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From Genetic Links to Personalized Therapies: Understanding Melanoma and Urological Cancer Overlap

1 - Department of Urology, George Emil Palade University of Medicine, Pharmacy, Science, and Technology of Târgu Mureș, Târgu Mureș, Romania; daniel.porav-hodade@umfst.ro (D.H.P.); ciprian.todea@umfst.ro (C.T.M.), orsolya.martha@umfst.ro (O.K.I.M.), maria.ghirca@umfst.ro (V.M.G)

2 - Department of Urology, Clinical County Hospital Mures, Târgu Mures, Romania

3 - Natural Skin Târgu Mureș, Mureș, România; badeamihai2011@yahoo.com (M.A.B.)

4 - Department of Pharmaceutical Sciences, ‘’Dunărea de Jos’’ University of Galați, Romania (N.M.)

5 - Department of Pathophysiology, George Emil Palade University of Medicine, Pharmacy, Science, and Technology of Târgu Mureș, Târgu Mureș, Romania; ovidiu.cotoi@umfst.ro (O.S.C.)

6 - Department of Pathophysiology, Clinical County Hospital Mures, Târgu Mures, Romania

7 - Department of Cell and Molecular Biology, George Emil Palade University of Medicine, Pharmacy, Science, and Technology of Târgu Mureș, Târgu Mureș, Romania; mihai.vartolomei@umfst (M.D.V.)

8 - Department of Oncology, George Emil Palade University of Medicine, Pharmacy, Science, and Technology of Târgu Mureș, Târgu Mureș, Romania; cornelia.toganel@umfst.ro (C.T.)

9 - Department of Oncology, Clinical County Hospital Mures, Târgu Mures, Romania

10 - Department of Urology, Iului Hatieganu University of Medicine and Pharmacy, Cluj-Napoca, Romania; dr.iuliaandras@gmail.com (I.A.)

11 - Department of Urology, Faculty of Medicine and Pharmacy, University of Oradea, Oradea, Romania; feciche.bogdanovidiu@didactic.uoradea.ro (B.O.F.)

12 - Department of Urology, Emergency County Hospital Oradea, Oradea, Romania

Correspondence: Mihail A. Badea, badeamihai2011@yahoo.com; Nicuta manolache, nicutamanolache@yahoo.com

DOI: https://doi.org/10.55453/rjmm.2025.128.4.10

Received: 25 January 2025

Revised: 28 April 2025

Accepted: 21 May 2025

Abstract:

Malignant melanoma and urological cancers originate from different tissues and organs, yet several studies highlight connections between these malignancies, including common risk factors, genetic predispositions, and immunological pathways. Evidence from recent studies suggests that a prior diagnosis of melanoma may increase the likelihood of subsequently developing renal cell carcinoma (RCC), and, conversely, patients with RCC appear to face a heightened risk of being diagnosed with melanoma. Shared factors such as a personal or family history of cancer, UV radiation exposure, smoking, and obesity have all been linked to an increased incidence of various cancer types. A major link between malignant melanoma and urological cancers is the presence of shared genetic mutations and familial cancer syndromes. Key mutations, including germline mutations in BRCA1, MITF, CDKN2A, TP53, and alterations in the PI3K/AKT pathway, significantly contribute to the risk of both types of malignancies. Personalized medicine, which tailors prevention and treatment strategies to an individual’s genetic, environmental, and lifestyle factors, has significantly improved cancer care. The primary aim is to select the most effective treatment for each patient, maximizing therapeutic outcomes, reducing side effects, and minimizing the risk of drug resistance. Advances in genomics and immunology are driving the development of personalized therapies that target specific molecular pathways and immune responses common to both melanoma and urological cancers. Angiogenesis inhibitors and checkpoint inhibitors have demonstrated notable success in treating these cancers, with tumor mutational burden serving as a valuable biomarker for predicting the efficacy of immune checkpoint inhibitors.

Keywords:
Citation:

Porav-Hodade D, Badea MA, Manolache N, Cotoi OS, Vartolomei MD, Toganel C, Andras I, Feciche BO, Ghirca VM, Martha OKI, Todea-Moga C. From Genetic Links to Personalized Therapies: Understanding Melanoma and Urological Cancer Overlap. R. J. Mil. Med. 2025, 128(4): 350-363; https://doi.org/10.55453/rjmm.2025.128.4.10

Article content:

INTRODUCTION

Cancer currently ranks as the leading cause of mortality worldwide. The growing number of cases and related deaths is primarily driven by shifts in demographic patterns, such as population aging and growth, along with greater exposure to environmental and lifestyle-related carcinogenic factors [1].

Although malignant melanoma and urological cancers arise from different anatomical sites and tissues, multiple studies have identified links between them. These connections include overlapping risk factors, common genetic susceptibilities, and similarities in immune-related pathways involved in their development.

Gaining insight into the association between malignant melanoma and urological malignancies may contribute to the improvement of approaches for early diagnosis, risk reduction, and therapeutic management.

Although melanoma accounts for less than 2% of cancer cases globally, it remains one of the most frequently diagnosed malignancies across Europe (5th place). Survival outcomes have improved considerably in recent years, with the overall 5-year survival now approaching 93.3%. However, patients diagnosed with stage IV disease continue to face a poor prognosis, as the survival rate in advanced stages drops significantly, reaching only 29.8% [2].

Urological cancers (UC), which include kidney, bladder, prostate, testicular, penile, and urethral cancers, differ significantly in incidence, risk factors, and prognosis.

Renal cell carcinoma (RCC) represents roughly 3% of all malignant tumors diagnosed globally. The occurrence of this malignancy tends to be more frequent in industrialized nations, especially in Western societies, where lifestyle habits, environmental risk factors, and advancements in medical imaging likely play a role in higher diagnosis rates. Renal cell carcinoma represents a major public health issue due to its frequently silent evolution in early stages and the elevated risk of distant spread if not recognized in time [3]. Globally, it is estimated that more than 430,000 new cases are identified annually, underlining the increasing impact of this disease on healthcare systems. Of these cases, approximately 138,000 are reported in Europe alone, underscoring the significant prevalence of RCC across the continent. Such statistics emphasize the importance of ongoing efforts in early detection, prevention, and the development of effective treatment strategies. [4].

Urothelial carcinoma is the second most common urological malignancy in developed countries [5]. Bladder cancer (BC) accounts for 90–95% of the UC [6]. It ranks as the seventh most frequently diagnosed cancer among men globally [7].

Primary urethral carcinoma is considered a rare cancer, accounting for < 1% of all genitourinary malignancies [8].

Approximately 1.5 million new cases are reported worldwide each year. This high incidence places it as the second most commonly identified malignancy in the male population [9].

Testicular cancer (TC) accounts for 1% of adult neoplasms and 5% of urological tumors. Its incidence has risen in recent decades, particularly in industrialized countries, and continues to increase [10].

Penile cancer is a rare condition in industrialized countries, with an incidence of approximately 1 per 100,000 men in Europe and 0.5 per 100,000 in the USA [11].

The aim of this article is to evaluate the potential connections between malignant melanoma and the most common urological cancers—renal cancer, bladder cancer, and prostate cancer—from the perspectives of epidemiological factors, shared genetic mutations and molecular pathways, clinical implications, and personalized medicine.

EPIDEMIOLOGICAL LINKS

Environmental and Lifestyle Risk Factors for Malignant Melanoma and Urological Cancers

Advancing age, genetic predisposition, prior cancer diagnoses, radiation exposure (such as ultraviolet rays), contact with certain hazardous substances, tobacco use, alcohol intake, and excess body weight are all factors that have been linked to a higher likelihood of developing different forms of cancer.

Ultraviolet (UV) exposure and vitamin D

The role of ultraviolet (UV) sunlight radiation in the development of skin cancers, particularly malignant melanoma, is well-established. UVA (320–400 nm) penetrates deeper into the skin, leading to indirect DNA damage through reactive oxygen species (ROS), while UVB (280– 320 nm) directly damages DNA by inducing cyclobutane pyrimidine dimers [12]. UVB radiation can also induces mutations in genes such as TP53 and BRAF, contributing to melanomagenesis [13].

However, the association between UV exposure and RCC remains unclear, recent studies have attempted to clarify the relationship but have produced mixed results. Grasso et al. [14] found no statistically significant differences between sun exposure in patients affected by kidney cancer and controls, both during childhood and adult life. Contrary to this, Karami et al. [15] suggest that among males there is an inverse association between occupational UV exposure and renal cancer risk. Replication studies are warranted to confirm these results.

Similar to the RCC, the potential involvement of vitamin D in the development and progression of bladder cancer and upper urinary tract urothelial tumors remains underexplored. Recent epidemiological studies offer conflicting results regarding the potential link between blood levels of vitamin D and the risk of bladder cancer onset. However, several investigations suggest that individuals with a higher intake of vitamin D through diet, particularly when not accompanied by elevated calcium consumption, may have a reduced risk of developing bladder malignancies [16]. In a meta-analysis, Zhang et al. [17] concluded that Vitamin D deficiency has been linked to a heightened risk of bladder cancer. According to Gislefoss et al. [18] educed serum concentrations of 25-hydroxy vitamin D, along with obesity, may be linked to a higher risk of developing bladder cancer. The 2024 guidelines of the European Association of Urology (EAU) highlight that both insufficient and excessive levels of vitamin D have been linked to a higher likelihood of developing prostate cancer, with a particularly stronger connection observed in cases involving high-grade tumors [19,20]. Additionally, Murphy et al. demonstrated that Vitamin D deficiency was linked to higher Gleason scores and advanced tumor stages at diagnosis [21].

