Sidali Ahmed, Teotia Varsha, Solaiman Nadeen Shaikh, Bashir Nahida, Kanagaraj Radhakrishnan, Murphy John J, Surendranath Kalpana
Genome Engineering Laboratory, School of Life Sciences, University of Westminster, 115 New Cavendish Street, London W1W 6UW, UK.
School of Life Sciences, University of Bedfordshire, Park Square, Luton LU1 3JU, UK.
Int J Mol Sci. 2021 Dec 22;23(1):96. doi: 10.3390/ijms23010096.
Genome integrity must be tightly preserved to ensure cellular survival and to deter the genesis of disease. Endogenous and exogenous stressors that impose threats to genomic stability through DNA damage are counteracted by a tightly regulated DNA damage response (DDR). RNA binding proteins (RBPs) are emerging as regulators and mediators of diverse biological processes. Specifically, RBPs that bind to adenine uridine (AU)-rich elements (AREs) in the 3' untranslated region (UTR) of mRNAs (AU-RBPs) have emerged as key players in regulating the DDR and preserving genome integrity. Here we review eight established AU-RBPs (AUF1, HuR, KHSRP, TIA-1, TIAR, ZFP36, ZFP36L1, ZFP36L2) and their ability to maintain genome integrity through various interactions. We have reviewed canonical roles of AU-RBPs in regulating the fate of mRNA transcripts encoding DDR genes at multiple post-transcriptional levels. We have also attempted to shed light on non-canonical roles of AU-RBPs exploring their post-translational modifications (PTMs) and sub-cellular localization in response to genotoxic stresses by various factors involved in DDR and genome maintenance. Dysfunctional AU-RBPs have been increasingly found to be associated with many human cancers. Further understanding of the roles of AU-RBP in maintaining genomic integrity may uncover novel therapeutic strategies for cancer.
必须严格维持基因组完整性,以确保细胞存活并防止疾病发生。通过DNA损伤对基因组稳定性构成威胁的内源性和外源性应激源,会被严格调控的DNA损伤反应(DDR)所抵消。RNA结合蛋白(RBP)正逐渐成为多种生物过程的调节因子和介质。具体而言,与mRNA 3'非翻译区(UTR)中富含腺嘌呤尿苷(AU)的元件(ARE)结合的RBP(AU-RBP),已成为调节DDR和维持基因组完整性的关键因素。在这里,我们综述了八种已确定的AU-RBP(AUF1、HuR、KHSRP、TIA-1、TIAR、ZFP36、ZFP36L1、ZFP36L2)及其通过各种相互作用维持基因组完整性的能力。我们回顾了AU-RBP在多个转录后水平调节编码DDR基因的mRNA转录本命运中的典型作用。我们还试图通过DDR和基因组维持中涉及的各种因素,探讨AU-RBP的非典型作用,研究它们在响应基因毒性应激时的翻译后修饰(PTM)和亚细胞定位。越来越多的研究发现,功能失调的AU-RBP与许多人类癌症有关。进一步了解AU-RBP在维持基因组完整性中的作用,可能会揭示新的癌症治疗策略。