Sequencing in over 50,000 cases identifies coding and structural variation underlying atrial fibrillation risk

IF 29 1区 生物学 Q1 GENETICS & HEREDITY Nature genetics Pub Date : 2025-03-06 DOI:10.1038/s41588-025-02074-9
Seung Hoan Choi, Sean J. Jurgens, Ling Xiao, Matthew C. Hill, Christopher M. Haggerty, Garðar Sveinbjörnsson, Valerie N. Morrill, Nicholas A. Marston, Lu-Chen Weng, James P. Pirruccello, David O. Arnar, Daniel Fannar Gudbjartsson, Helene Mantineo, Aenne S. von Falkenhausen, Andrea Natale, Arnljot Tveit, Bastiaan Geelhoed, Carolina Roselli, David R. Van Wagoner, Dawood Darbar, Doreen Haase, Elsayed Z. Soliman, Giovanni E. Davogustto, Goo Jun, Hugh Calkins, Jeffrey L. Anderson, Jennifer A. Brody, Jennifer L. Halford, John Barnard, John E. Hokanson, Jonathan D. Smith, Joshua C. Bis, Kendra Young, Linda S. B. Johnson, Lorenz Risch, Lorne J. Gula, Lydia Coulter Kwee, Mark D. Chaffin, Michael Kühne, Michael Preuss, Namrata Gupta, Navid A. Nafissi, Nicholas L. Smith, Peter M. Nilsson, Pim van der Harst, Quinn S. Wells, Renae L. Judy, Renate B. Schnabel, Renee Johnson, Roelof A. J. Smit, Stacey Gabriel, Stacey Knight, Tetsushi Furukawa, Thomas W. Blackwell, Victor Nauffal, Xin Wang, Yuan-I Min, Zachary T. Yoneda, Zachary W. M. Laksman, Connie R. Bezzina, Alvaro Alonso, Bruce M. Psaty, Christine M. Albert, Dan E. Arking, Dan M. Roden, Daniel I. Chasman, Daniel J. Rader, David Conen, David D. McManus, Diane Fatkin, Emelia J. Benjamin, Eric Boerwinkle, Gregory M. Marcus, Ingrid E. Christophersen, J. Gustav Smith, Jason D. Roberts, Laura M. Raffield, M. Benjamin Shoemaker, Michael H. Cho, Michael J. Cutler, Michiel Rienstra, Mina K. Chung, Morten S. Olesen, Moritz F. Sinner, Nona Sotoodehnia, Paulus Kirchhof, Ruth J. F. Loos, Saman Nazarian, Sanghamitra Mohanty, Scott M. Damrauer, Stefan Kaab, Susan R. Heckbert, Susan Redline, Svati H. Shah, Toshihiro Tanaka, Yusuke Ebana, Regeneron Genetics Center, NHLBI Trans-Omics for Precision Medicine (TOPMed) Consortium, Hilma Holm, Kari Stefansson, Christian T. Ruff, Marc S. Sabatine, Kathryn L. Lunetta, Steven A. Lubitz, Patrick T. Ellinor
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Abstract

Atrial fibrillation (AF) is a prevalent and morbid abnormality of the heart rhythm with a strong genetic component. Here, we meta-analyzed genome and exome sequencing data from 36 studies that included 52,416 AF cases and 277,762 controls. In burden tests of rare coding variation, we identified novel associations between AF and the genes MYBPC3, LMNA, PKP2, FAM189A2 and KDM5B. We further identified associations between AF and rare structural variants owing to deletions in CTNNA3 and duplications of GATA4. We broadly replicated our findings in independent samples from MyCode, deCODE and UK Biobank. Finally, we found that CRISPR knockout of KDM5B in stem-cell-derived atrial cardiomyocytes led to a shortening of the action potential duration and widespread transcriptomic dysregulation of genes relevant to atrial homeostasis and conduction. Our results highlight the contribution of rare coding and structural variants to AF, including genetic links between AF and cardiomyopathies, and expand our understanding of the rare variant architecture for this common arrhythmia. Analyses of genome and exome sequencing data identify rare coding and structural variants associated with atrial fibrillation and highlight genetic links between atrial fibrillation and cardiomyopathies.

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超过50,000例的测序确定了房颤风险的编码和结构变异
心房颤动(AF)是一种普遍和病态的心律异常与强遗传成分。在这里,我们荟萃分析了来自36项研究的基因组和外显子组测序数据,其中包括52,416例AF病例和277,762例对照。在罕见编码变异的负荷试验中,我们发现AF与MYBPC3、LMNA、PKP2、FAM189A2和KDM5B基因之间存在新的关联。我们进一步确定了由于CTNNA3缺失和GATA4重复导致的AF与罕见结构变异之间的关联。我们在来自MyCode、deCODE和UK Biobank的独立样本中广泛复制了我们的发现。最后,我们发现CRISPR敲除干细胞源性心房心肌细胞中的KDM5B可导致心房稳态和传导相关基因的动作电位持续时间缩短和广泛的转录组失调。我们的研究结果强调了罕见的编码和结构变异对房颤的贡献,包括房颤和心肌病之间的遗传联系,并扩大了我们对这种常见心律失常的罕见变异结构的理解。
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来源期刊
Nature genetics
Nature genetics 生物-遗传学
CiteScore
43.00
自引率
2.60%
发文量
241
审稿时长
3 months
期刊介绍: Nature Genetics publishes the very highest quality research in genetics. It encompasses genetic and functional genomic studies on human and plant traits and on other model organisms. Current emphasis is on the genetic basis for common and complex diseases and on the functional mechanism, architecture and evolution of gene networks, studied by experimental perturbation. Integrative genetic topics comprise, but are not limited to: -Genes in the pathology of human disease -Molecular analysis of simple and complex genetic traits -Cancer genetics -Agricultural genomics -Developmental genetics -Regulatory variation in gene expression -Strategies and technologies for extracting function from genomic data -Pharmacological genomics -Genome evolution
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