了解Rad51的功能是癌症研究取得进展的先决条件。

Q3 Biochemistry, Genetics and Molecular Biology
QRB Discovery Pub Date : 2020-01-01 DOI:10.1017/qrd.2020.13
Bengt Nordén, Masayuki Takahashi
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引用次数: 1

摘要

人类Rad51蛋白在癌症环境中是一把双刃剑:一方面,通过消除潜在的致癌DNA损伤来防止肿瘤的发生,另一方面,通过引入新的突变来促进肿瘤的发生。了解Rad51在同源重组(HR)和修复中的机制细节,有助于设计包括CRISPR在内的以Rad51为靶点的癌症治疗新方法。然而,尽管进行了广泛的研究,我们还没有足够详细地了解HR的机制,部分原因是复杂性,大量的Rad51蛋白单位参与了长DNA片段的交换。缺乏理解的另一个原因可能是,目前DNA相互作用的识别模型只关注氢键导向的碱基对形成。一个更完整的模型可能需要包括,例如,DNA碱基堆叠和解堆叠(“纵向呼吸”)的动力学效应。这也许可以解释Rad51如何能够在多个碱基长链上以高精度识别DNA序列的一致性,尽管如果我们只考虑氢键能,单个碱基不匹配是可以容忍的。我们在这里提出,某些特定的疏水效应,最近发现的核碱基的不稳定堆叠,可能在这种情况下对Rad51的功能起核心作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Understanding Rad51 function is a prerequisite for progress in cancer research.

Understanding Rad51 function is a prerequisite for progress in cancer research.

Understanding Rad51 function is a prerequisite for progress in cancer research.

Understanding Rad51 function is a prerequisite for progress in cancer research.

The human protein Rad51 is double-edged in cancer contexts: on one hand, preventing tumourigenesis by eliminating potentially carcinogenic DNA damage and, on the other, promoting tumours by introducing new mutations. Understanding mechanistic details of Rad51 in homologous recombination (HR) and repair could facilitate design of novel methods, including CRISPR, for Rad51-targeted cancer treatment. Despite extensive research, however, we do not yet understand the mechanism of HR in sufficient detail, partly due to complexity, a large number of Rad51 protein units being involved in the exchange of long DNA segments. Another reason for lack of understanding could be that current recognition models of DNA interactions focus only on hydrogen bond-directed base pair formation. A more complete model may need to include, for example, the kinetic effects of DNA base stacking and unstacking ('longitudinal breathing'). These might explain how Rad51 can recognize sequence identity of DNA over several bases long stretches with high accuracy, despite the fact that a single base mismatch could be tolerated if we consider only the hydrogen bond energy. We here propose that certain specific hydrophobic effects, recently discovered destabilizing stacking of nucleobases, may play a central role in this context for the function of Rad51.

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来源期刊
QRB Discovery
QRB Discovery Biochemistry, Genetics and Molecular Biology-Biophysics
CiteScore
3.60
自引率
0.00%
发文量
18
审稿时长
12 weeks
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