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Published on: June 3, 2018
Downregulation of MLF1 safeguards cardiomyocytes against senescence-associated chromatin opening
Jian Lv1,2,3, Qin Chen1,4, Junmei Wang1
1Shenzhen Key Laboratory of Cardiovascular Disease, Fuwai Shenzhen Hospital, Chinese Academy of Medical Sciences, Shenzhen 518057, China.
Insights
Myeloid leukemia factor 1 (MLF1) acts as a pro-aging factor in the heart. It recruits EP300 to open chromatin, promoting senescence-related gene expression in aging-associated cardiac hypertrophy.
Area of Science:
- Cardiovascular Biology
- Epigenetics
- Aging Research
Background:
- Aging-associated cardiac hypertrophy (AACH) elevates heart failure risk in older adults.
- Chromatin remodeling is implicated in AACH gene reprogramming, but underlying mechanisms are unclear.
Purpose of the Study:
- To identify aging-sensitive factors regulating AACH.
- To elucidate the epigenetic role of myeloid leukemia factor 1 (MLF1) in cardiac aging and hypertrophy.
Main Methods:
- Comparative transcriptome analysis of AACH and pressure-overload hypertrophy in mice.
- MLF1 knockdown/overexpression studies in human cardiomyocytes.
- RNA-seq, ATAC-seq, and CUT&Tag analyses.
- Investigation of MLF1 interaction with epigenetic modifiers PRC2 and EP300.
Main Results:
- MLF1 expression decreases with age but is reversible with anti-aging treatments.
- MLF1 knockdown suppresses, while overexpression exacerbates, senescence in cardiomyocytes.
- MLF1 activates transcription of inflammation and development genes.
- MLF1 regulates chromatin accessibility at senescence effector promoters (e.g., IL1B, p21).
- MLF1's function depends on EP300, not PRC2, facilitating H3K27ac deposition.
Conclusions:
- MLF1 is identified as a key epigenetic regulator in cardiac aging.
- MLF1 recruits EP300 to promote chromatin opening at senescence-associated genes.
- MLF1 acts as a pro-aging factor in AACH, offering a potential therapeutic target.
Abstract:
Aging-associated cardiac hypertrophy (AACH) increases susceptibility to heart failure in the elderly. Chromatin remodeling contributes to the gene reprogramming in AACH; however, the intrinsic regulations remain elusive. We performed a transcriptome analysis for AACH in comparison with pressure-overload-induced pathological cardiac hypertrophy in mice and identified myeloid leukemia factor 1 (MLF1) as an aging-sensitive factor whose expression was reduced during aging but could be reversed by anti-aging administrations. In human AC16 cardiomyocytes, silencing MLF1 suppressed H2O2-induced cell senescence while the phenotype was exacerbated by MLF1 overexpression. RNA-seq analysis revealed that MLF1 functioned as a transcription activator, regulating genomic-clustered genes that mainly involved in inflammation and development. ATAC-seq analysis showed a prominent reduction in chromatin accessibility at the promoter regions of senescence effectors, like IL1B and p21, after MLF1 knockdown. Despite a potential interaction of MLF1 with the histone methyltransferase PRC2, its inhibition failed to reverse the impact of MLF1 knockdown. Instead, MLF1-mediated regulation was blunted by inhibiting the acetyltransferase EP300. CUT&Tag analysis showed that MLF1 bound to target promoters and recruited EP300 to promote H3K27ac deposition. Collectively, we identify MLF1 as a pro-aging epigenetic orchestrator that recruits EP300 to facilitate opening of the condensed chromatin encompassing senescence effectors.
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