Smoking

The effect of smoking on melanoma outcome still remains an enigma [22]. In a recent study, Arafa et al. [23] found that individuals who currently smoke or have a heavy smoking history tend to exhibit a greater susceptibility to developing squamous cell carcinoma (SCC), while simultaneously displaying a lower probability of malignant melanoma. Interestingly, no significant relationship was observed between past smoking and the overall risk of skin cancer. In contrast to established risk patterns, a case-control study by Sondermeijer et al. [24] reported an inverse association between cigarette smoking and melanoma incidence in men. However, smoking remains a well-documented risk factor for various urologic malignancies.

Smokers face a significantly elevated likelihood—estimated at around 1.5 times higher—of being diagnosed with renal cell carcinoma (RCC) when compared to non-smokers [25]. Encouragingly, long-term smoking cessation has been shown to gradually diminish this elevated risk [26]. Multiple carcinogens (N-nitrosodimethylamine (NDMA) and N-nitrosodiethylamine (NDEA), polycyclic aromatic hydrocarbons (PAHs), Cadmium and lead (Pb), 2-naphthylamine) are absorbed through the lungs into the bloodstream and then lipophilic carcinogens may accumulate in renal tissue [27].

Cigarette smoking represents the leading modifiable contributor to bladder cancer development and is estimated to be responsible for nearly half of all diagnosed cases [28]. Low-tar cigarettes are not associated with a lower risk of developing BC. The risk associated with electronic cigarettes has not been adequately assessed. Research by Bjurlin et al. [29] revealed the presence of carcinogen-related biomarkers in the urine of individuals who use e-cigarettes, several of which have a well-established association with bladder cancer. Kispert et al. [30] recently presented a study showing that smoking is associated with increased accumulation of platelet-activating factor (PAF) and elevated expression of the PAF receptor (PAF-R), which may contribute to tumor progression and metastasis in smokers.

Current cigarette smoking has been linked to an increased risk of prostate cancer (PCa) mortality, as well as more aggressive tumor characteristics and a poorer prognosis, even after smoking cessation [31].

Obesity

Obesity promotes chronic inflammation, a recognized risk factor for cancer development. Inflammatory cytokines can stimulate the growth of both melanoma and renal cell carcinoma (RCC), potentially linking these two malignancies in obese patients [32].

Obesity appears to be associated with malignant melanoma, particularly in patients with a BMI >30 [2].

Several retrospective studies have shown that obesity appears to be a factor that positively influences the prognosis of patients with RCC, called the “obesity paradox” [33]. Recently, Graff and colleagues [34] provided a comprehensive review with the main purpose of disentangling the “obesity paradox” in renal cancer. The results support obesity with a BMI >35 as a risk factor for total and fatal RCC. They undermine the obesity paradox by suggesting that weight loss around diagnosis, and not low BMI itself, is associated with worse prognosis.

In the REDUCE study [35], obesity was associated with a lower risk of low-grade PCa and a higher risk of high-grade PCa.

Occupational Exposure

Occupational exposure to carcinogens can increase the risk of various cancers. One common risk factor for both malignant melanoma and urological cancers is exposure to polycyclic aromatic hydrocarbons.

In a 45-year follow-up study conducted across five Nordic countries, Pukkala et al. [36] found an elevated incidence of prostate cancer, malignant melanoma, non-melanoma skin cancer, and lung adenocarcinoma among firefighters, with skin absorption identified as a primary route of exposure. Similarly, individuals working in the petroleum industry are exposed to comparable risks [37].

According to the 2024 EAU Guidelines [38], occupational exposure to polycyclic aromatic hydrocarbons and other aromatic amines or hydrocarbons, mainly in the paint, dye, or petroleum industries, is the second most important risk factor for bladder cancer.

While certain studies have indicated a potential association between occupational exposure to polycyclic aromatic hydrocarbons and an increased risk of renal cancer [39,40], there is no high-quality evidence to definitively confirm this link [41].

SHARED GENETIC MUTATIONS AND MOLECULAR PATHWAYS

Integrating molecular profiling into clinical oncology practice, particularly through mutation-focused approaches, has become essential in the evolution of precision medicine. By identifying specific genetic alterations within tumors, clinicians can better tailor immunotherapeutic interventions that modulate immune checkpoints. Therapeutic approaches that focus on modulating immune checkpoints have identified key molecular pathways, such as those involving PD-1 and its ligand, as well as CTLA-4, as critical elements in regulating immune responses against tumors. Targeting these mechanisms has opened promising prospects for the treatment of a wide range of cancers [42]. These immunotherapeutic agents have significantly reshaped treatment approaches across several types of cancers with overlapping characteristics.. Such technology was entirely unavailable before the completion of the Human Genome Project in 2001 [43]. However, current advances now enable the routine identification of relevant therapeutic mutations in many cancers, particularly in malignant melanoma and also in UC.

Genetic Mutations in Malignant Melanoma

Melanoma exhibits one of the highest mutation frequencies among cancers [44]. The most frequent mutations are BRAF, NRAS, NF1, the TERT promoter, and CDKN2A, while KIT and TP53 mutations occur at a much lower frequency. [45].

  • The BRAF mutation is the most common in malignant melanoma, occurring in 2/3 of these patients. [46]. This BRAF mutation (especially the BRAF V600 mutation) promotes cellular growth and inhibits apoptosis and is more commonly found in patients with intermittent sun exposure compared to those with chronically sun-exposed skin or unexposed skin [47].
  • NRAS mutations. Among the three main proto-oncogenes of the RAS family (NRAS, KRAS, and HRAS), NRAS mutations play a key role in continuously activating pathways that lead to cell growth, proliferation, and cell cycle dysfunction. They are found in approximately 1/4 of patients with malignant melanoma, particularly in those with non-exposed skin, and are associated with aggressive clinical forms and poor prognosis [48,49].
  • The neurofibromatosis type 1 (NF1) mutation leads to a loss of function in certain tumor suppressors. NF1 mutations appear to be correlated with high UV exposure, resulting in a high mutational burden [50,51].
  • The TERT (telomerase reverse transcriptase) promoter mutation is a UV-induced mutation associated with poor clinical prognosis. This mutation typically occurs in the promoter region, resulting in increased expression of the gene [52].
  • CDKN2A Mutation. The CDKN2A gene contributes to cellular homeostasis by limiting uncontrolled cell division through mechanisms that halt the progression of the cell cycle. Its function is essential in preventing the unchecked proliferation characteristic of tumor development. When mutations occur in this gene, normal growth regulation is disrupted, promoting tumor development. Individuals who carry CDKN2A mutations face a markedly increased risk of developing multiple primary melanomas, often at an earlier age. [53,54].
  • KIT is a proto-oncogene receptor tyrosine kinase and binds to stem cell factor. By activating the KIT protein, cell growth, proliferation, survival, and migration can be affected. KIT mutations occur more commonly in areas of chronic sun damage [55].
  • BAP1 Tumor Predisposition Syndrome (BAP1-TPDS) is an inherited cancer syndrome marked by germline mutations in the BRCA1-associated protein 1 (BAP1) gene [56]. The consequences include genomic instability, uncontrolled cell proliferation, and resistance to apoptosis. In the case of cutaneous melanoma, patients with germline mutations in BAP1 develop multiple atypical melanocytic lesions (dome-shaped, skin-colored to reddish papules), which are histologically distinct from conventional melanomas [57,58].
  • TP53 Mutation. In human biology, the TP53 gene plays a major role in preserving genomic integrity and is often described as the “guardian of the genome.” This designation stems from its crucial function in cellular defense mechanisms, particularly in detecting DNA damage and initiating appropriate responses such as cell cycle arrest, DNA repair, or apoptosis. By preventing the propagation of cells with genetic errors, TP53 serves as a key tumor suppressor and a vital component in maintaining cellular homeostasis and protecting against malignant transformation [10]. The TP53 mutation has been found in association with BRAF, NRAS, and NF1 mutations and seems to appear at a later stage in tumor development. Even though TP53 is rarely mutated in melanoma, reduced levels of p53 contribute to aggressiveness and resistance to therapy for patients with malignant melanoma [59,60].

Genetic Mutations in Urological Cancers

There is increasing evidence that genetic susceptibility factors and familial associations may influence the incidence of UC, although their role is not as well defined as in the case of malignant melanoma.

  • BAP1 Tumor Predisposition Syndrome (BAP1-TPDS) can predispose individuals not only to cutaneous and uveal melanoma but also to renal cell carcinoma (RCC) [57].

In case of cutaneous melanoma, patients with Germline mutations in BAP1 develop multiple atypical melanocytic lesions (dome-shaped, skin-colored to reddish papules), histologically distinct from conventional melanomas [58].

Kapur et al [61] in a retrospective analysis on 145 patients with primary clear cell renal cell carcinoma (ccRCC) concluded that in RCC, the clear cell subtype (ccRCC) germline mutations occur in approximately 10–15% of ccRCC. This study concluded that these patients are associated with poorer overall survival compared to those without the mutation.

