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芋螺毒素:生物信息学中的分类、预测及未来方向

Conotoxins: Classification, Prediction, and Future Directions in Bioinformatics.

作者信息

Li Rui, Yu Junwen, Ye Dongxin, Liu Shanghua, Zhang Hongqi, Lin Hao, Feng Juan, Deng Kejun

机构信息

The Clinical Hospital of Chengdu Brain Science Institute, School of Life Science and Technology, Center for Informational Biology, University of Electronic Science and Technology of China, Chengdu 610054, China.

出版信息

Toxins (Basel). 2025 Feb 9;17(2):78. doi: 10.3390/toxins17020078.

Abstract

Conotoxins, a diverse family of disulfide-rich peptides derived from the venom of species, have gained prominence in biomedical research due to their highly specific interactions with ion channels, receptors, and neurotransmitter systems. Their pharmacological properties make them valuable molecular tools and promising candidates for therapeutic development. However, traditional conotoxin classification and functional characterization remain labor-intensive, necessitating the increasing adoption of computational approaches. In particular, machine learning (ML) techniques have facilitated advancements in sequence-based classification, functional prediction, and de novo peptide design. This review explores recent progress in applying ML and deep learning (DL) to conotoxin research, comparing key databases, feature extraction techniques, and classification models. Additionally, we discuss future research directions, emphasizing the integration of multimodal data and the refinement of predictive frameworks to enhance therapeutic discovery.

摘要

芋螺毒素是一类多样的富含二硫键的肽,源自多种物种的毒液,由于它们与离子通道、受体和神经递质系统具有高度特异性相互作用,在生物医学研究中备受关注。它们的药理特性使其成为有价值的分子工具和治疗开发的有前景的候选物。然而,传统的芋螺毒素分类和功能表征仍然需要大量人力,因此越来越需要采用计算方法。特别是,机器学习(ML)技术推动了基于序列的分类、功能预测和从头肽设计方面的进展。本综述探讨了将ML和深度学习(DL)应用于芋螺毒素研究的最新进展,比较了关键数据库、特征提取技术和分类模型。此外,我们讨论了未来的研究方向,强调多模态数据的整合以及预测框架的完善,以加强治疗发现。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6eda/11860864/7ef2d81a48a5/toxins-17-00078-g001.jpg

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