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通过配体筛选鉴定的靶向人钾通道的水母毒液肽:物种的形态计量学和分子鉴定及抗生素潜力。

Jellyfish Venom Peptides Targeting Human Potassium Channels Identified through Ligand Screening: Morphometric and Molecular Identification of the Species and Antibiotic Potential.

机构信息

Department of Zoology, Faculty of Applied Sciences, University of Sri Jayewardenepura, Nugegoda 10250, Sri Lanka.

Genetics and Molecular Biology Unit, Faculty of Applied Sciences, University of Sri Jayewardenepura, Nugegoda 10250, Sri Lanka.

出版信息

Mar Drugs. 2024 Jul 24;22(8):333. doi: 10.3390/md22080333.

DOI:10.3390/md22080333
PMID:39195449
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC11355547/
Abstract

The relative lack of marine venom could be attributed to the difficulty in dealing with venomous marine animals. Moreover, the venom of marine animals consists of various bioactive molecules, many of which are proteins with unique properties. In this study, we investigated the potential toxic proteins of jellyfish collected for ligand screening to understand the mechanism of the toxic effects of jellyfish. Since taxonomic identification is problematic due to the lack of proper keys, we conducted morphological and molecular mitochondrial DNA sequencing from and regions. The venom extract from nematocysts found along the bell margins was used for protein characterization using SDS-gel electrophoresis and nano-liquid chromatography-tandem mass spectrometry. Ligand screening for the most potent toxin and antibacterial and cytotoxicity assays were carried out. The phylogenetic tree showed distinct clustering from other sp. The proteomic analysis revealed venom with many bioactive proteins. Only 13 venom proteins were identified with molecular weights ranging from 4318 to 184,923 Da, exhibiting the venom's complexity. The overall toxin protein composition of sp. venom was dominated by potassium channel toxin alpha-KTx. Molecular docking of toxin alpha-KTx 1.13 revealed high specificity towards the human voltage-gated potassium channel Kv3 with a high fitness score and a minimum energy barrier of -17.9 kcal/mol. Disc diffusion and cytotoxicity assays revealed potent antibacterial activity against with no cytotoxicity. Further studies on detailed characterization and therapeutic potentials are warranted.

摘要

海洋毒液相对较少可能归因于处理有毒海洋动物的困难。此外,海洋动物的毒液包含各种生物活性分子,其中许多是具有独特性质的蛋白质。在这项研究中,我们研究了水母的潜在毒性蛋白,以进行配体筛选,从而了解水母毒性作用的机制。由于缺乏适当的鉴定工具,分类鉴定存在问题,因此我们对 和 区域进行了形态学和分子线粒体 DNA 测序。使用 SDS-凝胶电泳和纳米液相色谱-串联质谱法,对从沿钟形边缘的刺丝囊中提取的毒液提取物进行了蛋白质特性分析。进行了最有效毒素的配体筛选以及抗菌和细胞毒性测定。系统发育树显示与其他 sp. 明显聚类。蛋白质组学分析显示毒液具有许多生物活性蛋白。仅鉴定出 13 种分子量在 4318 至 184,923 Da 之间的毒液蛋白,显示出毒液的复杂性。 sp. 毒液的整体毒素蛋白组成以钾通道毒素 alpha-KTx 为主。毒素 alpha-KTx 1.13 的分子对接显示出对人电压门控钾通道 Kv3 的高特异性,拟合度得分高,最低能量势垒为-17.9 kcal/mol。圆盘扩散和细胞毒性测定显示出对 的强大抗菌活性,而无细胞毒性。需要进一步研究详细的特征和治疗潜力。

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