Studies on the expression and prognostic role of BAP1 in prostate cancer are currently lacking. However, Steurer et al. immunohistochemically analyzed more than 17,000 prostate cancer cases, assembled on a tissue microarray over a 10-year period, and concluded that their study shows BAP1 upregulation is associated with prostate cancer progression and aggressiveness [62].

  • CDKN2A Mutation. The role of CDKN2A mutations in renal cell carcinoma is less clear. Recently, in a study, Kiatprungvech and colleagues [63] demonstrated that CDKN2A mutations may be associated with higher tumor grade and poorer prognosis in RCC, development, and sarcomatoid changes.

Deletions of CDKN2A are a molecular risk factor for tumour progression in non-muscle-invasive bladder cancers, an indicator of increased aggressiveness and worse prognosis in muscle-invasive bladder cancers [64].

In a meta-analysis investigating the involvement of CDKN2A methylation in prostate cancer, Cao et al. [65] found no strong evidence supporting a significant association between this epigenetic alteration and the onset or advancement of the disease. Nevertheless, lower levels of CDKN2A expression were correlated with poorer disease-free survival outcomes, suggesting potential prognostic relevance.

  • MITF Mutation. The Microphthalmia-associated Transcription Factor (MITF) regulates genes involved in melanogenesis, melanocyte survival and proliferation, and DNA repair. The MITF-E318K variant is a heterozygous missense mutation characterized by the replacement of glutamic acid with lysine at the 318th amino acid position in the protein sequence.. Carriers have a higher risk of developing early-onset melanoma [66].

This mutation was also identified in patients with RCC, suggesting a shared genetic risk factor with melanoma. In their study, Lang et al. [67] observed that the presence of the pathogenic MITF variant in a family with bilateral and multifocal type 1 papillary renal cell carcinoma reinforces its potential role as a genetic risk factor for RCC. These findings also highlight the need to consider MITF variant screening regardless of the tumor’s histological subtype.

  • TP53 mutation. The role of the p53 pathway in renal cancer is underestimated. In RCC, there is a low rate of p53 mutations, which leads to poor response to conventional therapies or even therapy resistance [68].

According to findings reported by Wu et al. [69], alterations in the TP53 gene were identified in half of the individuals diagnosed with bladder cancer. It is worth noting that these genetic alterations appeared with greater frequency in tumors that had penetrated the bladder’s muscular layer, as opposed to those confined to the superficial, non-muscle-invasive stages. Patients with TP53 mutations were associated with lower TP53 mRNA expression levels, more advanced tumor stages, and higher histologic grades.

  • Loss of function in the VHL gene, often caused by inherited mutations, is associated with the development of von Hippel-Lindau hereditary cancer syndrome. This rare genetic condition can predispose affected individuals to various tumor types, including, in some cases, clear-cell renal cell carcinoma [70].
  • Alterations in the BRCA1 and BRCA2 gene pathways have been linked to more aggressive disease phenotypes and less favorable prognoses in individuals affected by metastatic castration-resistant prostate cancer [71]. Specifically, inherited BRCA2 mutations are frequently observed in early-onset prostate cancer and are recognized as independent predictors of metastatic progression and reduced prostate cancer-specific survival [72,73]. Nyberg and colleagues [74] in a prospective cohort study confirmed the BRCA2 association with aggressive PCa. This mutation does not occur in other urological cancers or malignant melanoma.

CLINICAL IMPLICATIONS AND PERSONALIZED MEDICINE

Prevention is the main principle in reducing morbidity and mortality, as well as in lowering healthcare system costs.

Personalized medicine, which customizes prevention and treatment strategies based on an individual’s genetic, environmental, and lifestyle factors, has greatly advanced cancer care [75].

Understanding the link between malignant melanoma and urological cancers is a key advancement toward personalized medicine.

Identifying genetic mutations and syndromes that link melanoma to urological cancers highlights the importance of genomic profiling in cancer diagnosis and treatment. The development of next-generation sequencing (NGS) technologies has made it possible to identify particular genetic alterations that may increase a person’s susceptibility to various types of cancer or impact how they respond to specific therapeutic interventions [76].

Tailoring Prevention Strategies (Table 1).

Reduce Ultraviolet Exposure and the Role of Vitamin D

Excessive UV exposure is widely recognized as the leading environmental risk factor for melanoma. In people with an increased hereditary predisposition to skin cancer [77], tailored prevention approaches may involve regularly applying sunscreens that offer protection against both UVA and UVB rays, opting for clothing that minimizes sun exposure, and refraining from the use of artificial tanning devices.

In a systematic review and meta-analysis, Song et al. [78] concluded that a moderate dietary vitamin D supplement to prevent serum 25(OH)D deficiency may be beneficial for the long-term survival of melanoma patients.

A prospective study conducted by Lin et al. [58] suggested that exposure to ultraviolet radiation may be associated with a reduced incidence of prostate cancer. Additionally, research has shown that both low and excessively high levels of vitamin D may contribute to a higher likelihood of developing prostate cancer, particularly in cases involving more aggressive tumor forms [19]. Therefore, maintaining normal vitamin D levels is essential.

Table 1: Recommendations for lifestyle changes
Malignant melanoma RCC Bladder cancer Prostate cancer
Smoking cessation uncertain yes yes yes
Reduce ultraviolet exposure yes no/increase
Vitamin D moderate increase dietary normal vitamin D levels
Obesity uncertain yes yes yes
Dietary antioxidants yes yes yes yes

Smoking Cessation in Malign Melanoma and Urological Cancers Prevention

While the relationship between smoking and malignant melanoma remains inconclusive, tobacco use is widely recognized as a major contributor to the development of several urologic malignancies, especially bladder cancer and renal cell carcinoma. Smoking cessation programs, aided by pharmacological treatments such as nicotine replacement therapy (NRT), have proven effective in reducing the incidence or recurrence of progression of RCC [26] and bladder cancer [80]. In a network meta-analysis of 20 randomized controlled trials, Gou et al. [81] concluded that Varenicline and Bupropion increased the odds of smoking abstinence.

Obesity and Dietary Interventions in Malignant Melanoma and Urological Cancers Prevention

Studies that focus specifically on the link between obesity and melanoma prognosis are limited [61]. Obesity may be a risk factor for bladder cancer recurrence [83] and a higher risk of death from prostate cancer [84].

The use of dietary antioxidants has shown promising results in studies, supporting the potential role of antioxidants in the prevention of malignant melanoma related to UV exposure.

Obesity and dietary habits are well-established risk factors for prostate cancer and RCC.

Personalized weight management programs guided by genetic and metabolic profiles, and dietary recommendations, such as reducing red and processed meats and increasing intake of plant-based foods rich in antioxidants (e.g., lycopene), regular physical activity, are essential for individuals at high risk for prostate cancer and RCC [64,65].

Screening and Surveillance

Patients with a history of melanoma or urological cancer need careful monitoring for the potential development of additional malignancies. Routine screenings, such as skin examinations and urological assessments, can aid in early detection and improve patient outcomes. Screening for malignant melanoma is recommended for individuals with certain risk factors, including family or personal history, lifestyle or occupational predispositions, and being an older white male.

Patients with germline mutations in BAP1, CDKN2A, MITF, and other cancer-related genes may benefit from more extensive cancer screening protocols. These could include regular skin examinations for melanoma, imaging studies to detect urological cancers, and continuous monitoring for other associated malignancies.

Skin cancer screening remains a topic of debate .

There is an ongoing debate regarding the value of routine screening for skin cancer.

According to current assessments by major public health authorities, existing evidence is insufficient to clearly confirm or reject the benefits of regularly screening asymptomatic adults in the general population [87]. In contrast, screening is recommended for high-risk individuals by both the Australian Cancer Network [88] and the Canadian Cancer Society [89].

The group of patients at higher risk for developing skin cancer includes individuals with a personal history of skin cancer, those with light-colored skin, eyes, and hair, a high number of moles or freckles, and a history of multiple blistering sunburns during childhood [87]. In individuals at elevated risk, initial screening typically involves assessment of skin lesions using the “ABCDE” criteria, focusing on asymmetry, irregular borders, variations in color, and lesions exceeding 6 mm in diameter. Another widely used approach is the visual examination of the skin to detect pigmented lesions that appear noticeably different from the patient’s other moles, a method commonly referred to as the “ugly duckling” sign [90].

The American Academy of Dermatology advises that patients diagnosed with cutaneous melanoma undergo cancer risk counseling if they present specific risk factors. These include having a family history involving three or more relatives on the same side affected by invasive melanoma or pancreatic cancer; the presence of three or more primary invasive melanomas, particularly if at least one was diagnosed before the age of 45; the occurrence of one or more melanocytic BAP1-mutated atypical intradermal tumors (MBAITs) accompanied by a family history of cancers such as mesothelioma, meningioma, or uveal melanoma; the presence of two or more MBAITs; or a broader family history that includes other forms of cancer. [91]. According to the National Comprehensive Cancer Network (NCCN), genetic testing for p16/CDKN2A mutations is advised in cases where an individual or family history includes three or more invasive cutaneous melanomas, or a combination of invasive melanoma, pancreatic cancer, and/or astrocytoma. Furthermore, individuals diagnosed with invasive cutaneous melanoma who also have a first-degree relative affected by pancreatic cancer are considered appropriate candidates for genetic evaluation. [92].

Renal cancer screening .

