通过蛋白质建模和硅学分析评估遗传性视网膜疾病患者体内 ABCA4 变体的致病性。

IF 1.8 3区 医学 Q4 BIOCHEMISTRY & MOLECULAR BIOLOGY Molecular Vision Pub Date : 2023-10-25 eCollection Date: 2023-01-01
Senem Cevik, Nutsuchar Wangtiraumnuay, Kristof Van Schelvergem, Mai Tsukikawa, Jenina Capasso, Subhasis B Biswas, Barry Bodt, Alex V Levin, Esther Biswas-Fiss
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引用次数: 0

摘要

目的:视网膜特异性 ABCA 转运体 ABCA4 在转运视觉周期所需的视黄醇方面发挥着重要作用。已知 ABCA4 基因变异可导致多种遗传性视网膜疾病,包括斯塔加特病和锥体-杆状营养不良症。目前已发现 1,400 多个 ABCA4 错义变体,但其中一半以上仍是意义不确定的变体(VUS)。本研究的目的是采用一种预测策略,利用蛋白质建模和计算方法评估ABCA4变体在遗传性视网膜疾病中的致病性:我们研究了 13 例临床明确的 ABCA4 视网膜病变患者,并通过下一代测序(NGS)确定了 10 个错义变体的存在,其中包括 ABCA4 基因中的一个新型变体。利用 AlphaFold2 模型和人类 ABCA4 蛋白的现有实验结构对所有变异体进行了结构分析。我们将这些分析结果与患者的临床表现进行了比较,以检验这些方法在预测变异致病性方面的有效性:我们对 13 例基因和表型明确的视网膜疾病患者进行了表型-基因型比较。我们采用的硅学蛋白质结构分析方法成功地检测出了在该受影响患者队列中发现的错义变体的有害影响。我们的研究提供了美国医学遗传学和基因组学学会(ACMG)定义的 9 个错义 ABCA4 变体致病性的支持性证据,与该队列中观察到的临床表型一致:在本报告中,我们介绍了一种通过三维(3D)蛋白质建模和硅学结构分析预测 ABCA4 变体致病性的系统方法。我们的研究结果表明,遗传变异引起的疾病严重程度与蛋白质模型结构变化之间存在一致性。此外,本研究还表明,硅学蛋白质结构分析可用作致病性的预测指标,并可促进遗传 VUS 的评估。
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Protein modeling and in silico analysis to assess pathogenicity of ABCA4 variants in patients with inherited retinal disease.

Purpose: The retina-specific ABCA transporter, ABCA4, plays an essential role in translocating retinoids required by the visual cycle. ABCA4 genetic variants are known to cause a wide range of inherited retinal disorders, including Stargardt disease and cone-rod dystrophy. More than 1,400 ABCA4 missense variants have been identified; however, more than half of these remain variants of uncertain significance (VUS). The purpose of this study was to employ a predictive strategy to assess the pathogenicity of ABCA4 variants in inherited retinal diseases using protein modeling and computational approaches.

Methods: We studied 13 clinically well-defined patients with ABCA4 retinopathies and identified the presence of 10 missense variants, including one novel variant in the ABCA4 gene, by next-generation sequencing (NGS). All variants were structurally analyzed using AlphaFold2 models and existing experimental structures of human ABCA4 protein. The results of these analyses were compared with patient clinical presentations to test the effectiveness of the methods employed in predicting variant pathogenicity.

Results: We conducted a phenotype-genotype comparison of 13 genetically and phenotypically well-defined retinal disease patients. The in silico protein structure analyses we employed successfully detected the deleterious effect of missense variants found in this affected patient cohort. Our study provides American College of Medical Genetics and Genomics (ACMG)-defined supporting evidence of the pathogenicity of nine missense ABCA4 variants, aligning with the observed clinical phenotypes in this cohort.

Conclusions: In this report, we describe a systematic approach to predicting the pathogenicity of ABCA4 variants by means of three-dimensional (3D) protein modeling and in silico structure analysis. Our results demonstrate concordance between disease severity and structural changes in protein models induced by genetic variations. Furthermore, the present study suggests that in silico protein structure analysis can be used as a predictor of pathogenicity and may facilitate the assessment of genetic VUS.

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来源期刊
Molecular Vision
Molecular Vision 生物-生化与分子生物学
CiteScore
4.40
自引率
0.00%
发文量
25
审稿时长
1 months
期刊介绍: Molecular Vision is a peer-reviewed journal dedicated to the dissemination of research results in molecular biology, cell biology, and the genetics of the visual system (ocular and cortical). Molecular Vision publishes articles presenting original research that has not previously been published and comprehensive articles reviewing the current status of a particular field or topic. Submissions to Molecular Vision are subjected to rigorous peer review. Molecular Vision does NOT publish preprints. For authors, Molecular Vision provides a rapid means of communicating important results. Access to Molecular Vision is free and unrestricted, allowing the widest possible audience for your article. Digital publishing allows you to use color images freely (and without fees). Additionally, you may publish animations, sounds, or other supplementary information that clarifies or supports your article. Each of the authors of an article may also list an electronic mail address (which will be updated upon request) to give interested readers easy access to authors.
期刊最新文献
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