bioRxiv Science⌕ Search

Biology subjects

Karimpour, R.

Publications and source records attributed to Karimpour, R..

2 recordsLinked to original sources

Spatiotemporal remodeling of chromatin topology architecture and H3K27me3 redistribution underlies vascular pathology in Hutchinson-Gilford progeria syndrome

Hutchinson-Gilford progeria syndrome (HGPS) is a devastating premature aging disorder driven by the accumulation of the lamin A variant, progerin, leading to severe vascular pathology. While epigenetic alterations are implicated, the spatiotemporal reorganization of the higher-order chromatin and its functional impact on vascular smooth muscle cell (VSMC) transcription remain poorly defined. Through an integrated, longitudinal multi-omics approach combining in situ high-throughput chromosome conformation capture (Hi-C) and Cleavage Under Targets and Tagmentation (CUT&Tag) profiling of CTCF, SMC1A, H3K27me3, H3K27ac, and H3K36me3 with transcriptomic analyses from control and HGPS iPSC-derived VSMCs, we reveal that global topologically associating domain (TAD) architecture remains largely intact in HGPS. However, the internal chromatin states of TADs undergo dynamic, passage-specific remodeling, characterized by a progressive accumulation of broad H3K27me3-repressed domains. This is accompanied by a loss of A/B compartment segregation, as confirmed by DNA-FISH, and a pronounced depletion of interchromosomal intermingling, specifically surrounding downregulated genes, suggesting that these interchromosomal contacts are essential for maintaining transcriptional competence in normal VSMCs. Crucially, we uncover widespread rewiring of enhancer-promoter (E-P) loops, which is linked to the dysregulation of genes critical for vascular development, extracellular matrix organization, and atherosclerosis. Our study demonstrates that spatiotemporal redistribution of repressive histone marks and reorganization of E-P interactions within a structurally resilient TAD framework underpin widespread transcriptional dysregulation in HGPS vascular pathogenesis. This uncovers a critical dissociation between higher-order chromatin architecture and histone modification landscape, providing a mechanistic basis for the failure of vascular homeostasis in progeria.

genomics↗

HDAC2 inhibition restores H4K16 Acetylation and Rescues Cellular Senescence in Hutchinson-Gilford progeria syndrome

Histone H4 lysine 16 acetylation (H4K16ac) controls chromatin compaction, replication-coupled chromatin maturation and double-strand break repair. It is also depleted in Hutchinson-Gilford progeria syndrome (HGPS) vascular smooth muscle cells (VSMCs). To identify the enzymes that set steady-state H4K16ac, we depleted KAT5, KAT8, all eleven zinc-dependent HDACs and all seven sirtuins in HeLa and U2OS cells, then in unaffected control and HGPS VSMCs. KAT8 depletion markedly reduced H4K16ac; KAT5 depletion had little effect. Among erasers, HDAC2 was dominant: its depletion or overexpression bidirectionally modulated H4K16ac, HDAC1 did neither, and SIRT1 depletion raised H4K16ac in these lines but far less in HGPS VSMCs. HDAC2-directed inhibitors (BRD4884, MI192, Santacruzamate A) restored H4K16ac in HGPS VSMCs, whereas the SIRT1 inhibitor EX527 did not. They also improved nuclear architecture, reduced {gamma}H2AX signaling, preserved Ki67 positivity across serial passage, and limited senescence-associated {beta}-galactosidase accumulation. HDAC2 is therefore the predominant class I regulator of steady-state H4K16ac and a candidate target for limiting senescence in HGPS VSMCs.

molecular biology↗