaicin: Available Data and Future Research Perspectives. Nutrients. 2023;15(19).
  111. Ma S, Huang H, Xue F, Wang Q, Yu S, Hou Q, et al. Acupoint prescriptions, treatment protocol and outcome evidence for acupuncture in diabetic peripheral neuropathy: A scoping review of clinical studies. European Journal of Integrative Medicine. 2024;70:102376.
  112. Chen C, Liu J, Sun M, Liu W, Han J, Wang H. Acupuncture for type 2 diabetes mellitus: A systematic review and meta-analysis of randomized controlled trials. Complementary Therapies in Clinical Practice. 2019;36:100-12.
  113. Lee G, Cho FY, Goo B, Park YC. Acupuncture for gouty arthritis: A PRISMA-compliant protocol for a systematic review and meta-analysis of randomized controlled trials. Medicine (Baltimore). 2020;99(49):e23527.
  114. Lu WW, Zhang JM, Lv ZT, Chen AM. Update on the Clinical Effect of Acupuncture Therapy in Patients with Gouty Arthritis: Systematic Review and Meta-Analysis. Evid Based Complement Alternat Med. 2016;2016:9451670.
  115. Goo B, Lee G, Cho FY, Lee D-M, Park Y-C. Acupuncture for gouty arthritis: A systematic review and meta-analysis of randomized controlled trials. European Journal of Integrative Medicine. 2023;61:102265.
  116. Periferakis K, Periferakis A. Treating gout caused by renal insufficiency with acupuncture and moxibustion: A case report. Rom J Clin Res. 2023;6:21-8.
  117. Li L, Zhao K, Luo J, Tian J, Zheng F, Lin X, et al. Piperine Improves Hyperuricemic Nephropathy by Inhibiting URAT1/GLUT9 and the AKT-mTOR Pathway. J Agric Food Chem. 2024;72(12):6565-74.
  118. Onyesife CO, Ogugua VN, Anaduaka EG. Hypoglycemic potentials of ethanol leaves extract of black pepper (Piper nigrum) on alloxan-induced diabetic rats. Annals of Biological Research. 2014;5(6):26-31.
  119. Gupta AK, Tomas E. New antifungal agents. Dermatologic clinics. 2003;21(3):565-76.
  120. Tang WH, Martin KA, Hwa J. Aldose reductase, oxidative stress, and diabetic mellitus. Front Pharmacol. 2012;3:87.
  121. Thakur S, Gupta SK, Ali V, Singh P, Verma M. Aldose Reductase: a cause and a potential target for the treatment of diabetic complications. Arch Pharm Res. 2021;44(7):655-67.
  122. Telli A, Esnault M-A, Ould El Hadj Khelil A. An ethnopharmacological survey of plants used in traditional diabetes treatment in south-eastern Algeria (Ouargla province). Journal of Arid Environments. 2016;127:82-92.
  123. Mollik M, Sadiqur Rahman M, Ali Khan A, Malik A, Kumar Mondal T, Rabiul Islam M, et al. Investigation of in-vitro hypoglycaemic activity of the different fractions of black pepper (Piper nigrum). Results in Chemistry. 2024;11:101780.
  124. Georgescu O, Reghină A, Ioacără S, Nica C, Fica S. Androgen deficiency, erectile dysfunction and chronic microvascular complications in male diabetic patients. Romanian Journal of Diabetes Nutrition and Metabolic Diseases. 2013;20(4):401-7.
  125. Reghina AD, Constantin M, Olaru R, Florea S, Fica S, editors. Metabolic syndrome and cardiovascular risk are less prevalent in LADA vs type 2 diabetes patients. Endocrine Abstracts; 2014: Bioscientifica.
  126. Ioacara S, Guja C, Reghina A, Martin S, Sirbu A, Fica S. Cardiovascular mortality in type 2 diabetes patients with incident exposure to insulin glargine. Journal of Diabetes Research. 2015;2015(1):962346.
  127. Reghina A, Sava E, Florea S, Fica S, editors. Microangiopathic complications in latent autoimmune diabetes in adults: relationship with thyroid autoimmunity. Endocrine Abstracts; 2015: Bioscientifica.
