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HdeB伴侣蛋白活性与其内在动力学特性相关联。

HdeB chaperone activity is coupled to its intrinsic dynamic properties.

作者信息

Ding Jienv, Yang Chengfeng, Niu Xiaogang, Hu Yunfei, Jin Changwen

机构信息

College of Life Sciences, Peking University, Beijing 100871, China.

Beijing Nuclear Magnetic Resonance Center, Peking University, Beijing 100871, China.

出版信息

Sci Rep. 2015 Nov 23;5:16856. doi: 10.1038/srep16856.

Abstract

Enteric bacteria encounter extreme acidity when passing through hosts' stomach. Since the bacterial periplasmic space quickly equilibrates with outer environment, an efficient acid resistance mechanism is essential in preventing irreversible protein denaturation/aggregation and maintaining bacteria viability. HdeB, along with its homolog HdeA, was identified as a periplasmic acid-resistant chaperone. Both proteins exist as homodimers and share similar monomeric structures under neutral pH, while showing different dimeric packing interfaces. Previous investigations show that HdeA functions through an acid-induced dimer-to-monomer transition and partial unfolding at low pH (pH 2-3), resulting in exposure of hydrophobic surfaces that bind substrate proteins. In contrast, HdeB appears to have a much higher optimal activation pH (pH 4-5), under which condition the protein maintains a well-folded dimer and the mechanism for its chaperone activity remains elusive. Herein, we present an NMR study of HdeB to investigate its dynamic properties. Our results reveal that HdeB undergoes significant micro- to milli-second timescale conformational exchanges at neutral to near-neutral pH, under the later condition it exhibits optimal activity. The current study indicates that HdeB activation is coupled to its intrinsic dynamics instead of structural changes, and therefore its functional mechanism is apparently different from HdeA.

摘要

肠道细菌在通过宿主胃部时会遇到极端酸性环境。由于细菌的周质空间会迅速与外部环境达到平衡,因此高效的耐酸机制对于防止蛋白质不可逆变性/聚集以及维持细菌活力至关重要。HdeB与其同源物HdeA被鉴定为周质耐酸伴侣蛋白。这两种蛋白质均以同二聚体形式存在,在中性pH条件下具有相似的单体结构,但二聚体堆积界面不同。先前的研究表明,HdeA通过在低pH(pH 2 - 3)下酸诱导的二聚体向单体转变和部分展开发挥作用,导致结合底物蛋白的疏水表面暴露。相比之下,HdeB似乎具有更高的最佳激活pH(pH 4 - 5),在此条件下该蛋白质保持良好折叠的二聚体状态,其伴侣活性机制仍然难以捉摸。在此,我们展示了一项关于HdeB的核磁共振研究以探究其动力学特性。我们的结果表明,HdeB在中性至近中性pH条件下经历了从微秒到毫秒时间尺度的显著构象交换,在接近中性pH条件下它表现出最佳活性。当前研究表明,HdeB的激活与其内在动力学相关而非结构变化,因此其功能机制明显不同于HdeA。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0bc5/4655364/f8789d50905a/srep16856-f1.jpg

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