野生型和ATM敲除肺癌细胞的综合转录组学分析:顺铂对氧化应激诱导的衰老的影响。

Ayşegül Varol, Sabine M Klauck, Susan P Lees-Miller, Thomas Efferth
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引用次数: 0

摘要

癌症中的基因突变和受损的DNA修复机制不仅促进了肿瘤的进展,而且还降低了化疗药物,特别是顺铂的有效性。联合治疗已成为克服耐药性的一种有希望的策略。综合比较生物信息学和实验方法支持的综合转录组学分析对于确定潜在耐药性的生物标志物和新的治疗靶点至关重要。在这项研究中,我们进行了总体生存和突变分析,检查了23种双链断裂修复蛋白,涵盖了23种不同的癌症类型,超过7500种肿瘤。我们的研究结果确定ATM(共济失调-毛细血管扩张突变)是突变频率最高的关键蛋白。利用CRISPR/Cas9,我们研究了ATM突变对影响细胞对顺铂反应的信号通路的影响。ATM敲除通过激活其他细胞死亡途径,包括氧化应激诱导的衰老和坏死坏死,增强顺铂的细胞毒性。微阵列分析揭示了ATM和NRF2在氧化应激诱导的衰老激活中的调节相互作用。具体来说,ATM敲除通过增加活性氧(ROS)积累和下调NRF2表达来促进衰老。为了加强联合治疗,将基因图谱与CRISPR/Cas9等先进工具相结合,靶向氧化应激诱导的衰老,可能为克服耐药提供创新策略,从而推进个性化癌症治疗。这些方法为开发针对个体患者独特突变的个性化癌症治疗奠定了基础,为改善治疗结果提供了良好的前景。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Comprehensive Transcriptomic Analysis in Wild-type and ATM Knockout Lung Cancer Cells: Influence of Cisplatin on Oxidative Stress-Induced Senescence.

Genetic mutations and impaired DNA repair mechanisms in cancer not only facilitate tumor progression but also reduce the effectiveness of chemotherapeutic agents, particularly cisplatin. Combination therapy has emerged as a promising strategy to overcome resistance. Comprehensive transcriptomic analyses, supported by integrated comparative bioinformatics and experimental approaches, are essential for identifying biomarkers and novel therapeutic targets underlying drug resistance. In this study, we performed overall survival and mutation analyses, examining 23 double-strand break repair proteins across more than 7,500 tumors spanning 23 distinct cancer types. Our findings identify ATM (ataxia-telangiectasia mutated) as a key protein with the highest mutation frequency. Using CRISPR/Cas9, we investigated the effects of ATM mutations on signalling pathways that influence the cellular response to cisplatin. ATM knockout enhanced cisplatin cytotoxicity by activating alternative cell death pathways, including oxidative stress-induced senescence and necroptosis. Microarray analysis revealed a regulatory interplay between ATM and NRF2 in the activation of oxidative stress-induced senescence. Specifically, ATM knockoutpromoted senescence by increasing reactive oxygen species (ROS) accumulation and downregulating NRF2 expression. To enhance combination therapy, integrating genetic profiling with advanced tools such as CRISPR/Cas9 to target oxidative stress-induced senescence may provide innovative strategies to overcome drug resistance, thereby advancing personalized cancer treatment. These approaches lay the foundation for the development of personalized cancer therapies tailored to the unique mutational landscape of individual patients, offering promising prospects for improving treatment outcomes.

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