依托泊苷
拓扑异构酶
细胞毒性
拓扑异构酶抑制剂
医学
髓系白血病
癌症研究
白血病
药理学
生物
化疗
免疫学
内科学
DNA
遗传学
体外
作者
Piyush More,Ute Goedtel-Armbrust,Viral Shah,Marianne Mathaes,Thomas Kindler,Miguel A. Andrade‐Navarro,Leszek Wojnowski
出处
期刊:Oncotarget
[Impact Journals LLC]
日期:2019-09-03
卷期号:10 (51): 5298-5312
被引量:2
标识
DOI:10.18632/oncotarget.27112
摘要
Recently approved cancer drugs remain out-of-reach to most patients due to prohibitive costs and only few produce clinically meaningful benefits. An untapped alternative is to enhance the efficacy and safety of existing cancer drugs. We hypothesized that the response to topoisomerase II poisons, a very successful group of cancer drugs, can be improved by considering treatment-associated transcript levels. To this end, we analyzed transcriptomes from Acute Myeloid Leukemia (AML) cell lines treated with the topoisomerase II poison etoposide. Using complementary criteria of co-regulation within networks and of essentiality for cell survival, we identified and functionally confirmed 11 druggable drivers of etoposide cytotoxicity. Drivers with pre-treatment expression predicting etoposide response (e.g., PARP9) generally synergized with etoposide. Drivers repressed by etoposide (e.g., PLK1) displayed standalone cytotoxicity. Drivers, whose modulation evoked etoposide-like gene expression changes (e.g., mTOR), were cytotoxic both alone and in combination with etoposide. In summary, both pre-treatment gene expression and treatment-driven changes contribute to the cell killing effect of etoposide. Such targets can be tweaked to enhance the efficacy of etoposide. This strategy can be used to identify combination partners or even replacements for other classical anticancer drugs, especially those interfering with DNA integrity and transcription.
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