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利用计算机模拟和细胞方法检测DNA结构诱导的遗传不稳定性中的顺式和反式作用因子。

Detection of cis- and trans-acting Factors in DNA Structure-Induced Genetic Instability Using In silico and Cellular Approaches.

作者信息

Wang Guliang, Zhao Junhua, Vasquez Karen M

机构信息

Division of Pharmacology and Toxicology, College of Pharmacy, The University of Texas at Austin, Dell Pediatric Research Institute Austin, TX, USA.

出版信息

Front Genet. 2016 Aug 2;7:135. doi: 10.3389/fgene.2016.00135. eCollection 2016.

Abstract

Sequences that can adopt alternative DNA structures (i.e., non-B DNA) are very abundant in mammalian genomes, and recent studies have revealed many important biological functions of non-B DNA structures in chromatin remodeling, DNA replication, transcription, and genetic instability. Here, we provide results from an in silico web-based search engine coupled with cell-based experiments to characterize the roles of non-B DNA conformations in genetic instability in eukaryotes. The purpose of this article is to illustrate strategies that can be used to identify and interrogate the biological roles of non-B DNA structures, particularly on genetic instability. We have included unpublished data using a short H-DNA-forming sequence from the human c-MYC promoter region as an example, and identified two different mechanisms of H-DNA-induced genetic instability in yeast and mammalian cells: a DNA replication-related model of mutagenesis; and a replication-independent cleavage model. Further, we identified candidate proteins involved in H-DNA-induced genetic instability by using a yeast genetic screen. A combination of in silico and cellular methods, as described here, should provide further insight into the contributions of non-B DNA structures in biological functions, genetic evolution, and disease development.

摘要

能够形成替代性DNA结构(即非B型DNA)的序列在哺乳动物基因组中非常丰富,最近的研究揭示了非B型DNA结构在染色质重塑、DNA复制、转录和基因不稳定方面的许多重要生物学功能。在此,我们提供了基于计算机模拟的网络搜索引擎结合细胞实验的结果,以表征非B型DNA构象在真核生物基因不稳定中的作用。本文的目的是阐述可用于识别和探究非B型DNA结构生物学作用的策略,特别是在基因不稳定方面的作用。我们以使用来自人类c-MYC启动子区域的短H-DNA形成序列的未发表数据为例,确定了酵母和哺乳动物细胞中H-DNA诱导基因不稳定的两种不同机制:一种与DNA复制相关的诱变模型;以及一种不依赖复制的切割模型。此外,我们通过酵母遗传筛选确定了参与H-DNA诱导基因不稳定的候选蛋白质。如本文所述,计算机模拟和细胞方法的结合应能进一步深入了解非B型DNA结构在生物学功能、基因进化和疾病发展中的作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/352b/4969553/02540f55eafd/fgene-07-00135-g001.jpg

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