H3K4 di-methylation governs smooth muscle lineage identity and promotes vascular homeostasis by restraining plasticity

Dev Cell. 2021 Oct 11;56(19):2765-2782.e10. doi: 10.1016/j.devcel.2021.09.001. Epub 2021 Sep 27.

Abstract

Epigenetic mechanisms contribute to the regulation of cell differentiation and function. Vascular smooth muscle cells (SMCs) are specialized contractile cells that retain phenotypic plasticity even after differentiation. Here, by performing selective demethylation of histone H3 lysine 4 di-methylation (H3K4me2) at SMC-specific genes, we uncovered that H3K4me2 governs SMC lineage identity. Removal of H3K4me2 via selective editing in cultured vascular SMCs and in murine arterial vasculature led to loss of differentiation and reduced contractility due to impaired recruitment of the DNA methylcytosine dioxygenase TET2. H3K4me2 editing altered SMC adaptative capacities during vascular remodeling due to loss of miR-145 expression. Finally, H3K4me2 editing induced a profound alteration of SMC lineage identity by redistributing H3K4me2 toward genes associated with stemness and developmental programs, thus exacerbating plasticity. Our studies identify the H3K4me2-TET2-miR145 axis as a central epigenetic memory mechanism controlling cell identity and function, whose alteration could contribute to various pathophysiological processes.

Keywords: DNA methylation; cell differentiation; epigenetics; gene regulation; histone modifications; microRNA; vascular disease; vascular injury.

Publication types

  • Research Support, N.I.H., Extramural
  • Research Support, Non-U.S. Gov't

MeSH terms

  • Adaptation, Physiological / genetics*
  • Animals
  • Cell Differentiation / genetics
  • Cell Line
  • Cell Lineage / physiology
  • DNA Methylation / genetics
  • DNA-Binding Proteins / genetics
  • DNA-Binding Proteins / metabolism
  • Demethylation
  • Dioxygenases / genetics
  • Dioxygenases / metabolism
  • Epigenesis, Genetic / genetics
  • Epigenomics
  • Gene Expression / genetics
  • Gene Expression Regulation / genetics*
  • Histones / genetics
  • Histones / metabolism
  • Homeostasis
  • Humans
  • Male
  • Mice
  • Mice, Inbred C57BL
  • Muscle, Smooth, Vascular / cytology
  • Muscle, Smooth, Vascular / metabolism*
  • Myocytes, Smooth Muscle / cytology
  • Vascular Remodeling

Substances

  • DNA-Binding Proteins
  • Histones
  • Dioxygenases
  • Tet2 protein, mouse