There is currently no evidence to support primary screening in the general population. The most pragmatic approach is to screen high-risk individuals or integrate this screening with other routine screening programs. This strategy improves the cost-effectiveness ratio, particularly for patients at risk of RCC [93]. Genetic assessment is advised in individuals under the age of 47, as well as in those presenting with tumors affecting both kidneys or multiple sites within the same kidney. It is also warranted for patients who have a direct or extended family history of renal cell carcinoma or relatives carrying a confirmed pathogenic genetic alteration. Additionally, testing is appropriate when histopathological characteristics raise suspicion of an inherited subtype of renal cancer [94].

Bladder cancer screening .

Current evaluations by major public health experts indicate a lack of sufficient high-quality evidence to clearly assess whether bladder cancer screening in asymptomatic adults provides more benefits than harms [95]. Similar recommendations are also found in the EAU Guidelines 2024 [96].

Prostate cancer screening .

Screening for PCa is still controversial. [97]. Prostate screening is associated with an increased diagnosis of prostate cancer (PCa), the detection of more localized disease, and fewer cases of advanced PCa. However, no PCa-specific survival benefit has been observed, and there has been no overall survival (OS) benefit [98]. Consequently, population-based screening has not been widely adopted.

According to the 2024 EAU Guidelines, PSA testing for prostate cancer screening is recommended for well-informed men at higher risk of PCa. It is generally recommended for men aged 50 and above. Earlier screening may be appropriate for those over 45 who have close relatives previously diagnosed with the disease or who belong to high-risk populations, such as individuals of African ancestry. Furthermore, men with confirmed BRCA2 mutations are advised to initiate screening starting at age 40 [99].

Hereditary genetic testing is recommended for men who have several relatives affected by prostate cancer at a relatively early age— specifically before turning 60, or in cases where a family member has died as a result of the disease. Genetic testing may also be appropriate for men who have a familial pattern of high-risk inherited mutations or a history of multiple cancer diagnoses occurring on the same side of the family [99].

Personalized Treatment

The goal of personalized medicine for cancer patients is to select the most effective treatment tailored to each individual, aiming for maximum efficacy, reduced side effects, a lower risk of drug resistance, and ultimately, improved overall survival. With advancements in technology, genetic testing has become increasingly accessible and is now part of routine clinical practice. [100]. Advancements in genomics and immunology are driving the development of personalized treatments that focus on specific molecular pathways and immune mechanisms common to both melanoma and urological cancers. The convergence of these genetic pathways offers promising potential for the creation of targeted therapeutic approaches.

In most cancer cases, treatment follows well-established standards that are outlined in specialized guidelines. It includes surgical therapy (nephrectomy, prostatectomy, radical cystectomy, melanoma surgery, etc.), radiotherapy, and/or hormone therapy.

In the final stages, palliative therapies are offered to patients with metastatic cancer, and these treatments can help enhance quality of life while potentially prolonging disease-free survival.

Angiogenesis inhibitors and immunotherapies have shown notable effectiveness in treating malignant melanoma and urological cancers, particularly kidney and bladder cancers. Most prostate cancers exhibit resistance to immunotherapies, particularly immune checkpoint inhibitors [101].

Angiogenesis inhibitors.

VEGF inhibitors function by blocking the interaction between VEGF and its receptors (VEGFRs) on endothelial cells, effectively stopping the signaling processes responsible for initiating new blood vessel formation [102]. VEGF inhibitors are primarily categorized into two groups: monoclonal antibodies, which bind directly to VEGF ligands to prevent receptor interaction, and tyrosine kinase inhibitors (TKIs), which target VEGFRs along with associated kinases to block angiogenesis signaling pathways [103,104]. These inhibitors have shown notable effectiveness in adjuvant treatment for renal cell carcinoma (RCC) and malignant melanoma, though their use is more restricted in other types of urological cancers.

Monoclonal VEGF antibodies, particularly Bevacizumab, have demonstrated effectiveness in the treatment of both renal cell carcinoma (RCC) and malignant melanoma [105,106].

Tyrosine kinase inhibitors are commonly prescribed as initial or subsequent targeted treatments for patients with kidney cancer that has progressed locally or spread to distant sites [107,108]. Initial treatment with sunitinib alone has demonstrated significant benefits by delaying disease progression and enhancing the overall tumor response. Some tyrosine kinase inhibitors, such as pazopanib, have shown similar effectiveness to sunitinib when used in the initial treatment of patients with metastatic kidney cancer [109]. Certain agents, including cabozantinib, have shown clinical benefit in patients with advanced clear-cell renal cell carcinoma that no longer responds to therapies targeting the VEGF receptor pathway. This option is particularly relevant for individuals who have not yet received immune checkpoint inhibitors and who have previously undergone one or two systemic treatment regimens [110].

For patients with malignant melanoma, sunitinib may show efficacy, particularly in those with KIT mutations [111].

Checkpoint inhibitors

Immunotherapeutic strategies—especially those directed at modulating checkpoint pathways—have shown significant efficacy in the treatment of various cancers. A prominent category within these therapies includes drugs designed to block the binding between PDL1 and its associated receptor, PD-1, both of which are crucial in helping tumors evade immune surveillance. Interrupting this interaction enables the reactivation of T cells, thereby strengthening the immune system’s capacity to detect and destroy malignant cells.

Tumor mutational burden (TMB) serves as an essential biomarker for predicting immunotherapy outcomes, representing the total count of somatic mutations within a tumor’s DNA. Although tumor mutational burden (TMB) does not appear to impact the success of treatments aimed at inhibiting angiogenesis, it is considered an important biomarker in forecasting patient responsiveness to immunotherapeutic strategies. These treatments work by altering specific immune checkpoints involved in immune regulation, including pathways mediated by proteins like PD-1, PD-L1, and CTLA-4 [112]. Tumors with a high mutational burden typically generate a higher quantity of neoantigens (abnormal proteins created by genetic mutations). This abundance of neoantigens improves the chances of immune system recognition and response, thereby boosting the effectiveness of immunotherapy [113]. Cancers such as melanoma, lung cancer, and urothelial cancers often have a high tumor mutational burden (TMB), while prostate and breast cancers typically show lower TMB [69]. Tumors with high TMB tend to express a wider array of neoantigens, making them more prone to immune system recognition and response, particularly when treated with checkpoint inhibitors. As a result, immunotherapy is generally more effective in cancers with elevated TMB [114,115].

Both malignant melanoma and RCC are highly immunogenic tumors, meaning they can provoke an immune response. The strong immunogenic nature of both cancer types has contributed to their responsiveness to immunotherapeutic approaches, especially those involving checkpoint blockade with agents targeting PD-1 and CTLA-4. However, the application of PD-L1 inhibitors in the treatment of renal cell carcinoma remains relatively restricted [116].

After the introduction of ipilimumab in 2011 for the systemic treatment of melanoma, immunotherapy has made significant strides in treating both resectable and unresectable melanoma [117]. The CheckMate 037 [118,119]and CheckMate 066 trials established nivolumab’s efficacy in patients with metastatic melanoma. Additionally, the KEYNOTE-006 trial, which compared pembrolizumab and ipilimumab for advanced melanoma, showed pembrolizumab’s superiority in terms of the 2-year overall survival rate [120].

In the 2023 ASCO Guideline Update on Systemic Therapy for Melanoma, checkpoint inhibitors are positioned as the primary treatment choice for malignant melanoma. They are recommended for neoadjuvant therapy (in resected stage III B-IV melanoma), as adjuvant therapy (for resected stage II B or higher), and for unresectable melanoma. For patients with unresectable or metastatic cutaneous melanoma, or resected stage IV melanoma, the combination of ipilimumab and nivolumab serves as one of the primary treatment options [121].

In selected cases of metastatic kidney cancer, monotherapy with an immune checkpoint inhibitor, such as pembrolizumab, can represent a suitable therapeutic choice, particularly when combination regimens are not indicated or tolerated. However, in metastatic patients whose disease is categorized as intermediate or poor risk and who are suitable candidates for immunotherapy, current clinical guidelines tend to favor starting with a dual-agent immunotherapeutic regimen as the initial line of systemic treatment [122]. Currently, five immunotherapy-based combination treatments have received approval for clinical use. These include the pairing of ipilimumab with nivolumab, pembrolizumab with axitinib, as well as other therapeutic duos such as nivolumab combined with cabozantinib, avelumab administered alongside axitinib, and pembrolizumab used in conjunction with Lenvatinib [123]. Among these, the ipilimumab and nivolumab combination is specifically approved for intermediate- and poor-risk mRCC patients [124].

Despite their efficacy, these agents also cause immune-related adverse effects that may be life-threatening if not detected and controlled appropriately [125].

Targeting the PD-1/PD-L1 immune checkpoint pathway has demonstrated significant therapeutic benefits in patients with advanced or inoperable bladder cancer, including those with metastatic disease. Nivolumab has received FDA approval as adjuvant therapy in individuals with urothelial carcinoma who face an elevated risk of disease recurrence after undergoing surgery. Additionally, the PD1 inhibitor pembrolizumab was authorized for use in patients whose condition has worsened despite prior treatment with platinumbased chemotherapy, a decision supported by findings from the phase III clinical study known as KEYNOTE-045 [126].

For prostate cancer, the use of angiogenesis and checkpoint inhibitors in therapeutic strategies is limited. Currently, pembrolizumab is the only FDA-approved treatment option, although it has not been approved by the EMA. [127].

