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网络分析揭示了球型凝集素二聚体形成的识别机制。

Network Analysis Reveals the Recognition Mechanism for Dimer Formation of Bulb-type Lectins.

机构信息

Institute of Biophysics and Department of Physics, Central China Normal University, Wuhan, 430079, China.

Department of Physics, The George Washington University, Washington, DC, 20052, USA.

出版信息

Sci Rep. 2017 Jun 6;7(1):2876. doi: 10.1038/s41598-017-03003-5.

Abstract

The bulb-type lectins are proteins consist of three sequential beta-sheet subdomains that bind to specific carbohydrates to perform certain biological functions. The active states of most bulb-type lectins are dimeric and it is thus important to elucidate the short- and long-range recognition mechanism for this dimer formation. To do so, we perform comparative sequence analysis for the single- and double-domain bulb-type lectins abundant in plant genomes. In contrast to the dimer complex of two single-domain lectins formed via protein-protein interactions, the double-domain lectin fuses two single-domain proteins into one protein with a short linker and requires only short-range interactions because its two single domains are always in close proximity. Sequence analysis demonstrates that the highly variable but coevolving polar residues at the interface of dimeric bulb-type lectins are largely absent in the double-domain bulb-type lectins. Moreover, network analysis on bulb-type lectin proteins show that these same polar residues have high closeness scores and thus serve as hubs with strong connections to all other residues. Taken together, we propose a potential mechanism for this lectin complex formation where coevolving polar residues of high closeness are responsible for long-range recognition.

摘要

球型凝集素是由三个连续的β-折叠亚结构域组成的蛋白质,能与特定的碳水化合物结合,从而执行某些生物学功能。大多数球型凝集素的活性状态为二聚体,因此阐明这种二聚体形成的短程和长程识别机制非常重要。为此,我们对植物基因组中丰富的单域和双域球型凝集素进行了序列比较分析。与通过蛋白-蛋白相互作用形成的两个单域凝集素的二聚体复合物不同,双域凝集素通过短连接融合两个单域蛋白,并且由于其两个单域始终紧密接近,因此只需要短程相互作用。序列分析表明,二聚体球型凝集素界面上高度可变但协同进化的极性残基在双域球型凝集素中基本缺失。此外,对球型凝集素蛋白的网络分析表明,这些相同的极性残基具有较高的接近度评分,因此作为具有与所有其他残基强连接的中心枢纽存在。综上所述,我们提出了一种潜在的凝集素复合物形成机制,其中高接近度的协同进化极性残基负责长程识别。

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