  128. Marigliano M, Lanzinger S, Zineb I, Barcala C, Shah AS, Svensson J, et al. The role of sex on the prevalence of cardiovascular risk factors in children and adolescents with Type 1 diabetes: The SWEET international database. Diabetes Research and Clinical Practice. 2024;210:111616.
  129. Bojoga I, Ioacara S, Malinici E, Chiper V, Georgescu O, Sirbu AE, et al. Enhanced Metabolic Control in a Pediatric Population with Type 1 Diabetes Mellitus Using Hybrid Closed-Loop and Predictive Low-Glucose Suspend Insulin Pump Treatments. Pediatric Reports. 2024;16(4):1188-99.
  130. Arhire AI, Ioacara S, Papuc T, Chiper MS, Dutescu IM, Moise A, et al. Association of HLA Haplotypes with Autoimmune Pathogenesis in Newly Diagnosed Type 1 Romanian Diabetic Children: A Pilot, Single-Center Cross-Sectional Study. Life. 2024;14(6):781.
  131. Arhire AI, Ioacara S, Papuc T, Parcalibioru GG, Fica S. Exploring the severity and early onset of familial type 1 diabetes in Romania: genetic and microbiota insights. Archive of Clinical Cases. 2024;11(1):29.
  132. Neagu M, Constantin C, Surcel M, Munteanu A, Scheau C, Savulescu-Fiedler I, et al. Diabetic neuropathy: A NRF2 disease? Journal of Diabetes. 2024;16(9):e13524.
  133. Ioacara S, Guja C, Georgescu O, Martin S, Sirbu A, Purcaru M, et al. Patients treated with insulin and sulphonylurea are at increased mortality risk as compared with those treated with insulin plus metformin. Acta Endocrinologica (Bucharest). 2017;13(3):329.
  134. Ioacara S, Sava E, Georgescu O, Sirbu A, Fica S. Recent diabetes-related mortality trends in Romania. Acta Diabetologica. 2018;55:821-6.
  135. Ioacara S, Guja C, Ionescu-Tirgoviste C, Martin S, Tiu C, Fica S. Rates and causes of death among adult diabetes patients in Romania. Endocrine Research. 2019;44(3):81-6.
  136. Stein SA, Lamos EM, Davis SN. A review of the efficacy and safety of oral antidiabetic drugs. Expert opinion on drug safety. 2013;12(2):153-75.
  137. Grunberger G. Should side effects influence the selection of antidiabetic therapies in type 2 diabetes? Current Diabetes Reports. 2017;17:1-12.
  138. Scheen AJ. Careful use to minimize adverse events of oral antidiabetic medications in the elderly. Expert Opinion on Pharmacotherapy. 2021;22(16):2149-65.
  139. Alberti KGM, Zimmet P. Global burden of disease—where does diabetes mellitus fit in? Nature Reviews Endocrinology. 2013;9(5):258-60.
  140. Liu J, Ren Z-H, Qiang H, Wu J, Shen M, Zhang L, et al. Trends in the incidence of diabetes mellitus: results from the Global Burden of Disease Study 2017 and implications for diabetes mellitus prevention. BMC public health. 2020;20:1-12.
  141. Tomic D, Shaw JE, Magliano DJ. The burden and risks of emerging complications of diabetes mellitus. Nature Reviews Endocrinology. 2022;18(9):525-39.
  142. Vijayakumar RS, Surya D, SENTHILKUMAR R, NALINI N. Hypolipidemic effect of black pepper (Piper nigrum Linn.) in rats fed high fat diet. Journal of clinical biochemistry and nutrition. 2002;32:31-42.
  143. Vijayakumar RS, Nalini N. Efficacy of piperine, an alkaloidal constituent from Piper nigrum on erythrocyte antioxidant status in high fat diet and antithyroid drug induced hyperlipidemic rats. Cell Biochemistry and Function: Cellular biochemistry and its modulation by active agents or disease. 2006;24(6):491-8.
  144. Amadi G, Iwuji SC, Azeez TO, Nwaokoro CJ, Wodu CO. Biochemical effects of Piper Guineense (African Black Pepper) in female diabetics: opportunities for diabetes treatment. International Journal of Translational Medical Research and Public Health. 2019;3(1):59-66.