Beyond the therapies previously mentioned, each of these pathologies benefits from specific treatments targeting different types of genetic mutations and molecular pathways.

For malignant melanoma with BRAF gene mutations (V600E/K), treatment combinations such as dabrafenib with trametinib (or encorafenib with binimetinib) are indicated [128,129].

In prostate cancer, besides androgen receptor pathway inhibitors, non-hormonal, non-cytotoxic treatments like poly-ADP ribose polymerase inhibitors (PARPi) have emerged, specifically designed to target cancer cells harboring BRCA mutations [130]. While no AKT inhibitors are currently approved, the investigational drug ipatasertib has demonstrated significant activity in clinical trials when combined with abiraterone acetate in patients with loss of the tumor suppressor protein PTEN, as confirmed by immunohistochemistry [131].

CONCLUSION

The link between malignant melanoma and urological cancers is underpinned by common epidemiological factors and genetic mutations, establishing a foundation for progress in personalized medicine. As understanding of the shared molecular pathways in these cancers expands, opportunities for tailored prevention strategies, screening practices, and individualized treatments become increasingly apparent. Identifying genetic predispositions—such as BAP1 and CDKN2A mutations—early on, along with employing targeted therapies and immunotherapies, is expected to meaningfully enhance patient care in the near future.

Personalized medicine holds great promise for patients with elevated risks of both melanoma and urological cancers. By leveraging genomic profiling alongside advancements in immunotherapy and targeted therapies, more tailored and effective treatment options become possible, enhancing patient outcomes. However, ongoing research and clinical trials are essential to fully understand the effects of shared genetic mutations and molecular pathways and to establish comprehensive, individualized treatment protocols. Further refinement in treatment sequencing approaches will also be necessary to optimize care for these patients.

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 for publication elsewhere. This research received no external funding.

Authors’ contribution

DPH contributed to the manuscript’s conceptualization, methodology, discussion, supervision, and writing. MAB contributed to the manuscript’s editing, data curation, and writing. NM contributed to the editing and data curation of the manuscript. OSC contributed to the conceptualization, discussion, and supervision of the manuscript. MDV contributed to the manuscript’s conceptualization, editing, and data curation. CT contributed to the discussion, data curation, and writing of the manuscript. IA contributed to the methodology, review, and editing of the manuscript. BOF contributed to the conceptualization, discussion, review, and supervision of the manuscript. VMG contributed to the editing, data curation, and writing of the manuscript. OKIM contributed to the conceptualization, discussion, and supervision of the manuscript. CTM contributed to the conceptualization, methodology, investigation, discussion, review, editing, supervision, data curation, and writing of the manuscript.. All authors have read and agreed to the published version of the manuscript.

Ethics approval and consent to participate

The study was conducted under the Declaration of Helsinki. The research was conducted under ethical guidelines and regulations, ensuring compliance with all necessary protocols.

Patient consent for publication

Written informed consent has been obtained from the patient to publish this paper.

References:

