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  • Максим Синицкий
  • Егор Алексеевич Репкин
  • Анна Викторовна Синицкая
  • Виктория Маркова
  • Дарья Шишкова
  • Ольга Леонидовна Барбараш

Mitomycin C (MMC)-induced genotoxic stress can be considered to be a novel trigger of endothelial dysfunction and atherosclerosis-a leading cause of cardiovascular morbidity and mortality worldwide. Given the increasing genotoxic load on the human organism, the decryption of the molecular pathways underlying genotoxic stress-induced endothelial dysfunction could improve our understanding of the role of genotoxic stress in atherogenesis. Here, we performed a proteomic profiling of human coronary artery endothelial cells (HCAECs) and human internal thoracic endothelial cells (HITAECs) in vitro that were exposed to MMC to identify the biochemical pathways and proteins underlying genotoxic stress-induced endothelial dysfunction. We denoted 198 and 71 unique, differentially expressed proteins (DEPs) in the MMC-treated HCAECs and HITAECs, respectively; only 4 DEPs were identified in both the HCAECs and HITAECs. In the MMC-treated HCAECs, 44.5% of the DEPs were upregulated and 55.5% of the DEPs were downregulated, while in HITAECs, these percentages were 72% and 28%, respectively. The denoted DEPs are involved in the processes of nucleotides and RNA metabolism, vesicle-mediated transport, post-translation protein modification, cell cycle control, the transport of small molecules, transcription and signal transduction. The obtained results could improve our understanding of the fundamental basis of atherogenesis and help in the justification of genotoxic stress as a risk factor for atherosclerosis.

Original languageEnglish
Article number4044
JournalInternational Journal of Molecular Sciences
Volume25
Issue number7
DOIs
StatePublished - 5 Apr 2024

    Research areas

  • Atherosclerosis, DNA Damage, Endothelial Cells, Humans, Mitomycin/pharmacology, Proteomics, atherogenesis, DNA damage, differentially expressed proteins, genotoxic stress, bioinformatic analysis, mutagenesis, proteome, endothelial disfunction, mass spectrometry

ID: 118585404