  145. Sulaimon LA, Anise EO, Obuotor EM, Samuel TA, Moshood AI, Olajide M, et al. In vitro antidiabetic potentials, antioxidant activities and phytochemical profile of african black pepper (Piper guineense). Clinical Phytoscience. 2020;6(1):90.
  146. Sarfraz M, Khaliq T, Hafizur RM, Raza SA, Ullah H. Effect of black pepper, turmeric and ajwa date on the endocrine pancreas of the experimentally induced diabetes in wister albino rats: A histological and immunohistochemical study. Endocrine and Metabolic Science. 2021;4:100098.
  147. Singletary KW. Potential Benefit of Spices for Glycemic Control. Nutrition Today. 2024;59(4):182-94.
  148. O’Brien T, Nguyen TT, Zimmerman BR. Hyperlipidemia and Diabetes Mellitus. Mayo Clinic Proceedings. 1998;73(10):969-76.
  149. Abbate SL, Brunzell JD. Pathophysiology of Hyperlipidemia in Diabetes Mellitus. Journal of Cardiovascular Pharmacology. 1990;16.
  150. Grover SA, Abrahamowicz M, Joseph L, Brewer C, Coupal L, Suissa S. The benefits of treating hyperlipidemia to prevent coronary heart disease: estimating changes in life expectancy and morbidity. JAMA. 1992;267(6):816-22.
  151. Charlton M. Obesity, hyperlipidemia, and metabolic syndrome. Liver transplantation. 2009;15(S2):S83-S9.
  152. Stewart J, McCallin T, Martinez J, Chacko S, Yusuf S. Hyperlipidemia. Pediatrics in review. 2020;41(8):393-402.
  153. Savulescu-Fiedler I, Mihalcea R, Dragosloveanu S, Scheau C, Baz RO, Caruntu A, et al. The Interplay between Obesity and Inflammation. Life (Basel). 2024;14(7).
  154. Ee GC, Lim CM, Lim CK, Rahmani M, Shaari K, Bong CF. Alkaloids from Piper sarmentosum and Piper nigrum. Nat Prod Res. 2009;23(15):1416-23.
  155. Prashant A, Rangaswamy C, Yadav AK, Reddy V, Sowmya MN, Madhunapantula S. In vitro anticancer activity of ethanolic extracts of Piper nigrum against colorectal carcinoma cell lines. Int J Appl Basic Med Res. 2017;7(1):67-72.
  156. Tripathi D, Gupta T, Pandey P. Exploring Piperine: Unleashing the multifaceted potential of a phytochemical in cancer therapy. Mol Biol Rep. 2024;51(1):1050.
  157. Wiraswati HL, Ma’ruf IF, Sharifi-Rad J, Calina D. Piperine: an emerging biofactor with anticancer efficacy and therapeutic potential. Biofactors. 2025;51(1):e2134.
  158. Tampa M, Georgescu SR, Mitran CI, Mitran MI, Matei C, Scheau C, et al. Recent Advances in Signaling Pathways Comprehension as Carcinogenesis Triggers in Basal Cell Carcinoma. J Clin Med. 2020;9(9).
  159. Scheau C, Draghici C, Ilie MA, Lupu M, Solomon I, Tampa M, et al. Neuroendocrine Factors in Melanoma Pathogenesis. Cancers (Basel). 2021;13(9).
  160. Tampa M, Georgescu SR, Mitran MI, Mitran CI, Matei C, Caruntu A, et al. Current Perspectives on the Role of Matrix Metalloproteinases in the Pathogenesis of Basal Cell Carcinoma. Biomolecules. 2021;11(6):903.
  161. Caruntu A, Moraru L, Surcel M, Munteanu A, Costache DO, Tanase C, et al. Persistent Changes of Peripheral Blood Lymphocyte Subsets in Patients with Oral Squamous Cell Carcinoma. Healthcare (Basel). 2022;10(2).
