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Updated: Jan 28, 2026

Quantitative Analysis of Chromatin Proteomes in Disease
Published on: December 28, 2012
Proteomics based identification of KDM5 histone demethylases associated with cardiovascular disease
Marika Mokou1, Julie Klein2, Manousos Makridakis3
1Biotechnology Laboratory, Centre of Basic Research, Biomedical Research Foundation of the Academy of Athens, Athens, Greece; Laboratory of Biology, University of Athens, School of Medicine, Athens, Greece.
Background:
The increased prevalence of cardiovascular disease (CVD) indicates a demand for novel therapeutic approaches. Proteome analysis of vascular tissues from animal models and humans with CVD could lead to the identification of novel druggable targets.
Methods:
LC-MS/MS analysis of thoracic aortas from three mouse models of non-diabetic and diabetic (streptozotocin (STZ)-induced) atherosclerosis followed by bioinformatics/pathway analysis was performed. Selected findings were confirmed by proteomics analysis of human vessels from patients with CVD as well as in vitro studies (migration, proliferation, angiogenesis assays) using endothelial (HUVEC) cells.
Findings:
Comparative tissue proteomics of low density lipoprotein receptor deficient (Ldlr-/-) and diabetic Ldlr-/- (Ldlr-/-STZ) with wild type (WT) animals led to the identification of 284 differentially expressed proteins in both models. Among them, 177 proteins were also differentially expressed in diabetic apolipoprotein E deficient (ApoE-/-STZ) mice, suggesting expression changes associated with atherosclerosis independent of the model used. These proteins recapitulated the hallmarks of atherosclerosis. Comparison of these findings with differentially expressed proteins in human vessels with CVD enabled shortlisting of six commonly dysregulated proteins. Among them, lysine-specific demethylase 5D (KDM5D) exhibited pronounced overexpression accompanied by a reduction in the protein levels of its substrate, the trimethylated lysine 4 of histone H3 (H3K4me3), in patients with CVD. Functional interference studies applying a KDM5 inhibitor on HUVEC reduced cell proliferation, migration and tube-forming ability in vitro.
Interpretation:
This high-throughput proteomics strategy identified KDM5 histone demethylases being potentially involved in CVD, possibly by affecting H3K4 methylation. FUND: [SysVasc, HEALTH-2013 603288], [ERA-CVD PROACT: ANR-17-ECVD-0006, 01KL1805], [FRM, DEQ20170336759].
Insights
Proteomics identified KDM5 histone demethylases as potential targets for cardiovascular disease (CVD). Inhibiting KDM5 reduced endothelial cell functions crucial for blood vessel health, suggesting a role in CVD pathogenesis.
Area of Science:
- Biochemistry
- Molecular Biology
- Cardiovascular Research
Background:
- Cardiovascular disease (CVD) prevalence necessitates novel therapeutic strategies.
- Proteome analysis of vascular tissues offers potential for identifying new drug targets.
Purpose of the Study:
- To identify novel druggable targets for cardiovascular disease (CVD) through proteomic analysis.
- To investigate the role of specific proteins in atherosclerosis using animal models and human samples.
Main Methods:
- Liquid chromatography-tandem mass spectrometry (LC-MS/MS) proteomic analysis of mouse models of atherosclerosis.
- Bioinformatics and pathway analysis of proteomic data.
- Proteomic analysis of human CVD vascular tissues and in vitro endothelial cell assays.
Main Results:
- Identified 284 differentially expressed proteins in mouse atherosclerosis models, with 177 common across models, indicating atherosclerosis-specific changes.
- Shortlisted six commonly dysregulated proteins in human CVD, including KDM5D (lysine-specific demethylase 5D).
- KDM5D was overexpressed in human CVD, correlating with reduced H3K4me3 levels; KDM5 inhibition impaired endothelial cell proliferation, migration, and angiogenesis.
Conclusions:
- High-throughput proteomics identified KDM5 histone demethylases as potentially involved in CVD.
- KDM5 may influence CVD pathogenesis by affecting H3K4 methylation.
- KDM5D is a potential therapeutic target for cardiovascular disease.
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