Human and bats genome robustness under COSMIC mutational signatures

Joon-Hyun Song, Ying Zeng, Liliana M Davalos, Thomas MacCarthy, Mani Larijani, Mehdi Damaghi
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Abstract

Carcinogenesis is an evolutionary process, and mutations can fix the selected phenotypes in selective microenvironments. Both normal and neoplastic cells are robust to the mutational stressors in the microenvironment to the extent that secure their fitness. To test the robustness of genes under a range of mutagens, we developed a sequential mutation simulator, Sinabro, to simulate single base substitution under a given mutational process. Then, we developed a pipeline to measure the robustness of genes and cells under those mutagenesis processes. We discovered significant human genome robustness to the APOBEC mutational signature SBS2, which is associated with viral defense mechanisms and is implicated in cancer. Robustness evaluations across over 70,000 sequences against 41 signatures showed higher resilience under signatures predominantly causing C-to-T (G-to-A) mutations. Principal component analysis indicates the GC content at the codon's wobble position significantly influences robustness, with increased resilience noted under transition mutations compared to transversions. Then, we tested our results in bats at extremes of the lifespan-to-mass relationship and found the long-lived bat is more robust to APOBEC than the short-lived one. By revealing APOBEC as the prime driver of robustness in the human (and other mammalian) genome, this work bolsters the key potential role of APOBECs in carcinogenesis, as well as evolved countermeasures to this innate mutagenic process. It also provides the baseline of the human and bat genome robustness under mutational processes associated with cancer.
COSMIC突变特征下人类和蝙蝠基因组的稳健性
致癌是一个进化过程,突变可以在选择性微环境中固定所选择的表型。正常细胞和肿瘤细胞对微环境中的突变应激源都具有一定的稳健性,以确保其健康。为了测试基因在一系列突变因素下的稳健性,我们开发了一个顺序突变模拟器 Sinabro,用于模拟给定突变过程下的单碱基置换。然后,我们开发了一个管道来测量基因和细胞在这些突变过程中的稳健性。我们发现了人类基因组对 APOBEC 突变特征 SBS2 的显著稳健性,SBS2 与病毒防御机制有关,并与癌症有牵连。针对 41 个特征对 70,000 多个序列进行的稳健性评估显示,在主要导致 C 到 T(G 到 A)突变的特征下,稳健性更高。主成分分析表明,密码子摆动位置上的 GC 含量对稳健性有显著影响,与转换突变相比,转换突变的稳健性更高。然后,我们在寿命与质量关系处于极端的蝙蝠身上测试了我们的结果,发现寿命长的蝙蝠比寿命短的蝙蝠对 APOBEC 更稳健。通过揭示 APOBEC 是人类(和其他哺乳动物)基因组稳健性的主要驱动因素,这项工作加强了 APOBEC 在致癌过程中的关键潜在作用,以及针对这种先天诱变过程的进化对策。它还提供了人类和蝙蝠基因组在与癌症有关的突变过程中的稳健性基线。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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