  162. Caruntu A, Moraru L, Ciubotaru DA, Tanase C, Scheau C, Caruntu C. Assessment of Serum Urea, Creatinine and Uric Acid in Oral Cancer. Journal of Clinical Medicine. 2022;11(12):3459.
  163. Ditonno I, Novielli D, Celiberto F, Rizzi S, Rendina M, Ierardi E, et al. Molecular Pathways of Carcinogenesis in Familial Adenomatous Polyposis. Int J Mol Sci. 2023;24(6).
  164. Scheau C, Caruntu C, Caruntu A. Current Approach and Future Directions in the Diagnosis and Prognosis of Keratinocyte Carcinomas. Journal of Clinical Medicine. 2023;12(12):3974.
  165. Păsărică MA, Curcă PF, Burcea M, Schmitzer S, Dragosloveanu CDM, Grigorescu AC. The Effects of Oncological Treatment on Redox Balance in Patients with Uveal Melanoma. Diagnostics (Basel). 2023;13(11).
  166. Păsărică MA, Curcă PF, Dragosloveanu CDM, Grigorescu AC, Nisipașu CI. Pathological and Molecular Diagnosis of Uveal Melanoma. Diagnostics. 2024;14(9):958.
  167. Lișcu H-D, Verga N, Atasiei D-I, Badiu D-C, Dumitru AV, Ultimescu F, et al. Biomarkers in Colorectal Cancer: Actual and Future Perspectives. International Journal of Molecular Sciences. 2024;25(21):11535.
  168. Cretu B, Zamfir A, Bucurica S, Scheau AE, Savulescu Fiedler I, Caruntu C, et al. Role of Cannabinoids in Oral Cancer. International Journal of Molecular Sciences. 2024;25(2):969.
  169. Dorobantu-Lungu L-R, Dinca V, Gegiu A, Spataru D, Toma A, Welt L, et al. The Relevance of the Virchow Node and Virchow Triad in Renal Cancer Diagnosis. Clinics and Practice. 2025;15(1):18.
  170. Abd El Rahiem R, Ibrahim SA, Effat H, El-Houseini ME, Osman RA, Abdelraouf A, et al. Curcumin, Piperine and Taurine Combination Enhances the Efficacy of Transarterial Chemoembolization Therapy in patients with Intermediate Stage Hepatocellular Carcinoma: A Pilot Study. Asian Pac J Cancer Prev. 2024;25(5):1589-98.
  171. Scheau A-E, Jurca SO, Scheau C, Lupescu IG. Non-Surgical Treatment for Hepatocellular Carcinoma: What to Expect at Follow-Up Magnetic Resonance Imaging—A Pictorial Review. Applied Sciences. 2024;14(20):9159.
  172. Kumar AR, Devan AR, Nair B, Nath LR. Anti-VEGF Mediated Immunomodulatory Role of Phytochemicals: Scientific Exposition for Plausible HCC Treatment. Curr Drug Targets. 2021;22(11):1288-316.
  173. Popescu GDA, Scheau C, Badarau IA, Dumitrache MD, Caruntu A, Scheau AE, et al. The Effects of Capsaicin on Gastrointestinal Cancers. Molecules. 2020;26(1).
  174. Periferakis A, Tsigas G, Periferakis AT, Badarau IA, Scheau AE, Tampa M, et al. Antitumoral and Anti-inflammatory Roles of Somatostatin and Its Analogs in Hepatocellular Carcinoma. Anal Cell Pathol (Amst). 2021;2021:1840069.
  175. Periferakis A, Tsigas G, Periferakis A-T, Tone CM, Hemes DA, Periferakis K, et al. Agonists, Antagonists and Receptors of Somatostatin: Pathophysiological and Therapeutical Implications in Neoplasias. Current Issues in Molecular Biology. 2024;46(9):9721-59.
  176. Scheau C, Mihai L, Badarau IA, Caruntu C. Emerging applications of some important natural compounds in the field of oncology. Farmacia. 2020;68:984-91.
  177. Ayatollahi S, Ciornei MC, Nica S, Jinga M, Papacocea IR. Pathophysiological Association Between Helicobacter Pylori Infection and Colorectal Cancer – An Analysis of the Latest Studies. Romanian Journal of Military Medicine. 2024;127(4):308-12.