  1. Gluba-Brzózka A, Rysz J, Ławiński J, Franczyk B. Renal Cell Cancer and Obesity. Int J Mol Sci. 2022 Mar 21;23(6):3404.
  2. Saginala K, Barsouk A, Aluru JS, Rawla P, Barsouk A. Epidemiology of Melanoma. Med Sci (Basel). 2021 Oct 20;9(4):63.
  3. Capitanio U, Bensalah K, Bex A, Boorjian SA, Bray F, Coleman J, et al. Epidemiology of Renal Cell Carcinoma. Eur Urol. 2019 Jan;75(1):74–84.
  4. Bukavina L, Bensalah K, Bray F, Carlo M, Challacombe B, Karam JA, et al. Epidemiology of Renal Cell Carcinoma: 2022 Update. Eur Urol. 2022 Nov;82(5):529–42.
  5. Siegel RL, Miller KD, Wagle NS, Jemal A. Cancer statistics, 2023. CA A Cancer J Clinicians. 2023 Jan;73(1):17–48.
  6. Mártha O, Balan D, Porav-Hodade D, Drágus E, Vartolomei MD, Chibelean CB, et al. The role of neutrophil to lymphocyte ratio in patients with pTa non-muscle invasive bladder cancer. Revista Romana de Medicina de Laborator. 2020 Jan 1;28(1):29–38.
  7. Bray F, Laversanne M, Sung H, Ferlay J, Siegel RL, Soerjomataram I, et al. Global cancer statistics 2022: GLOBOCAN estimates of incidence and mortality worldwide for 36 cancers in 185 countries. CA Cancer J Clin. 2024;74(3):229–63.
  8. Gatta G, van der Zwan JM, Casali PG, Siesling S, Dei Tos AP, Kunkler I, et al. Rare cancers are not so rare: the rare cancer burden in Europe. Eur J Cancer. 2011 Nov;47(17):2493–511.
  9. Loghin, A.; Preda, O.; Bacârea, V.; Moldovan, C.; Porav-Hodade, D.; Dema, A.; Berger, N.; Borda, A. Predictive preoperatory variables of the prostate tumor volume. Romanian J. Morphol. Embryol. 2011, 52, 363–368.
  10. Park JS, Kim J, Elghiaty A, Ham WS. Recent global trends in testicular cancer incidence and mortality. Medicine (Baltimore). 2018 Sep;97(37):e12390.
  11. Fu L, Tian T, Yao K, Chen XF, Luo G, Gao Y, et al. Global Pattern and Trends in Penile Cancer Incidence: Population-Based Study. JMIR Public Health Surveill. 2022 Jul 6;8(7):e34874.
  12. Gandini S, Sera F, Cattaruzza MS, Pasquini P, Picconi O, Boyle P, et al. Meta-analysis of risk factors for cutaneous melanoma: II. Sun exposure. Eur J Cancer. 2005 Jan;41(1):45–60.
  13. Brash DE, Ziegler A, Jonason AS, Simon JA, Kunala S, Leffell DJ. Sunlight and sunburn in human skin cancer: p53, apoptosis, and tumor promotion. J Investig Dermatol Symp Proc. 1996 Apr;1(2):136–42.
  14. Grasso AAC, Blanco S, Fantini G, Torelli F, Grasso M. Relationship between sun exposure and kidney cancer: preliminary experience with the evaluation of recreational UV exposure. Urologia. 2014;81(2):115–9.
  15. Karami S, Boffetta P, Stewart P, Rothman N, Hunting KL, Dosemeci M, et al. Occupational sunlight exposure and risk of renal cell carcinoma. Cancer. 2010 Apr 15;116(8):2001–10.
  16. Boot IWA, Wesselius A, Yu EYW, White E, Brustad M, Marques C, et al. Dietary vitamin D intake and the bladder cancer risk: A pooled analysis of prospective cohort studies. Clin Nutr. 2023 Aug;42(8):1462–74.
  17. Zhang H, Zhang H, Wen X, Zhang Y, Wei X, Liu T. Vitamin D Deficiency and Increased Risk of Bladder Carcinoma: A Meta-Analysis. Cell Physiol Biochem. 2015;37(5):1686–92.
  18. Gislefoss RE, Stenehjem JS, Hektoen HH, Andreassen BK, Langseth H, Axcrona K, et al. Vitamin D, obesity and leptin in relation to bladder cancer incidence and survival: prospective protocol study. BMJ Open. 2018 Mar 30;8(3):e019309.
  19. Kristal AR, Till C, Song X, Tangen CM, Goodman PJ, Neuhauser ML, et al. Plasma vitamin D and prostate cancer risk: results from the Selenium and Vitamin E Cancer Prevention Trial. Cancer Epidemiol Biomarkers Prev. 2014 Aug;23(8):1494–504.
  20. Tuohimaa P, Tenkanen L, Ahonen M, Lumme S, Jellum E, Hallmans G, et al. Both high and low levels of blood vitamin D are associated with a higher prostate cancer risk: a longitudinal, nested case-control study in the Nordic countries. Int J Cancer. 2004 Jan 1;108(1):104–8.
  21. Murphy AB, Nyame Y, Martin IK, Catalona WJ, Hollowell CMP, Nadler RB, et al. Vitamin D deficiency predicts prostate biopsy outcomes. Clin Cancer Res. 2014 May 1;20(9):2289–99.
  22. Stadler R. The effect of smoking in melanoma outcome still remains an enigma. J Eur Acad Dermatol Venereol. 2019 Dec;33(12):2219–20.
  23. Arafa A, Mostafa A, Navarini AA, Dong JY. The association between smoking and risk of skin cancer: a meta-analysis of cohort studies. Cancer Causes Control. 2020 Aug;31(8):787–94.
  24. Sondermeijer L, Lamboo LGE, de Waal AC, Galesloot TE, Kiemeney LALM, van Rossum M, et al. Cigarette Smoking and the Risk of Cutaneous Melanoma: A Case-Control Study. Dermatology. 2020;236(3):228–36.
  25. Hunt JD, van der Hel OL, McMillan GP, Boffetta P, Brennan P. Renal cell carcinoma in relation to cigarette smoking: meta-analysis of 24 studies. Int J Cancer. 2005 Mar 10;114(1):101–8.
  26. Sheikh M, Mukeriya A, Zahed H, Feng X, Robbins HA, Shangina O, et al. Smoking Cessation After Diagnosis of Kidney Cancer Is Associated With Reduced Risk of Mortality and Cancer Progression: A Prospective Cohort Study. J Clin Oncol. 2023 May 20;41(15):2747–55.
  27. Hecht SS. Human urinary carcinogen metabolites: biomarkers for investigating tobacco and cancer. Carcinogenesis. 2002 Jun;23(6):907–22.
  28. Freedman ND, Silverman DT, Hollenbeck AR, Schatzkin A, Abnet CC. Association between smoking and risk of bladder cancer among men and women. JAMA. 2011 Aug 17;306(7):737–45.
  29. Bjurlin MA, Matulewicz RS, Roberts TR, Dearing BA, Schatz D, Sherman S, et al. Carcinogen Biomarkers in the Urine of Electronic Cigarette Users and Implications for the Development of Bladder Cancer: A Systematic Review. Eur Urol Oncol. 2021 Oct;4(5):766–83.
  30. Kispert S, Marentette J, McHowat J. Cigarette smoking promotes bladder cancer via increased platelet-activating factor. Physiol Rep. 2019 Feb;7(3):e13981.
  31. Islami F, Moreira DM, Boffetta P, Freedland SJ. A systematic review and meta-analysis of tobacco use and prostate cancer mortality and incidence in prospective cohort studies. Eur Urol. 2014 Dec;66(6):1054–64.
  32. Miracle CE, McCallister CL, Egleton RD, Salisbury TB. Mechanisms by which obesity regulates inflammation and anti-tumor immunity in cancer. Biochem Biophys Res Commun. 2024 Jul 23;733:150437.
  33. Turco F, Tucci M, Di Stefano RF, Samuelly A, Bungaro M, Audisio M, et al. Renal cell carcinoma (RCC): fatter is better? A review on the role of obesity in RCC. Endocrine-Related Cancer. 2021 Jul 1;28(7):R207–16.
  34. Graff RE, Wilson KM, Sanchez A, Chang SL, McDermott DF, Choueiri TK, et al. Obesity in Relation to Renal Cell Carcinoma Incidence and Survival in Three Prospective Studies. Eur Urol. 2022 Sep;82(3):247–51.
  35. Vidal AC, Howard LE, Moreira DM, Castro-Santamaria R, Andriole GL, Freedland SJ. Obesity increases the risk for high-grade prostate cancer: results from the REDUCE study. Cancer Epidemiol Biomarkers Prev. 2014 Dec;23(12):2936–42.
  36. Pukkala E, Martinsen JI, Weiderpass E, Kjaerheim K, Lynge E, Tryggvadottir L, et al. Cancer incidence among firefighters: 45 years of follow-up in five Nordic countries. Occup Environ Med. 2014 Jun;71(6):398–404.
  37. Stec AA, Dickens KE, Salden M, Hewitt FE, Watts DP, Houldsworth PE, et al. Occupational Exposure to Polycyclic Aromatic Hydrocarbons and Elevated Cancer Incidence in Firefighters. Sci Rep. 2018 Feb 6;8(1):2476.
  38. EAU Guideline 2024: Non-muscle-invasive Bladder Cancer; https://uroweb.org/guidelines/non-muscle-invasive-bladder-cancer/chapter/epidemiology-aetiology-and-pathology.
  39. Karami S, Boffetta P, Brennan P, Stewart PA, Zaridze D, Matveev V, et al. Renal Cancer Risk and Occupational Exposure to Polycyclic Aromatic Hydrocarbons and Plastics. Journal of Occupational & Environmental Medicine. 2011 Feb;53(2):218–23.
  40. Bosetti C, Boffetta P, La Vecchia C. Occupational exposures to polycyclic aromatic hydrocarbons, and respiratory and urinary tract cancers: a quantitative review to 2005. Annals of Oncology. 2007 Mar;18(3):431–46.
  41. EAU Guideline: Ranal Cell Carcinoma: https://uroweb.org/guidelines/renal-cell-carcinoma/chapter/epidemiology-aetiology-and-pathology.
  42. Van Den Bulk J, Verdegaal EM, De Miranda NF. Cancer immunotherapy: broadening the scope of targetable tumours. Open Biol. 2018 Jun;8(6):180037.
  43. Venter JC, Adams MD, Myers EW, Li PW, Mural RJ, Sutton GG, et al. The Sequence of the Human Genome. Science. 2001 Feb 16;291(5507):1304–51.
  44. Australian Pancreatic Cancer Genome Initiative, ICGC Breast Cancer Consortium, ICGC MMML-Seq Consortium, ICGC PedBrain, Alexandrov LB, Nik-Zainal S, et al. Signatures of mutational processes in human cancer. Nature. 2013 Aug 22;500(7463):415–21.
  45. Davis EJ, Johnson DB, Sosman JA, Chandra S. Melanoma: What do all the mutations mean? Cancer. 2018 Sep;124(17):3490–9.
  46. Davies H, Bignell GR, Cox C, Stephens P, Edkins S, Clegg S, et al. Mutations of the BRAF gene in human cancer. Nature. 2002 Jun 27;417(6892):949–54.
  47. Maldonado JL, Fridlyand J, Patel H, Jain AN, Busam K, Kageshita T, et al. Determinants of BRAF mutations in primary melanomas. J Natl Cancer Inst. 2003 Dec 17;95(24):1878–90.
  48. Krauthammer M, Kong Y, Bacchiocchi A, Evans P, Pornputtapong N, Wu C, et al. Exome sequencing identifies recurrent mutations in NF1 and RASopathy genes in sun-exposed melanomas. Nat Genet. 2015 Sep;47(9):996–1002.
  49. Curtin JA, Fridlyand J, Kageshita T, Patel HN, Busam KJ, Kutzner H, et al. Distinct sets of genetic alterations in melanoma. N Engl J Med. 2005 Nov 17;353(20):2135–47.
  50. Shen MH, Harper PS, Upadhyaya M. Molecular genetics of neurofibromatosis type 1 (NF1). J Med Genet. 1996 Jan;33(1):2–17.
  51. Cirenajwis H, Lauss M, Ekedahl H, Törngren T, Kvist A, Saal LH, et al. NF1-mutated melanoma tumors harbor distinct clinical and biological characteristics. Mol Oncol. 2017 Apr;11(4):438–51.
  52. Griewank KG, Murali R, Puig-Butille JA, Schilling B, Livingstone E, Potrony M, et al. TERT Promoter Mutation Status as an Independent Prognostic Factor in Cutaneous Melanoma. JNCI: Journal of the National Cancer Institute [Internet]. 2014 Sep [cit ed 2024 Oct 20];106(9). Available from: https://academic.oup.com/jnci/article-lookup/doi/10.1093/jnci/dju246
  53. Young RJ, Waldeck K, Martin C, Foo JH, Cameron DP, Kirby L, et al. Loss of CDKN 2A expression is a frequent event in primary invasive melanoma and correlates with sensitivity to the CDK 4/6 inhibitor PD 0332991 in melanoma cell lines. Pigment Cell Melanoma Res. 2014 Jul;27(4):590–600.
  54. Goldstein AM, Chan M, Harland M, Hayward NK, Demenais F, Bishop DT, et al. Features associated with germline CDKN2A mutations: a GenoMEL study of melanoma-prone families from three continents. J Med Genet. 2007 Feb;44(2):99–106.
  55. Curtin JA, Busam K, Pinkel D, Bastian BC. Somatic activation of KIT in distinct subtypes of melanoma. J Clin Oncol. 2006 Sep 10;24(26):4340–6.
  56. Wang A, Papneja A, Hyrcza M, Al-Habeeb A, Ghazarian D. Gene of the month: BAP1. J Clin Pathol. 2016 Sep;69(9):750–3.
  57. Shao YF, DeBenedictis M, Yeaney G, Singh AD. Germ Line BAP1 Mutation in Patients with Uveal Melanoma and Renal Cell Carcinoma. Ocul Oncol Pathol. 2021 Oct;7(5):340–5.
  58. Wiesner T, Obenauf AC, Murali R, Fried I, Griewank KG, Ulz P, et al. Germline mutations in BAP1 predispose to melanocytic tumors. Nat Genet. 2011 Aug 28;43(10):1018–21.
  59. Ozretić P, Hanžić N, Proust B, Sabol M, Trnski D, Radić M, et al. Expression profiles of p53/p73, NME and GLI families in metastatic melanoma tissue and cell lines. Sci Rep. 2019 Aug 28;9(1):12470.
  60. Cancer Genome Atlas Network. Genomic Classification of Cutaneous Melanoma. Cell. 2015 Jun 18;161(7):1681–96.
  61. Kapur P, Peña-Llopis S, Christie A, Zhrebker L, Pavía-Jiménez A, Rathmell WK, et al. Effects on survival of BAP1 and PBRM1 mutations in sporadic clear-cell renal-cell carcinoma: a retrospective analysis with independent validation. Lancet Oncol. 2013 Feb;14(2):159–67.
  62. Steurer S, Schwemmer L, Hube-Magg C, Büscheck F, Höflmayer D, Tsourlakis MC, et al. Nuclear up regulation of the BRCA1-associated ubiquitinase BAP1 is associated with tumor aggressiveness in prostate cancers lacking the TMPRSS2:ERG fusion. Oncotarget. 2019 Dec 24;10(67):7096–111.
  63. Kiatprungvech N, Sangkum P, Malinee R, Sommaluan S, Korkiatsakul V, Worawichawong S, et al. Genetic study of the CDKN2A and CDKN2B genes in renal cell carcinoma patients. Pract Lab Med. 2024 May;40:e00410.
  64. Worst TS, Weis CA, Stöhr R, Bertz S, Eckstein M, Otto W, et al. CDKN2A as transcriptomic marker for muscle-invasive bladder cancer risk stratification and therapy decision-making. Sci Rep. 2018 Sep 26;8(1):14383.
  65. Cao Z, Wei L, Zhu W, Yao X. Meta-analysis of CDKN2A methylation to find its role in prostate cancer development and progression, and also to find the effect of CDKN2A expression on disease-free survival (PRISMA). Medicine (Baltimore). 2018 Mar;97(12):e0182.
  66. Yokoyama S, Woods SL, Boyle GM, Aoude LG, MacGregor S, Zismann V, et al. A novel recurrent mutation in MITF predisposes to familial and sporadic melanoma. Nature. 2011 Dec 1;480(7375):99–103.
