Thermal Proteome Profiling Identifies Oxidative-Dependent Inhibition of the Transcription of Major Oncogenes as a New Therapeutic Mechanism for Select Anticancer Compounds

生物 转录组 DNA修复 转录因子 癌变 癌细胞 PI3K/AKT/mTOR通路 RNA聚合酶Ⅱ 蛋白质组 癌症研究 抄写(语言学) 合成致死 细胞生物学 癌症 基因表达 信号转导 生物信息学 基因 生物化学 遗传学 发起人 语言学 哲学
作者
Sylvain Peuget,Jiawei Zhu,Gema Sanz,Madhurendra Singh,Massimiliano Gaetani,Xinsong Chen,Shi Yao,Amir Ata Saei,Torkild Visnes,Mikael S. Lindström,Ali Rihani,Lidia Moyano‐Galceran,Joseph W. Carlson,Elisabet Hjerpe,Ulrika Joneborg,Kaisa Lehti,Johan Hartman,Thomas Helleday,Roman A. Zubarev,Galina Selivanova
出处
期刊:Cancer Research [American Association for Cancer Research]
卷期号:80 (7): 1538-1550 被引量:16
标识
DOI:10.1158/0008-5472.can-19-2069
摘要

Identification of the molecular mechanism of action (MoA) of bioactive compounds is a crucial step for drug development but remains a challenging task despite recent advances in technology. In this study, we applied multidimensional proteomics, sensitivity correlation analysis, and transcriptomics to identify a common MoA for the anticancer compounds RITA, aminoflavone (AF), and oncrasin-1 (Onc-1). Global thermal proteome profiling revealed that the three compounds target mRNA processing and transcription, thereby attacking a cancer vulnerability, transcriptional addiction. This led to the preferential loss of expression of oncogenes involved in PDGF, EGFR, VEGF, insulin/IGF/MAPKK, FGF, Hedgehog, TGFβ, and PI3K signaling pathways. Increased reactive oxygen species level in cancer cells was a prerequisite for targeting the mRNA transcription machinery, thus conferring cancer selectivity to these compounds. Furthermore, DNA repair factors involved in homologous recombination were among the most prominently repressed proteins. In cancer patient samples, RITA, AF, and Onc-1 sensitized to poly(ADP-ribose) polymerase inhibitors both in vitro and ex vivo These findings might pave a way for new synthetic lethal combination therapies.Significance: These findings highlight agents that target transcriptional addiction in cancer cells and suggest combination treatments that target RNA processing and DNA repair pathways simultaneously as effective cancer therapies.
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