  178. Spulber G, Mateescu R, Radu FI, Jinga M, Nuţă P, Costache RS, et al. Endoscopic faces of Helicobacter Pylori infection. Romanian Journal of Military Medicine. 2015;118(2):34-9.
  179. Pătrășescu M, Nuță P, Costache RS, Bucurică S, Macadon B, Popescu A, et al. Diabetes mellitus and colorectal cancer–a revealed connection. Romanian Journal of Military Medicine. 2015;118(2):13-6.
  180. Phondani PC, Maikhuri RK, Kala CP. Ethnoveterinary uses of medicinal plants among traditional herbal healers in Alaknanda catchment of Uttarakhand, India. Afr J Tradit Complement Altern Med. 2010;7(3):195-206.
  181. Aziz MA, Adnan M, Khan AH, Sufyan M, Khan SN. Cross-Cultural Analysis of Medicinal Plants commonly used in Ethnoveterinary Practices at South Waziristan Agency and Bajaur Agency, Federally Administrated Tribal Areas (FATA), Pakistan. J Ethnopharmacol. 2018;210:443-68.
  182. Jabbar A, Raza MA, Iqbal Z, Khan MN. An inventory of the ethnobotanicals used as anthelmintics in the southern Punjab (Pakistan). Journal of Ethnopharmacology. 2006;108(1):152-4.
  183. Meghvansi MK, Siddiqui S, Khan MH, Gupta VK, Vairale MG, Gogoi HK, et al. Naga chilli: A potential source of capsaicinoids with broad-spectrum ethnopharmacological applications. Journal of Ethnopharmacology. 2010;132(1):1-14.
  184. Naik M R, Venugopalan V, Kumaravelayutham P, Krishnamurthy YL. Ethnoveterinary uses of medicinal plants among the Lambani community in Chitradurga district, Karnataka, India. Asian Pacific Journal of Tropical Biomedicine. 2012;2(2, Supplement):S470-S6.
  185. Seebaluck R, Gurib-Fakim A, Mahomoodally F. Medicinal plants from the genus Acalypha (Euphorbiaceae)–a review of their ethnopharmacology and phytochemistry. J Ethnopharmacol. 2015;159:137-57.
  186. Usha S, Rajasekaran C, Siva R. Ethnoveterinary medicine of the Shervaroy Hills of Eastern Ghats, India as alternative medicine for animals. J Tradit Complement Med. 2016;6(1):118-25.
  187. Jayakumar S, Sathiskumar S, Baskaran N, Arumugam R, Vanitha V. Ethno-veterinary practices in Southern India for captive Asian elephant ailments. J Ethnopharmacol. 2017;200:182-204.
  188. Harvill EK, Hartzell A, Arthur JM. Toxicity of Pipeline Solutions to Houseflies. Contributions from Boyce Thompson Institute. 1943;13:87-92.
  189. Synerholm ME, Hartzell A, Arthur JM. Derivatives of Piperic Acid and their Toxicities toward Houseflies. Contributions from Boyce Thompson Institute. 1945;13:433-42.
  190. Gersdoeff WA, Piquett PG. Comparative Effects of Piperettine in Pyrethrum and Allethrin Mixtures as House Fly Sprays. J Econ Entomol. 1957;22:666-71.
  191. Su HCF. Insecticidal Properties of Black Pepper to Rice Weevils and Cowpea Weevils124. Journal of Economic Entomology. 1977;70(1):18-21.
  192. Bukhari T, Takken W, Koenraadt CJM. Development of Metarhizium anisopliae and Beauveria bassiana formulations for control of malaria mosquito larvae. Parasites & Vectors. 2011;4(1):23.
  193. Samuel M, Oliver SV, Coetzee M, Brooke BD. The larvicidal effects of black pepper (Piper nigrum L.) and piperine against insecticide resistant and susceptible strains of Anopheles malaria vector mosquitoes. Parasit Vectors. 2016;9:238.
  194. Jensen HR, Scott IM, Sims SR, Trudeau VL, Arnason JT. The effect of a synergistic concentration of a Piper nigrum extract used in conjunction with pyrethrum upon gene expression in Drosophila melanogaster. Insect Mol Biol. 2006;15(3):329-39.