  67. Lang M, Vocke CD, Ricketts CJ, Metwalli AR, Ball MW, Schmidt LS, et al. Clinical and Molecular Characterization of Microphthalmia-associated Transcription Factor (MITF)-related Renal Cell Carcinoma. Urology. 2021 Mar;149:89–97.
  68. Amendolare A, Marzano F, Petruzzella V, Vacca RA, Guerrini L, Pesole G, et al. The Underestimated Role of the p53 Pathway in Renal Cancer. Cancers. 2022 Nov 22;14(23):5733.
  69. Wu G, Wang F, Li K, Li S, Zhao C, Fan C, et al. Significance of TP53 mutation in bladder cancer disease progression and drug selection. PeerJ. 2019;7:e8261.
  70. Kim WY, Kaelin WG. Role of VHL Gene Mutation in Human Cancer. JCO. 2004 Dec 15;22(24):4991–5004.
  71. Messina C, Cattrini C, Soldato D, Vallome G, Caffo O, Castro E, et al. BRCA Mutations in Prostate Cancer: Prognostic and Predictive Implications. Journal of Oncology. 2020 Sep 7;2020:1–7.
  72. Castro E, Goh C, Olmos D, Saunders E, Leongamornlert D, Tymrakiewicz M, et al. Germline BRCA Mutations Are Associated With Higher Risk of Nodal Involvement, Distant Metastasis, and Poor Survival Outcomes in Prostate Cancer. JCO. 2013 May 10;31(14):1748–57.
  73. Edwards SM, Kote-Jarai Z, Meitz J, Hamoudi R, Hope Q, Osin P, et al. Two Percent of Men with Early-Onset Prostate Cancer Harbor Germline Mutations in the BRCA2 Gene. The American Journal of Human Genetics. 2003 Jan;72(1):1–12.
  74. Nyberg T, Frost D, Barrowdale D, Evans DG, Bancroft E, Adlard J, et al. Prostate Cancer Risks for Male BRCA1 and BRCA2 Mutation Carriers: A Prospective Cohort Study. Eur Urol. 2020 Jan;77(1):24–35.
  75. Hoeben A, Joosten EAJ, van den Beuken-van Everdingen MHJ. Personalized Medicine: Recent Progress in Cancer Therapy. Cancers (Basel). 2021 Jan 11;13(2):242.
  76. Qin D. Next-generation sequencing and its clinical application. Cancer Biol Med. 2019 Feb;16(1):4–10.
  77. Sample A, He YY. Mechanisms and prevention of UV-induced melanoma. Photodermatol Photoimmunol Photomed. 2018 Jan;34(1):13–24.
  78. Song Y, Lu H, Cheng Y. To identify the association between dietary vitamin D intake and serum levels and risk or prognostic factors for melanoma: systematic review and meta-analysis. BMJ Open. 2022 Aug 26;12(8):e052442.
  79. Lin SW, Wheeler DC, Park Y, Cahoon EK, Hollenbeck AR, Freedman DM, et al. Prospective study of ultraviolet radiation exposure and risk of cancer in the United States. Int J Cancer. 2012 Sep 15;131(6):E1015-1023.
  80. van Osch FHM, Jochems SHJ, Reulen RC, Pirrie SJ, Nekeman D, Wesselius A, et al. The association between smoking cessation before and after diagnosis and non-muscle-invasive bladder cancer recurrence: a prospective cohort study. Cancer Causes Control. 2018 Jul;29(7):675–83.
  81. Guo K, Wang S, Shang X, E F, Hou L, Li J, et al. The effect of Varenicline and Bupropion on smoking cessation: A network meta-analysis of 20 randomized controlled trials. Addict Behav. 2022 Aug;131:107329.
  82. Cassano N, Caccavale S, Vena GA, Argenziano G. Body Mass Index and Melanoma Prognosis. Dermatol Pract Concept. 2021 Sep;11(4):e2021106.
  83. Lin Y, Wang Y, Wu Q, Jin H, Ma G, Liu H, et al. Association between obesity and bladder cancer recurrence: A meta-analysis. Clin Chim Acta. 2018 May;480:41–6.
  84. Tzenios N, Tazanios ME, Chahine M. The impact of body mass index on prostate cancer: An updated systematic review and meta-analysis. Medicine (Baltimore). 2022 Nov 11;101(45):e30191.
  85. Nouri-Majd S, Salari-Moghaddam A, Aminianfar A, Larijani B, Esmaillzadeh A. Association Between Red and Processed Meat Consumption and Risk of Prostate Cancer: A Systematic Review and Meta-Analysis. Front Nutr. 2022;9:801722.
  86. Zhang S, Wang Q, He J. Intake of red and processed meat and risk of renal cell carcinoma: a meta-analysis of observational studies. Oncotarget. 2017 Sep 29;8(44):77942–56.
  87. US Preventive Services Task Force, Mangione CM, Barry MJ, Nicholson WK, Chelmow D, Coker TR, et al. Screening for Skin Cancer: US Preventive Services Task Force Recommendation Statement. JAMA. 2023 Apr 18;329(15):1290.
  88. https://www.cancercouncil.com.au/cancer-prevention/screening/checking-for-skin-cancer/.
  89. https://cancer.ca/en/treatments/tests-and-procedures/skin-exam.
  90. Henrikson NB, Ivlev I, Blasi PR, Nguyen MB, Senger CA, Perdue LA, et al. Skin Cancer Screening: Updated Evidence Report and Systematic Review for the US Preventive Services Task Force. JAMA. 2023 Apr 18;329(15):1296.
  91. Swetter SM, Tsao H, Bichakjian CK, Curiel-Lewandrowski C, Elder DE, Gershenwald JE, et al. Guidelines of care for the management of primary cutaneous melanoma. Journal of the American Academy of Dermatology. 2019 Jan;80(1):208–50.
  92. Pauley K, Khan A, Kohlmann W, Jeter J. Considerations for Germline Testing in Melanoma: Updates in Behavioral Change and Pancreatic Surveillance for Carriers of CDKN2A Pathogenic Variants. Front Oncol. 2022 Mar 16;12:837057.
  93. Diana P, Klatte T, Amparore D, Bertolo R, Carbonara U, Erdem S, et al. Screening programs for renal cell carcinoma: a systematic review by the EAU young academic urologists renal cancer working group. World J Urol. 2022 Apr 1;41(4):929–40.
  94. Shuch B, Vourganti S, Ricketts CJ, Middleton L, Peterson J, Merino MJ, et al. Defining Early-Onset Kidney Cancer: Implications for Germline and Somatic Mutation Testing and Clinical Management. JCO. 2014 Feb 10;32(5):431–7.
  95. https://www.uspreventiveservicestaskforce.org/uspstf/recommendation/bladder-cancer-in-adults-screening.
  96. https://uroweb.org/guidelines/non-muscle-invasive-bladder-cancer/chapter/diagnosis. In.
  97. Etzioni R, Gulati R, Cooperberg MR, Penson DM, Weiss NS, Thompson IM. Limitations of Basing Screening Policies on Screening Trials: The US Preventive Services Task Force and Prostate Cancer Screening. Medical Care. 2013 Apr;51(4):295–300.
  98. Hayes JH, Barry MJ. Screening for Prostate Cancer With the Prostate-Specific Antigen Test: A Review of Current Evidence. JAMA. 2014 Mar 19;311(11):1143.
  99. Giri VN, Knudsen KE, Kelly WK, Cheng HH, Cooney KA, Cookson MS, et al. Implementation of Germline Testing for Prostate Cancer: Philadelphia Prostate Cancer Consensus Conference 2019. JCO. 2020 Aug 20;38(24):2798–811.
  100. Brittain HK, Scott R, Thomas E. The rise of the genome and personalised medicine. Clin Med (Lond). 2017 Dec;17(6):545–51.
  101. Anti–PD-1–CTLA4 Combo Hits Prostate Cancer. Cancer Discovery. 2019 May 1;9(5):569–70.
  102. El-Kenawi AE, El-Remessy AB. Angiogenesis inhibitors in cancer therapy: mechanistic perspective on classification and treatment rationales. Br J Pharmacol. 2013 Oct;170(4):712–29.
  103. Hsu JY, Wakelee HA. Monoclonal antibodies targeting vascular endothelial growth factor: current status and future challenges in cancer therapy. BioDrugs. 2009;23(5):289–304.
  104. Gotink KJ, Verheul HMW. Anti-angiogenic tyrosine kinase inhibitors: what is their mechanism of action? Angiogenesis. 2010 Mar;13(1):1–14.
  105. Rini BI. Vascular endothelial growth factor-targeted therapy in renal cell carcinoma: current status and future directions. Clin Cancer Res. 2007 Feb 15;13(4):1098–106.
  106. Han X, Ge P, Liu S, Yang D, Zhang J, Wang X, et al. Efficacy and safety of bevacizumab in patients with malignant melanoma: a systematic review and PRISMA-compliant meta-analysis of randomized controlled trials and non-comparative clinical studies. Front Pharmacol. 2023;14:1163805.
  107. Méjean A, Ravaud A, Thezenas S, Colas S, Beauval JB, Bensalah K, et al. Sunitinib Alone or after Nephrectomy in Metastatic Renal- Cell Carcinoma. N Engl J Med. 2018 Aug 2;379(5):417–27.
  108. Motzer RJ, Hutson TE, Olsen MR, Hudes GR, Burke JM, Edenfield WJ, et al. Randomized Phase II Trial of Sunitinib on an Intermittent Versus Continuous Dosing Schedule As First-Line Therapy for Advanced Renal Cell Carcinoma. JCO. 2012 Apr 20;30(12):1371–7.
  109. Escudier B, Porta C, Bono P, Powles T, Eisen T, Sternberg CN, et al. Randomized, Controlled, Double-Blind, Cross-Over Trial Assessing Treatment Preference for Pazopanib Versus Sunitinib in Patients With Metastatic Renal Cell Carcinoma: PISCES Study. JCO. 2014 May 10;32(14):1412–8.
  110. Choueiri TK, Hessel C, Halabi S, Sanford B, Michaelson MD, Hahn O, et al. Cabozantinib versus sunitinib as initial therapy for metastatic renal cell carcinoma of intermediate or poor risk (Alliance A031203 CABOSUN randomised trial): Progression -free survival by independent review and overall survival update. European Journal of Cancer. 2018 May;94:115–25.
  111. Minor DR, Kashani-Sabet M, Garrido M, O’Day SJ, Hamid O, Bastian BC. Sunitinib Therapy for Melanoma Patients with KIT Mutations. Clinical Cancer Research. 2012 Mar 1;18(5):1457–63.
  112. Chan TA, Yarchoan M, Jaffee E, Swanton C, Quezada SA, Stenzinger A, et al. Development of tumor mutation burden as an immunotherapy biomarker: utility for the oncology clinic. Ann Oncol. 2019 Jan 1;30(1):44–56.
  113. Xie N, Shen G, Gao W, Huang Z, Huang C, Fu L. Neoantigens: promising targets for cancer therapy. Signal Transduct Target Ther. 2023 Jan 6;8(1):9.
  114. Sha D, Jin Z, Budczies J, Kluck K, Stenzinger A, Sinicrope FA. Tumor Mutational Burden as a Predictive Biomarker in Solid Tumors. Cancer Discov. 2020 Dec;10(12):1808–25.
  115. Palmeri M, Mehnert J, Silk AW, Jabbour SK, Ganesan S, Popli P, et al. Real-world application of tumor mutational burden-high (TMB-high) and microsatellite instability (MSI) confirms their utility as immunotherapy biomarkers. ESMO Open. 2022 Feb;7(1):100336.
  116. Pal SK, Uzzo R, Karam JA, Master VA, Donskov F, Suarez C, et al. Adjuvant atezolizumab versus placebo for patients with renal cell carcinoma at increased risk of recurrence following resection (IMmotion010): a multicentre, randomised, double-blind, phase 3 trial. The Lancet. 2022 oct;400(10358):1103–16.
  117. Hodi FS, O’Day SJ, McDermott DF, Weber RW, Sosman JA, Haanen JB, et al. Improved Survival with Ipilimumab in Patients with Metastatic Melanoma. N Engl J Med. 2010 Aug 19;363(8):711–23.
  118. Weber JS, D’Angelo SP, Minor D, Hodi FS, Gutzmer R, Neyns B, et al. Nivolumab versus chemotherapy in patients with advanced melanoma who progressed after anti-CTLA-4 treatment (CheckMate 037): a randomised, controlled, open-label, phase 3 trial. The Lancet Oncology. 2015 Apr;16(4):375–84.
  119. Robert C, Long GV, Brady B, Dutriaux C, Maio M, Mortier L, et al. Nivolumab in Previously Untreated Melanoma without BRAF Mutation. N Engl J Med. 2015 Jan 22;372(4):320–30.
  120. Schachter J, Ribas A, Long GV, Arance A, Grob JJ, Mortier L, et al. Pembrolizumab versus ipilimumab for advanced melanoma: final overall survival results of a multicentre, randomised, open-label phase 3 study (KEYNOTE-006). The Lancet. 2017 Oct;390(10105):1853–62.
  121. Seth R, Agarwala SS, Messersmith H, Alluri KC, Ascierto PA, Atkins MB, et al. Systemic Therapy for Melanoma: ASCO Guideline Update. JCO. 2023 Oct 20;41(30):4794–820.
  122. McDermott DF, Lee JL, Bjarnason GA, Larkin JMG, Gafanov RA, Kochenderfer MD, et al. Open-Label, Single-Arm Phase II Study of Pembrolizumab Monotherapy as First-Line Therapy in Patients With Advanced Clear Cell Renal Cell Carcinoma. JCO. 2021 Mar 20;39(9):1020–8.
  123. Singer EA, Rumble RB, Van Veldhuizen PJ. Management of Metastatic Clear Cell Renal Cell Carcinoma: ASCO Guideline Q&A. JCO Oncology Practice. 2023 Mar;19(3):127–31.
  124. Motzer RJ, Russo P, Grünwald V, Tomita Y, Zurawski B, Parikh O, et al. Adjuvant nivolumab plus ipilimumab versus placebo for localised renal cell carcinoma after nephrectomy (CheckMate 914): a double-blind, randomised, phase 3 trial. Lancet. 2023 Mar 11;401(10379):821–32.
  125. Kooshkaki O, Derakhshani A, Hosseinkhani N, Torabi M, Safaei S, Brunetti O, et al. Combination of Ipilimumab and Nivolumab in Cancers: From Clinical Practice to Ongoing Clinical Trials. Int J Mol Sci. 2020 Jun 22;21(12):4427.
  126. https://www.fda.gov/drugs/resources-information-approved-drugs/pembrolizumab-keytruda-advanced-or-metastatic-urothelial-carcinoma.
  127. Hargadon KM, Johnson CE, Williams CJ. Immune checkpoint blockade therapy for cancer: An overview of FDA-approved immune checkpoint inhibitors. International Immunopharmacology. 2018 Sep;62:29–39.
  128. Robert C, Grob JJ, Stroyakovskiy D, Karaszewska B, Hauschild A, Levchenko E, et al. Five-Year Outcomes with Dabrafenib plus Trametinib in Metastatic Melanoma. N Engl J Med. 2019 Aug 15;381(7):626–36.
  129. Trojaniello C, Festino L, Vanella V, Ascierto PA. Encorafenib in combination with binimetinib for unresectable or metastatic melanoma with BRAF mutations. Expert Review of Clinical Pharmacology. 2019 Mar 4;12(3):259–66.
  130. Lord CJ, Ashworth A. PARP inhibitors: Synthetic lethality in the clinic. Science. 2017 Mar 17;355(6330):1152–8.
  131. De Bono JS, De Giorgi U, Rodrigues DN, Massard C, Bracarda S, Font A, et al. Randomized Phase II Study Evaluating Akt Blockade with Ipatasertib, in Combination with Abiraterone, in Patients with Metastatic Prostate Cancer with and without PTEN Loss. Clinical Cancer Research. 2019 Feb 1;25(3):928–36.

