与抑制剂苏拉明络合揭示磷脂酶a2样蛋白膜对接和破坏位点的结构和功能证据。

Guilherme H M Salvador, Thiago R Dreyer, Walter L G Cavalcante, Fábio F Matioli, Juliana I Dos Santos, Adrian Velazquez-Campoy, Márcia Gallacci, Marcos R M Fontes
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引用次数: 26

摘要

由蛇咬伤引起的局部肌坏死不能被常规抗蛇毒血清有效地中和。世界卫生组织认为这种限制是一个重大的健康问题。磷脂酶a2样(pla2样)蛋白是与几种蛇毒引起的肌肉损伤相关的最重要的蛋白之一。然而,尽管它们与PLA2s相比具有保守的三级结构,但它们的生物学机制仍不完全清楚。不同的寡聚构象和结合位点已被确定或提出,导致文献中相互矛盾的数据。在过去的几年里,基于脂肪酸结合、变构变化和两种不同相互作用位点的存在,提出了一个全面的假设。在本研究中,我们使用了多种技术来充分了解苏拉明与MjTX-II(一种pla2样毒素)相互作用的结构-功能特征。体外神经肌肉研究表征了蛋白质-配体相互作用的生物学效应,并证明苏拉明中和了MjTX-II的肌毒活性。该复合物的高分辨率结构确定了毒素与配体的相互作用位点。量热分析显示蛋白质和抑制剂之间有两种不同的结合事件。根据提出的肌毒性机制,这是第一次证明抑制剂与毒素表面结合,阻碍参与膜对接和破坏的位点。此外,观察到与界面素相互作用形成高阶寡聚物,这也可能有助于抑制过程。这些结果进一步证实了当前的肌毒性机制,并为寻找局部肌坏死现象的有效抑制剂提供了线索。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Structural and functional evidence for membrane docking and disruption sites on phospholipase A2-like proteins revealed by complexation with the inhibitor suramin.

Local myonecrosis resulting from snakebite envenomation is not efficiently neutralized by regular antivenom administration. This limitation is considered to be a significant health problem by the World Health Organization. Phospholipase A2-like (PLA2-like) proteins are among the most important proteins related to the muscle damage resulting from several snake venoms. However, despite their conserved tertiary structure compared with PLA2s, their biological mechanism remains incompletely understood. Different oligomeric conformations and binding sites have been identified or proposed, leading to contradictory data in the literature. In the last few years, a comprehensive hypothesis has been proposed based on fatty-acid binding, allosteric changes and the presence of two different interaction sites. In the present study, a combination of techniques were used to fully understand the structural-functional characteristics of the interaction between suramin and MjTX-II (a PLA2-like toxin). In vitro neuromuscular studies were performed to characterize the biological effects of the protein-ligand interaction and demonstrated that suramin neutralizes the myotoxic activity of MjTX-II. The high-resolution structure of the complex identified the toxin-ligand interaction sites. Calorimetric assays showed two different binding events between the protein and the inhibitor. It is demonstrated for the first time that the inhibitor binds to the surface of the toxin, obstructing the sites involved in membrane docking and disruption according to the proposed myotoxic mechanism. Furthermore, higher-order oligomeric formation by interaction with interfacial suramins was observed, which may also aid the inhibitory process. These results further substantiate the current myotoxic mechanism and shed light on the search for efficient inhibitors of the local myonecrosis phenomenon.

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