  195. Scott IM, Jensen H, Scott JG, Isman MB, Arnason JT, Philogène BJ. Botanical insecticides for controlling agricultural pests: piperamides and the Colorado Potato Beetle Leptinotarsa decemlineata say (Coleoptera: Chrysomelidae). Arch Insect Biochem Physiol. 2003;54(4):212-25.
  196. Scott IM, Jensen H, Nicol R, Lesage L, Bradbury R, Sánchez-Vindas P, et al. Efficacy of Piper (Piperaceae) extracts for control of common home and garden insect pests. J Econ Entomol. 2004;97(4):1390-403.
  197. Siddiqui BS, Gulzar T, Begum S. Amides from the seeds of Piper nigrum Linn. and their insecticidal activity. Heterocycles-Sendai Institute of Heterocyclic Chemistry. 2002;57(9):1653-8.
  198. Gulzar T, Uddin N, Siddiqui BS, Naqvi SN, Begum S, Tariq RM. New constituents from the dried fruit of Piper nigrum Linn., and their larvicidal potential against the dengue vector mosquito Aedes aegypti. Phytochemistry Letters. 2013;6(2):219-23.
  199. Tantawy AH, Farag SM, Hegazy L, Jiang H, Wang M-Q. The larvicidal activity of natural inspired piperine-based dienehydrazides against Culex pipiens. Bioorganic Chemistry. 2020;94:103464.
  200. Abd Mutalib N, Azis TMF, Mohamad S, Azizan NI, Sidek HJ, Roziana M, et al. The repellent and lethal effects of black pepper (Piper nigrum), chilli pepper (Capsicum annuum) and cinnamon (Cinnamomum zeylanicum) extracts towards the odorous house ant (Tapinoma sessile). ARPN Journal of Engineering and Applied Sciences. 2017;12(8):2710-4.
  201. Ahmad MF, Ahmad FA, Alsayegh AA, Zeyaullah M, AlShahrani AM, Muzammil K, et al. Pesticides impacts on human health and the environment with their mechanisms of action and possible countermeasures. Heliyon. 2024;10(7):e29128.
  202. Vieira Santos VS, Caixeta ES, Campos Júnior EO, Pereira BB. Ecotoxicological effects of larvicide used in the control of Aedes aegypti on nontarget organisms: Redefining the use of pyriproxyfen. J Toxicol Environ Health A. 2017;80(3):155-60.
  203. Pathak VM, Verma VK, Rawat BS, Kaur B, Babu N, Sharma A, et al. Current status of pesticide effects on environment, human health and it’s eco- friendly management as bioremediation: A comprehensive review. Front Microbiol. 2022;13:962619.
  204. Relyea RA. The impact of insecticides and herbicides on the biodiversity and productivity of aquatic communities. Ecological applications. 2005;15(2):618-27.
  205. Sánchez-Bayo F. Ecological impacts of insecticides. Insecticides-Advances in Integrated Pest Management. 2012:61-90.
  206. Kumar M, Yadav AN, Saxena R, Paul D, Tomar RS. Biodiversity of pesticides degrading microbial communities and their environmental impact. Biocatalysis and Agricultural Biotechnology. 2021;31:101883.
  207. Darmaraki S, Denaxa D, Theodorou I, Livanou E, Rigatou D, Raitsos D, et al. Marine Heatwaves in the Mediterranean Sea: A Literature Review. Mediterranean Marine Science. 2024;25:586-620.
  208. Mazzi D, Dorn S. Movement of insect pests in agricultural landscapes. Annals of Applied Biology. 2012;160(2):97-113.
  209. Sindhu SS, Sehrawat A, Sharma R, Khandelwal A. Biological control of insect pests for sustainable agriculture. Advances in Soil Microbiology: Recent Trends and Future Prospects: Volume 2: Soil-Microbe-Plant Interaction. 2017:189-218.
  210. Skendžić S, Zovko M, Živković IP, Lešić V, Lemić D. The impact of climate change on agricultural insect pests. Insects. 2021;12(5):440.