From Genetic Links to Personalized Therapies: Understanding Melanoma and Urological Cancer Overlap

Cite this article

APA Style

Porav-Hodade, D., Badea, M.A., Manolache, N., Cotoi, O.S., Vartolomei, M.D., Toganel, C., Andras, I., Feciche, B.O., Ghirca, V.M., Martha, O.K., & Todea-Moga, C. (2025). From genetic links to personalized therapies: understanding melanoma and urological cancer overlap. Romanian Journal of Military Medicine, 128(4), 350-363. https://doi.org/10.55453/rjmm.2025.128.4.10

Vancouver Style

Porav-Hodade D, Badea MA, Manolache N, Cotoi OS, Vartolomei MD, Toganel C, et al. From Genetic Links to Personalized Therapies: Understanding Melanoma and Urological Cancer Overlap. Rom J Mil Med. 2025;128(4):350-363. doi:10.55453/rjmm.2025.128.4.10.

Harvard Style

Porav-Hodade, D., Badea, M.A., Manolache, N., Cotoi, O.S., Vartolomei, M.D., Toganel, C., Andras, I., Feciche, B.O., Ghirca, V.M., Martha, O.K. & Todea-Moga, C. 2025, 'From Genetic Links to Personalized Therapies: Understanding Melanoma and Urological Cancer Overlap', Romanian Journal of Military Medicine, vol. 128, no. 4, pp. 350-363, doi:10.55453/rjmm.2025.128.4.10.