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Loss of p300/CBP-associated factor aggravates cardiac remodeling via regulation of CAMKK2 acetylation

Authors
 Lim, Yongwoon  ;  Jeong, Anna  ;  Kwon, Duk-Hwa  ;  Lee, Yun-Gyeong  ;  Lee, Yeong-Un  ;  Cho, Hye Jung  ;  Kee, Hae Jin  ;  Yoon, Somy  ;  Yoon, Ho-Geun  ;  Kim, Yugyeong  ;  Seo, Sang Beom  ;  Nam, Kwang-Il  ;  Eom, Gwang Hyeon  ;  Ahn, Youngkeun  ;  Yong, Jeongsik  ;  Kim, Young-Kook  ;  Kook, Hyun 
Citation
 EXPERIMENTAL AND MOLECULAR MEDICINE, Vol.58(4) : 1297-1310, 2026-04 
Journal Title
EXPERIMENTAL AND MOLECULAR MEDICINE
ISSN
 1226-3613 
Issue Date
2026-04
MeSH
AMP-Activated Protein Kinases / metabolism ; Acetylation ; Animals ; Calcium-Calmodulin-Dependent Protein Kinase Kinase* / genetics ; Calcium-Calmodulin-Dependent Protein Kinase Kinase* / metabolism ; Cardiomegaly / genetics ; Cardiomegaly / metabolism ; Cardiomegaly / pathology ; Disease Models, Animal ; Male ; Mice ; Mice, Knockout ; Myocytes, Cardiac / metabolism ; Myocytes, Cardiac / pathology ; Signal Transduction ; Ventricular Remodeling* / genetics ; p300-CBP Transcription Factors* / deficiency ; p300-CBP Transcription Factors* / genetics ; p300-CBP Transcription Factors* / metabolism
Abstract
Here we aim to elucidate the role of the p300/CBP-associated factor (PCAF) in pathological cardiac remodeling. Specifically, we explore how PCAF-mediated acetylation of calcium/calmodulin-dependent protein kinase kinase 2 (CAMKK2) influences AMPK signaling, thereby regulating cardiac hypertrophy and dysfunction under pathological stress. A genetically engineered PCAF-knockout (KO) mouse model was generated using the CRISPR-Cas9 system to evaluate the effect of PCAF deficiency on cardiac remodeling induced by isoproterenol infusion and transverse aortic constriction (TAC). PCAF deficiency significantly aggravated cardiac enlargement with features of eccentric hypertrophy, as demonstrated by histological analysis and echocardiography. To determine these phenotypes were cardiomyocyte specific, we generated a cardiomyocyte-specific conditional KO model, which also showed a dilated cardiomyopathy-like phenotype similar to that of the global-KO mice. Transcriptomic analysis of TAC-operated hearts from wild-type and KO mice revealed enrichment of pathways related to mitochondrial function and energy homeostasis. Mechanistically, PCAF directly acetylated CAMKK2, promoting its activation and the subsequent phosphorylation of AMP-activated protein kinase alpha (AMPK alpha) at Thr172, a critical step in maintaining metabolic balance under stresses. These signaling alterations were also observed in the hearts of PCAF-KO hearts subjected to isoproterenol administration or TAC. Pharmacological activation of PCAF with SPV106 effectively attenuated TAC-induced cardiac remodeling, preserving cardiac structure and function. Collectively, these findings identify PCAF as a pivotal regulator of pathological cardiac remodeling through modulation of the CAMKK2-AMPK signaling axis. Loss of PCAF exacerbates stress-induced cardiac hypertrophy and dysfunction, highlighting its potential as a therapeutic target to preserve cardiac function and counteract stress-induced remodeling.
Files in This Item:
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DOI
10.1038/s12276-026-01698-z
Appears in Collections:
1. College of Medicine (의과대학) > Dept. of Biochemistry and Molecular Biology (생화학-분자생물학교실) > 1. Journal Papers
Yonsei Authors
Yoon, Ho Geun(윤호근) ORCID logo https://orcid.org/0000-0003-2718-3372
URI
https://ir.ymlib.yonsei.ac.kr/handle/22282913/212150
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