Expanding scope of genetic studies in the era of biobanks.

IF 3.1 2区 生物学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY
Diptavo Dutta, Nilanjan Chatterjee
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引用次数: 0

Abstract

Biobanks have become pivotal in genetic research, particularly through genome-wide association studies (GWAS), driving transformative insights into the genetic basis of complex diseases and traits through the integration of genetic data with phenotypic, environmental, family history, and behavioral information. This review explores the distinct design and utility of different biobanks, highlighting their unique contributions to genetic research. We further discuss the utility and methodological advances in combining data from disease-specific study or consortia with that of biobanks, especially focusing on summary statistics based meta-analysis. Subsequently we review the spectrum of additional advantages offered by biobanks in genetic studies in representing population differences, calibration of polygenic scores, assessment of pleiotropy and improving post-GWAS in silico analyses. Advances in sequencing technologies, particularly whole-exome and whole-genome sequencing, have further enabled the discovery of rare variants at biobank scale. Among recent developments, the integration of large-scale multi-omics data especially proteomics and metabolomics, within biobanks provides deeper insights into disease mechanisms and regulatory pathways. Despite challenges like ascertainment strategies and phenotypic misclassification, biobanks continue to evolve, driving methodological innovation and enabling precision medicine. We highlight the contributions of biobanks to genetic research, their growing integration with multi-omics, and finally discuss their future potential for advancing healthcare and therapeutic development.

在生物银行时代,基因研究的范围不断扩大。
生物库已成为遗传研究的关键,特别是通过全基因组关联研究(GWAS),通过将遗传数据与表型、环境、家族史和行为信息相结合,推动了对复杂疾病和性状的遗传基础的变革性见解。这篇综述探讨了不同生物库的独特设计和用途,突出了它们对基因研究的独特贡献。我们进一步讨论了将疾病特异性研究或联盟数据与生物库数据相结合的效用和方法进步,特别是关注基于汇总统计的荟萃分析。随后,我们回顾了生物库在遗传研究中提供的其他优势,包括代表群体差异、校准多基因评分、评估多效性和改进gwas后的计算机分析。测序技术的进步,特别是全外显子组和全基因组测序,进一步使得在生物库规模上发现罕见变异成为可能。在最近的发展中,生物库中大规模多组学数据的整合,特别是蛋白质组学和代谢组学,提供了对疾病机制和调控途径的更深入了解。尽管存在确定策略和表型错误分类等挑战,但生物库仍在不断发展,推动了方法创新,使精准医疗成为可能。我们强调了生物银行对基因研究的贡献,它们与多组学的日益融合,最后讨论了它们在促进医疗保健和治疗发展方面的未来潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Human molecular genetics
Human molecular genetics 生物-生化与分子生物学
CiteScore
6.90
自引率
2.90%
发文量
294
审稿时长
2-4 weeks
期刊介绍: Human Molecular Genetics concentrates on full-length research papers covering a wide range of topics in all aspects of human molecular genetics. These include: the molecular basis of human genetic disease developmental genetics cancer genetics neurogenetics chromosome and genome structure and function therapy of genetic disease stem cells in human genetic disease and therapy, including the application of iPS cells genome-wide association studies mouse and other models of human diseases functional genomics computational genomics In addition, the journal also publishes research on other model systems for the analysis of genes, especially when there is an obvious relevance to human genetics.
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