TY - JOUR
T1 - Mitochondrial proteome landscape unveils key insights into melanoma severity and treatment strategies
AU - Kim, Yonghyo
AU - Doma, Viktória
AU - Çakır, Uğur
AU - Kuras, Magdalena
AU - Betancourt, Lazaro Hiram
AU - Pla, Indira
AU - Sanchez, Aniel
AU - Sugihara, Yutaka
AU - Appelqvist, Roger
AU - Oskolas, Henriett
AU - Lee, Boram
AU - Guedes, Jéssica
AU - Monnerat, Gustavo
AU - Carneiro, Gabriel Reis Alves
AU - Nogueira, Fábio C S
AU - Domont, Gilberto B
AU - Malm, Johan
AU - Baldetorp, Bo
AU - Wieslander, Elisabet
AU - Németh, István Balázs
AU - Szász, A Marcell
AU - Hong, Runyu
AU - Pawłowski, Krzysztof
AU - Rezeli, Melinda
AU - Kwon, Ho Jeong
AU - Timar, Jozsef
AU - Fenyö, David
AU - Kárpáti, Sarolta
AU - Marko-Varga, György
AU - Gil, Jeovanis
N1 - © 2025 The Author(s). Cancer published by Wiley Periodicals LLC on behalf of American Cancer Society.
PY - 2025/7/1
Y1 - 2025/7/1
N2 - BACKGROUND: Melanoma, the deadliest form of skin cancer, exhibits resistance to conventional therapies, particularly in advanced and metastatic stages. Mitochondrial pathways, including oxidative phosphorylation and mitochondrial translation, have emerged as critical drivers of melanoma progression and therapy resistance. This study investigates the mitochondrial proteome in melanoma to uncover novel therapeutic vulnerabilities.METHODS: Quantitative proteomics was performed on 151 melanoma-related samples from a prospective cohort and postmortem tissues. Differential expression analysis identified mitochondrial proteins linked to disease aggression and treatment resistance. Functional enrichment analyses and in vitro validation using mitochondrial inhibitors were conducted to evaluate therapeutic potential.RESULTS: Mitochondrial translation and oxidative phosphorylation (OXPHOS) were significantly upregulated in aggressive melanomas, particularly in BRAF-mutant and metastatic tumors. Inhibition of mitochondrial pathways using antibiotics (doxycycline, tigecycline, and azithromycin) and OXPHOS inhibitors (VLX600, IACS-010759, and BAY 87-2243) demonstrated dose-dependent antiproliferative effects in melanoma cell lines, sparing noncancerous melanocytes. These treatments disrupted mitochondrial function, suppressed key metabolic pathways, and induced apoptosis, highlighting the clinical relevance of targeting these pathways.CONCLUSIONS: This study reveals mitochondrial pathways as critical drivers of melanoma progression and resistance, providing a rationale for targeting mitochondrial translation and OXPHOS in advanced melanoma. Combining mitochondrial inhibitors with existing therapies could overcome treatment resistance and improve patient outcomes.
AB - BACKGROUND: Melanoma, the deadliest form of skin cancer, exhibits resistance to conventional therapies, particularly in advanced and metastatic stages. Mitochondrial pathways, including oxidative phosphorylation and mitochondrial translation, have emerged as critical drivers of melanoma progression and therapy resistance. This study investigates the mitochondrial proteome in melanoma to uncover novel therapeutic vulnerabilities.METHODS: Quantitative proteomics was performed on 151 melanoma-related samples from a prospective cohort and postmortem tissues. Differential expression analysis identified mitochondrial proteins linked to disease aggression and treatment resistance. Functional enrichment analyses and in vitro validation using mitochondrial inhibitors were conducted to evaluate therapeutic potential.RESULTS: Mitochondrial translation and oxidative phosphorylation (OXPHOS) were significantly upregulated in aggressive melanomas, particularly in BRAF-mutant and metastatic tumors. Inhibition of mitochondrial pathways using antibiotics (doxycycline, tigecycline, and azithromycin) and OXPHOS inhibitors (VLX600, IACS-010759, and BAY 87-2243) demonstrated dose-dependent antiproliferative effects in melanoma cell lines, sparing noncancerous melanocytes. These treatments disrupted mitochondrial function, suppressed key metabolic pathways, and induced apoptosis, highlighting the clinical relevance of targeting these pathways.CONCLUSIONS: This study reveals mitochondrial pathways as critical drivers of melanoma progression and resistance, providing a rationale for targeting mitochondrial translation and OXPHOS in advanced melanoma. Combining mitochondrial inhibitors with existing therapies could overcome treatment resistance and improve patient outcomes.
KW - Humans
KW - Melanoma/pathology
KW - Proteome/metabolism
KW - Mitochondria/metabolism
KW - Oxidative Phosphorylation/drug effects
KW - Skin Neoplasms/pathology
KW - Cell Line, Tumor
KW - Mitochondrial Proteins/metabolism
KW - Proteomics/methods
KW - Female
KW - Apoptosis/drug effects
KW - Male
KW - Proto-Oncogene Proteins B-raf/genetics
KW - Prospective Studies
KW - Cell Proliferation/drug effects
KW - Drug Resistance, Neoplasm
KW - Middle Aged
UR - https://www.scopus.com/pages/publications/105008731411
U2 - 10.1002/cncr.35897
DO - 10.1002/cncr.35897
M3 - Article
C2 - 40545870
SN - 1097-0142
VL - 131
JO - Cancer
JF - Cancer
IS - 13
M1 - e35897
ER -