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VarMeter:一种预测糖原变体影响的方法。

VarMeter: a prediction method for the impact of glycogene variants.

作者信息

Ohno Shiho, Manabe Noriyoshi, Kaname Tadashi, Nishihara Shoko, Yamaguchi Yoshiki

机构信息

Division of Structural Glycobiology, Institute of Molecular Biomembrane and Glycobiology, Tohoku Medical and Pharmaceutical University, Sendai, Miyagi, Japan.

Department of Genome Medicine, National Center for Child Health and Development, Tokyo, Japan.

出版信息

J Hum Genet. 2025 Jul 8. doi: 10.1038/s10038-025-01364-8.

Abstract

The clinical relevance of glycans, which play a wide array of physiological roles, is underscored by the emergence of congenital disorders of glycosylation, a group of rare inherited diseases caused by defects in glycan-related genes (glycogenes). Biochemical studies of recombinant proteins and phenotypic analyses in knockout mice are revealing critical insights into the roles of various glycosyltransferases, glycosidases, and glycan-binding proteins. However, the biological functions of numerous glycogenes and their role in disease remain incompletely understood, partly due to human-specific functions that are not recapitulated in model organisms, and partly due to the structural diversity and complexity of glycan modifications, which are difficult to fully assess by conventional methods. A promising complementary strategy is the systematic assessment of human genetic variants, particularly missense mutations, to infer functional consequences. Recent developments in protein structure prediction, exemplified by AlphaFold, are facilitating the development of structure-based approaches to variant interpretation. In this review, we discuss current methodologies for predicting the impact of missense variants using structural information, and introduce VarMeter, a computational framework incorporating 3D structural parameters that has been successfully applied to the prediction of pathogenic variants in the ClinVar database. We also describe VarMeter2, an updated version that integrates AlphaFold-derived pLDDT confidence scores and Mahalanobis distance analysis to improve prediction accuracy, demonstrating its ability to predict pathogenic variants of four glycan-related proteins. These tools offer a novel avenue for uncovering previously unrecognized functions of glycogenes and their links to disease, and contribute to the clinical interpretation of genetic variation.

摘要

聚糖发挥着广泛的生理作用,先天性糖基化障碍的出现凸显了其临床相关性。先天性糖基化障碍是一组由聚糖相关基因(糖基因)缺陷引起的罕见遗传性疾病。对重组蛋白的生化研究以及基因敲除小鼠的表型分析,正在揭示各种糖基转移酶、糖苷酶和聚糖结合蛋白的关键作用。然而,许多糖基因的生物学功能及其在疾病中的作用仍未完全了解,部分原因是模型生物无法重现人类特有的功能,部分原因是聚糖修饰的结构多样性和复杂性,难以通过传统方法进行全面评估。一种有前景的补充策略是系统评估人类遗传变异,特别是错义突变,以推断其功能后果。以AlphaFold为代表的蛋白质结构预测的最新进展,正在推动基于结构的变异解释方法的发展。在这篇综述中,我们讨论了利用结构信息预测错义变异影响的当前方法,并介绍了VarMeter,这是一个包含三维结构参数的计算框架,已成功应用于ClinVar数据库中致病变异的预测。我们还描述了VarMeter2,这是一个更新版本,它整合了AlphaFold衍生的pLDDT置信度分数和马氏距离分析,以提高预测准确性,并展示了其预测四种聚糖相关蛋白致病变异的能力。这些工具为揭示糖基因以前未被认识的功能及其与疾病的联系提供了一条新途径,并有助于对遗传变异进行临床解释。

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