Owais Asia, Barney Miles, Ly Olivia Thao, Brown Grace, Chen Hanna, Sridhar Arvind, Pavel Arif, Khetani Salman R, Darbar Dawood
Division of Cardiology, Department of Medicine, University of Illinois, Chicago, Illinois, USA.
Department of Biomedical Engineering, University of Illinois, Chicago, Illinois, USA.
JACC Basic Transl Sci. 2024 Feb 28;9(7):918-934. doi: 10.1016/j.jacbts.2023.12.006. eCollection 2024 Jul.
The heritability of atrial fibrillation (AF) is well established. Over the last decade genetic architecture of AF has been unraveled by genome-wide association studies and family-based studies. However, the translation of these genetic discoveries has lagged owing to an incomplete understanding of the pathogenic mechanisms underlying the genetic variants, challenges in classifying variants of uncertain significance (VUS), and limitations of existing disease models. We review the mechanistic insight provided by basic science studies regarding AF mechanisms, recent developments in high-throughput classification of VUS, and advances in bioengineered cardiac models for developing personalized therapy for AF.
心房颤动(AF)的遗传易感性已得到充分证实。在过去十年中,全基因组关联研究和基于家系的研究揭示了AF的遗传结构。然而,由于对基因变异潜在致病机制的理解不完整、对意义未明变异(VUS)分类的挑战以及现有疾病模型的局限性,这些基因发现的转化应用滞后。我们综述了基础科学研究提供的关于AF机制的机理见解、VUS高通量分类的最新进展以及用于开发AF个性化治疗的生物工程心脏模型的进展。