用AlphaFold 3建模聚糖:功能、注意事项和限制。

IF 3.3 3区 生物学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY
Chin Huang, Natarajan Kannan, Kelley W Moremen
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引用次数: 0

摘要

聚糖是一种复杂的碳水化合物,具有非凡的结构复杂性和立体化学多样性,在许多生物过程中发挥重要作用,包括免疫调节、病原体识别和细胞通讯。在人类中,超过一半的蛋白质是糖基化的,特别是在分泌和膜相关途径中,这突出了聚糖在健康和疾病中的重要性。最近发布的AlphaFold 3源代码不仅可以对蛋白质进行定制化建模,还可以对含有聚糖的生物分子复合物进行定制化建模。我们评估了AlphaFold 3使用几种输入格式建模聚糖的能力,并确定了一种混合语法,该语法采用基于化学成分字典(CCD)的分子构建块,由“bondedAtomPairs”(BAP)连接,最有效地生成立体有效的聚糖模型。该工作流用于创建一个AlphaFold 3输入模板库和相应的各种聚糖类结构模型。我们进一步探讨了问题结构建模的能力、限制和补救策略。聚糖的相互作用也与糖基化酶和凝集素进行了建模,并对已知的晶体结构进行了基准测试和验证。这种协议驱动的方法对于生成立体化学上有效的、聚糖-蛋白质相互作用的静态模型,以支持假设的发展和随后的结构和功能验证是有价值的。然而,在过度解释静态模型时应注意,因为已知聚糖表现出相当大的构象动力学,可以通过使用基于分子动力学的方法进行平衡采样进一步捕获。通过分享使用BAP语法的基准示例,我们的目标是支持AlphaFold 3在研究生物合成、信号传导、感染和疾病中的聚糖相关机制方面进行更广泛的评估。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Modeling glycans with AlphaFold 3: capabilities, caveats, and limitations.

Glycans are complex carbohydrates that exhibit extraordinary structural complexity and stereochemical diversity while playing essential roles in many biological processes, including immune regulation, pathogen recognition, and cell communication. In humans, more than half of all proteins are glycosylated, particularly those in secretory and membrane-associated pathways, highlighting the importance of glycans in health and disease. The recent release of the AlphaFold 3 source code enables customizable modeling not only of proteins but also glycan-containing biomolecular complexes. We assessed the capacity of AlphaFold 3 to model glycans using several input formats and identified a hybrid syntax employing Chemical Component Dictionary (CCD)-based molecular building blocks linked by "bondedAtomPairs" (BAP) as most effective in generating stereochemically valid glycan models. This workflow was used to create a library of AlphaFold 3 input templates and corresponding structural models for various glycan classes. We further explored capabilities, limitations, and remediation strategies for modeling problematic structures. Glycan interactions were also modeled with glycosylation enzymes and lectins with benchmarking and validation against known crystal structures. This protocol-driven approach is valuable for generating stereochemically valid, static models of glycan-protein interactions to support hypothesis development and subsequent structural and functional validation. However, caution should be observed in overinterpretation of the static models since glycans are known to exhibit considerable conformational dynamics that can be further captured by equilibrium sampling using molecular dynamics-based approaches. By sharing benchmarked examples using the BAP syntax we aim to support broader evaluation of AlphaFold 3 in studying glycan-related mechanisms in biosynthesis, signaling, infection, and disease.

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来源期刊
Glycobiology
Glycobiology 生物-生化与分子生物学
CiteScore
7.50
自引率
4.70%
发文量
73
审稿时长
3 months
期刊介绍: Established as the leading journal in the field, Glycobiology provides a unique forum dedicated to research into the biological functions of glycans, including glycoproteins, glycolipids, proteoglycans and free oligosaccharides, and on proteins that specifically interact with glycans (including lectins, glycosyltransferases, and glycosidases). Glycobiology is essential reading for researchers in biomedicine, basic science, and the biotechnology industries. By providing a single forum, the journal aims to improve communication between glycobiologists working in different disciplines and to increase the overall visibility of the field.
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