  211. Sarwar M. Insect vectors involving in mechanical transmission of human pathogens for serious diseases. International Journal of Bioinformatics and Biomedical Engineering. 2015;1(3):300-6.
  212. Nicoletti M, Murugan K, Benelli G. Emerging insect-borne diseases of agricultural, medical and veterinary importance. Insecticides resistance. 2016:219-43.
  213. Wilke AB, Farina P, Ajelli M, Canale A, Dantas-Torres F, Otranto D, et al. Human migrations, anthropogenic changes, and insect-borne diseases in Latin America. Parasites & Vectors. 2025;18(1):4.
  214. Villaverde JJ, Sevilla-Morán B, Sandín-España P, López-Goti C, Alonso-Prados JL. Biopesticides in the framework of the European Pesticide Regulation (EC) No. 1107/2009. Pest Management Science. 2014;70(1):2-5.
  215. Commission Regulation (EU) 2022/1438 of 31 August 2022 amending Annex II to Regulation (EC) No 1107/2009 of the European Parliament and of the Council as regards specific criteria for the approval of active substances that are micro-organisms (Text with EEA relevance) C/2022/6117, (2022).
  216. Rotteveel A. Directive 2009/128/EC on the sustainable use of pesticides. 2012.
  217. Van Dorn HM. The Rotterdam Convention. Colo J Int’l Envtl L & Pol’y. 1999;10:281.
  218. Barrios P. The Rotterdam convention of hazardous chemicals: a meaningful step toward environmental protection. Geo Int’l Envtl L Rev. 2003;16:679.
  219. Lallas PL. The Stockholm Convention on persistent organic pollutants. American Journal of International Law. 2001;95(3):692-708.
  220. Hagen PE, Walls MP. The Stockholm Convention on persistent organic pollutants. Natural Resources & Environment. 2005;19(4):49-52.
  221. Ricciardiello L, Leja M, Ollivier M. Horizon Europe, the new programme for research & innovation: Which opportunities for GI research in the years to come? United European Gastroenterology Journal. 2021;9(3):407.
  222. IPPC Secretariat. International Plant Protection Convention (1997). Second edition. Rome, FAO on behalf of the Secretariat of the International Plant Protection Convention (2024).
  223. Organization WH. Global situation of pesticide management in agriculture and public health: Report of a 2018 WHO–FAO survey: Food & Agriculture Org.; 2019.
  224. Organization WH. Managing pesticides in agriculture and public health: a compendium of FAO and WHO guidelines and other resources: World Health Organization; 2021.
  225. Wei H, Nian M, Li L. China’s strategies and policies for regional development during the period of the 14th five-year plan. Chinese Journal of Urban and Environmental Studies. 2020;8(02):2050008.

Traditional Ethnomedical and Ethnobotanical Applications and Uses of Piper Nigrum

Cite this article

APA Style

Periferakis, A., Troumpata, L., Periferakis, K., Adalis, G.-M., Periferakis, A.-T., Georgatos-Garcia, S., Maier, C., Costache, A.C., Garofil, D.N., & Costache, D.O. (2025). Traditional ethnomedical and ethnobotanical applications and uses of piper nigrum. Romanian Journal of Military Medicine, 128(4), 286-303. https://doi.org/10.55453/rjmm.2025.128.4.3

Vancouver Style

Periferakis A, Troumpata L, Periferakis K, Adalis GM, Periferakis AT, Georgatos-Garcia S, et al. Traditional Ethnomedical and Ethnobotanical Applications and Uses of Piper Nigrum. Rom J Mil Med. 2025;128(4):286-303. doi:10.55453/rjmm.2025.128.4.3.

Harvard Style

Periferakis, A., Troumpata, L., Periferakis, K., Adalis, G.-M., Periferakis, A.-T., Georgatos-Garcia, S., Maier, C., Costache, A.C., Garofil, D.N. & Costache, D.O. 2025, 'Traditional Ethnomedical and Ethnobotanical Applications and Uses of Piper Nigrum', Romanian Journal of Military Medicine, vol. 128, no. 4, pp. 286-303, doi:10.55453/rjmm.2025.128.4.3.