Stress-induced premature senescence mediated by a novel gene, SENEX, results in an anti-inflammatory phenotype in endothelial cells

Author:

Coleman Paul R.1,Hahn Christopher N.23,Grimshaw Matthew1,Lu Ying1,Li Xiaochun2,Brautigan Peter J.2,Beck Konstanze4,Stocker Roland45,Vadas Mathew A.1,Gamble Jennifer R.15

Affiliation:

1. Vascular Biology Program, Centenary Institute of Cancer Medicine and Cell Biology, Sydney, Australia;

2. Molecular Pathology Research Laboratory, Hanson Institute, SA Pathology, Adelaide, Australia;

3. Department of Medicine, University of Adelaide, Adelaide, Australia;

4. Centre for Vascular Research, Bosch Institute and Discipline of Pathology, School of Medical Sciences, Sydney Medical School, University of Sydney, Sydney, Australia; and

5. Medical Foundation, University of Sydney, Sydney, Australia

Abstract

AbstractCellular senescence is a mechanism to inhibit the growth of mammalian cells after oncogenic activation, or in response to damage or stress. We describe here the identification of a novel gene, SENEX, that regulates stress induced premature senescence pathways in endothelial cells (ECs) involving p16INK4a and retinoblastoma protein activation. Endogenous levels of SENEX remain unchanged during replicative senescence but are regulated by H2O2-mediated stress. In contrast to that previously described for senescence in other cell types, the SENEX induced senescent ECs are profoundly anti-inflammatory. The cells are resistant to tumor necrosis factor (TNF)α–induced apoptosis, adhesion of neutrophils and mononuclear cells, and the surface (but not cytoplasmic) expression of endothelial leukocyte adhesion molecule 1 and vascular cell adhesion molecule 1. Furthermore they are resistant to thrombin induced vascular leak. Senescent ECs such as those lining atherosclerotic lesions may therefore function to limit the inflammatory response. SENEX is also essential for EC survival since depletion either ectopically by siRNA or by high- dose H2O2 treatment causes apoptosis. Together, these findings expand our understanding of the role of senescence in the vasculature and identify SENEX as a fulcrum for driving the resultant phenotype of the endothelium after activation.

Publisher

American Society of Hematology

Subject

Cell Biology,Hematology,Immunology,Biochemistry

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