Two high-mobility group box domains act together to underwind and kink DNA.

R Sánchez-Giraldo, F J Acosta-Reyes, C S Malarkey, N Saperas, M E A Churchill, J L Campos
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引用次数: 35

Abstract

High-mobility group protein 1 (HMGB1) is an essential and ubiquitous DNA architectural factor that influences a myriad of cellular processes. HMGB1 contains two DNA-binding domains, box A and box B, which have little sequence specificity but have remarkable abilities to underwind and bend DNA. Although HMGB1 box A is thought to be responsible for the majority of HMGB1-DNA interactions with pre-bent or kinked DNA, little is known about how it recognizes unmodified DNA. Here, the crystal structure of HMGB1 box A bound to an AT-rich DNA fragment is reported at a resolution of 2 Å. Two box A domains of HMGB1 collaborate in an unusual configuration in which the Phe37 residues of both domains stack together and intercalate the same CG base pair, generating highly kinked DNA. This represents a novel mode of DNA recognition for HMGB proteins and reveals a mechanism by which structure-specific HMG boxes kink linear DNA.

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两个高迁移率的组盒结构域共同作用,使DNA逆风和扭结。
高迁移率基团蛋白1 (HMGB1)是一种重要的、普遍存在的DNA结构因子,影响着无数的细胞过程。HMGB1包含box A和box B两个DNA结合域,它们的序列特异性不强,但具有显著的逆风和弯曲DNA的能力。尽管人们认为HMGB1 box A负责大部分HMGB1-DNA与预弯曲或扭曲DNA的相互作用,但人们对它如何识别未修饰的DNA知之甚少。本文以2 Å的分辨率报道了HMGB1 box A与富含at的DNA片段结合的晶体结构。HMGB1的两个box A结构域以一种不寻常的结构协作,其中两个结构域的Phe37残基堆叠在一起并插入相同的CG碱基对,产生高度扭结的DNA。这代表了HMGB蛋白DNA识别的一种新模式,并揭示了结构特异性HMG盒子扭曲线性DNA的机制。
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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