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协同动力学连接 PBX 同源域中的变构位点。

Concerted dynamics link allosteric sites in the PBX homeodomain.

机构信息

Department of Chemistry, McGill University, 801 Sherbrooke Street West, Montreal, Quebec, Canada H3A 2K6.

出版信息

J Mol Biol. 2011 Jan 21;405(3):819-30. doi: 10.1016/j.jmb.2010.11.016. Epub 2010 Nov 16.

Abstract

The PBX1 homeodomain (PBX-HD) cooperatively binds DNA with Hox transcription factors and helps to regulate gene expression during vertebrate development. Allostery plays an important role in these interactions. DNA binding on one surface of PBX-HD enhances interactions with Hox proteins at a different interface. In addition, DNA binding causes a 15-residue extension at the C-terminus of PBX-HD to undergo a disorder-to-helix transition, although this region does not directly contact the DNA. Deletion of the C-terminal extension reduces both the DNA affinity of PBX-HD and the cooperativity of forming the DNA/Hox/PBX-HD ternary complex. To better understand the mechanism underlying these allosteric interactions, we used NMR relaxation dispersion dynamics experiments to characterize millisecond-timescale motions in PBX-HD over a range of temperatures. The data show that the C-terminal extension folds to form a fourth α-helix to a level of 5-10%, even in the absence of binding partners. This suggests that PBX-HD transiently preorganizes prior to binding DNA, reminiscent of the "conformational selection" model of molecular recognition. Folding of the C-terminal extension in the unbound protein is accompanied by structural rearrangements in both the DNA binding site and the Hox binding site, suggesting a possible role for these dynamics in the allosteric mechanism of PBX-HD.

摘要

PBX1 同源域(PBX-HD)与 Hox 转录因子协同结合 DNA,并有助于调节脊椎动物发育过程中的基因表达。变构作用在这些相互作用中起着重要作用。PBX-HD 一个表面上的 DNA 结合增强了与不同界面上的 Hox 蛋白的相互作用。此外,DNA 结合导致 PBX-HD 的 C 末端的 15 残基延伸经历无序到螺旋的转变,尽管该区域不直接与 DNA 接触。C 末端延伸的缺失降低了 PBX-HD 的 DNA 亲和力和形成 DNA/Hox/PBX-HD 三元复合物的协同性。为了更好地理解这些变构相互作用的机制,我们使用 NMR 弛豫分散动力学实验在一系列温度下对 PBX-HD 的毫秒时间尺度运动进行了表征。数据表明,即使在没有结合伴侣的情况下,C 末端延伸也会折叠形成第四个α-螺旋,达到 5-10%的水平。这表明 PBX-HD 在结合 DNA 之前会短暂地预先组织,类似于分子识别的“构象选择”模型。无配体蛋白中 C 末端延伸的折叠伴随着 DNA 结合位点和 Hox 结合位点的结构重排,这表明这些动力学可能在 PBX-HD 的变构机制中起作用。

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