植物肉桂酸衍生物可抑制磷脂酶 A2 类毒素 BthTX-I:绿原酸。

IF 2.5 4区 生物学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY Biochimica et biophysica acta. Proteins and proteomics Pub Date : 2023-12-21 DOI:10.1016/j.bbapap.2023.140988
Fábio Florença Cardoso , Guilherme Henrique Marchi Salvador , Walter Luís Garrido Cavalcante , Maeli Dal-Pai , Marcos Roberto de Mattos Fontes
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引用次数: 0

摘要

在热带和亚热带地区,尤其是在非洲、亚洲和拉丁美洲,蛇咬是一个严重的健康问题,每年造成 270 多万人被蛇咬伤,估计有 10 万人死亡。在拉丁美洲和加勒比海国家,大部分被蛇咬伤的案例都是由 Bothrops 属造成的。涉及该属蛇的事故以局部症状为特征,往往导致永久性后遗症和死亡。然而,特效抗蛇毒血清在抑制局部组织损伤方面效果有限。在涉及两栖类蛇的事故中,磷脂酶 A2 样(PLA2-like)毒素是造成局部肌毒性的重要因素。因此,它们是未来治疗的重要目标。一些天然和合成化合物已显示出降低或消除 PLA2 样蛋白肌毒性效应的能力。在这项研究中,我们采用了一种包括肌电图、形态学、生物物理和生物信息学技术的综合方法来研究绿原酸(CGA)与 BthTX-I(一种 PLA2 样毒素)之间的相互作用。在预孵育处理中,CGA 对肌肉损伤的保护率为 71.8%。微尺度热泳和圆二色性实验显示,CGA 与 BthTX-I 相互作用,同时保留了其二级结构。CGA 与毒素的亲和力是天然化合物中最高的。生物信息学模拟表明,CGA 抑制剂与毒素疏水通道的结合方式与之前研究的其他酚类化合物类似。这些研究结果表明,CGA 会干扰非活化毒素的异构转变以及活化状态下二聚体组装的稳定性。
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BthTX-I, a phospholipase A2-like toxin, is inhibited by the plant cinnamic acid derivative: chlorogenic acid

Snakebite is a significant health concern in tropical and subtropical regions, particularly in Africa, Asia, and Latin America, resulting in more than 2.7 million envenomations and an estimated one hundred thousand fatalities annually. The Bothrops genus is responsible for the majority of snakebite envenomings in Latin America and Caribbean countries. Accidents involving snakes from this genus are characterized by local symptoms that often lead to permanent sequelae and death. However, specific antivenoms exhibit limited effectiveness in inhibiting local tissue damage. Phospholipase A2-like (PLA2-like) toxins emerge as significant contributors to local myotoxicity in accidents involving Bothrops species. As a result, they represent a crucial target for prospective treatments. Some natural and synthetic compounds have shown the ability to reduce or abolish the myotoxic effects of PLA2-like proteins. In this study, we employed a combination approach involving myographic, morphological, biophysical and bioinformatic techniques to investigate the interaction between chlorogenic acid (CGA) and BthTX-I, a PLA2-like toxin. CGA provided a protection of 71.8% on muscle damage in a pre-incubation treatment. Microscale thermophoresis and circular dichroism experiments revealed that CGA interacted with the BthTX-I while preserving its secondary structure. CGA exhibited an affinity to the toxin that ranks among the highest observed for a natural compound. Bioinformatics simulations indicated that CGA inhibitor binds to the toxin's hydrophobic channel in a manner similar to other phenolic compounds previously investigated. These findings suggest that CGA interferes with the allosteric transition of the non-activated toxin, and the stability of the dimeric assembly of its activated state.

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来源期刊
CiteScore
8.00
自引率
0.00%
发文量
55
审稿时长
33 days
期刊介绍: BBA Proteins and Proteomics covers protein structure conformation and dynamics; protein folding; protein-ligand interactions; enzyme mechanisms, models and kinetics; protein physical properties and spectroscopy; and proteomics and bioinformatics analyses of protein structure, protein function, or protein regulation.
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