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Reduced PI3K(p110α) induces atrial myopathy, and PI3K-related lipids are dysregulated in athletes with atrial fibrillation

Title: Reduced PI3K(p110α) induces atrial myopathy, and PI3K-related lipids are dysregulated in athletes with atrial fibrillation
Authors: Sebastian Bass-Stringer; Bianca C. Bernardo; Gunes S. Yildiz; Aya Matsumoto; Helen Kiriazis; Claudia A. Harmawan; Celeste M.K. Tai; Roger Chooi; Lauren Bottrell; Martin Ezeani; Daniel G. Donner; Aascha A. D'Elia; Jenny Y.Y. Ooi; Natalie A. Mellett; Jieting Luo; Emma I. Masterman; Kristel Janssens; Gavriel Olshansky; Erin J. Howden; Jonathon H. Cross; Christoph E. Hagemeyer; Ruby C.Y. Lin; Colleen J. Thomas; Graham W. Magor; Andrew C. Perkins; Thomas H. Marwick; Hiroshi Kawakami; Peter J. Meikle; David W. Greening; Kate L. Weeks; André La Gerche; Yow Keat Tham; Julie R. McMullen
Source: Journal of Sport and Health Science, Vol 14, Iss , Pp 101023- (2025)
Publisher Information: Elsevier, 2025.
Publication Year: 2025
Collection: LCC:Sports; LCC:Sports medicine
Subject Terms: Atrial myopathy; Atrial fibrillation; Lipidomics; Proteomics; Exercise; Sports; GV557-1198.995; Sports medicine; RC1200-1245
Description: Background: Elucidating mechanisms underlying atrial myopathy, which predisposes individuals to atrial fibrillation (AF), will be critical for preventing/treating AF. In a serendipitous discovery, we identified atrial enlargement, fibrosis, and thrombi in mice with reduced phosphoinositide 3-kinase (PI3K) in cardiomyocytes. PI3K(p110α) is elevated in the heart with exercise and is critical for exercise-induced ventricular enlargement and protection, but the role in the atria was unknown. Physical inactivity and extreme endurance exercise can increase AF risk. Therefore, our objective was to investigate whether too little and/or too much PI3K alone induces cardiac pathology. Methods: New cardiomyocyte-specific transgenic mice with increased or decreased PI3K(p110α) activity were generated. Multi-omics was conducted in mouse atrial tissue, and lipidomics in human plasma. Results: Elevated PI3K led to an increase in heart size with preserved/enhanced function. Reduced PI3K led to atrial dysfunction, fibrosis, arrhythmia, increased susceptibility to atrial enlargement and thrombi, and dysregulation of monosialodihexosylganglioside (GM3), a lipid that regulates insulin-like growth factor-1 (IGF1)–PI3K signaling. Proteomic profiling identified distinct signatures and signaling networks across atria with varying degrees of dysfunction, enlargement, and thrombi, including commonalities with the human AF proteome. PI3K-related lipids were dysregulated in plasma from athletes with AF. Conclusion: PI3K(p110α) is a critical regulator of atrial biology and function in mice. This work provides a proteomic resource of candidates for further validation as potential new drug targets and biomarkers for atrial myopathy. Further investigation of PI3K-related lipids as markers for identifying individuals at risk of AF is warranted. Dysregulation of PI3K may contribute to the association between increased cardiac risk with physical inactivity and extreme endurance exercise.
Document Type: article
File Description: electronic resource
Language: English
ISSN: 2095-2546
Relation: http://www.sciencedirect.com/science/article/pii/S2095254625000018; https://doaj.org/toc/2095-2546
DOI: 10.1016/j.jshs.2025.101023
Access URL: https://doaj.org/article/2e95eae3aec545dfa1e5a4b89c0ea399
Accession Number: edsdoj.2e95eae3aec545dfa1e5a4b89c0ea399
Database: Directory of Open Access Journals