Impaired immune surveillance accelerates accumulation of senescent cells and aging
NATURE COMMUNICATIONS
Authors: Ovadya, Yossi; Landsberger, Tomer; Leins, Hanna; Vadai, Ezra; Gal, Hilah; Biran, Anat; Yosef, Reut; Sagiv, Adi; Agrawal, Amit; Shapira, Alon; Windheim, Joseph; Tsoory, Michael; Schirmbeck, Reinhold; Amit, Ido; Geiger, Hartmut; Krizhanovsky, Valery
Abstract
Cellular senescence is a stress response that imposes stable cell-cycle arrest in damaged cells, preventing their propagation in tissues. However, senescent cells accumulate in tissues in advanced age, where they might promote tissue degeneration and malignant transformation. The extent of immune-system involvement in regulating age-related accumulation of senescent cells, and its consequences, are unknown. Here we show that Prf1(-/-) mice with impaired cell cytotoxicity exhibit both higher senescent-cell tissue burden and chronic inflammation. They suffer from multiple age-related disorders and lower survival. Strikingly, pharmacological elimination of senescent-cells by ABT-737 partially alleviates accelerated aging phenotype in these mice. In LMNA(+/G609G) progeroid mice, impaired cell cytotoxicity further promotes senescent-cell accumulation and shortens lifespan. ABT-737 administration during the second half of life of these progeroid mice abrogates senescence signature and increases median survival. Our findings shed new light on mechanisms governing senescentcell presence in aging, and could motivate new strategies for regenerative medicine.
Using nuclear envelope mutations to explore age-related skeletal muscle weakness
CLINICAL SCIENCE
Authors: Battey, Edmund; Stroud, Matthew J.; Ochala, Julien
Abstract
Skeletal muscle weakness is an important determinant of age-related declines in independence and quality of life but its causes remain unclear. Accelerated ageing syndromes such as Hutchinson-Gilford Progerin Syndrome, caused by mutations in genes encoding nuclear envelope proteins, have been extensively studied to aid our understanding of the normal biological ageing process. Like several other pathologies associated with genetic defects to nuclear envelope proteins including Emery-Dreifuss muscular dystrophy, Limb-Girdle muscular dystrophy and congenital muscular dystrophy, these disorders can lead to severe muscle dysfunction. Here, we first describe the structure and function of nuclear envelope proteins, and then review the mechanisms by which mutations in genes encoding nuclear envelope proteins induce premature ageing diseases and muscle pathologies. In doing so, we highlight the potential importance of such genes in processes leading to skeletal muscle weakness in old age.