Hoxa9 developmental signals induce muscle stem-cell ageing
Nature (2016) doi:10.1038/nature20603
Epigenetic stress responses induce muscle stem-cell ageing by Hoxa9 developmental signals
Simon Schwörer, Friedrich Becker, Christian Feller, Ali H. Baig, Ute Köber, Henriette Henze, Johann M. Kraus, Beibei Xin, André Lechel, Daniel B. Lipka, Christy S. Varghese, Manuel Schmidt, Remo Rohs, Ruedi Aebersold, Kay L. Medina, Hans A. Kestler, Francesco Neri, Julia von Maltzahn, Stefan Tümpel & K. Lenhard Rudolph
Received 16 October 2015 Accepted 03 November 2016 Published online 30 November 2016
The functionality of stem cells declines during ageing, and this decline
contributes to ageing-associated impairments in tissue regeneration and
function1. Alterations in developmental pathways have been associated with declines in stem-cell function during ageing but the nature of this process remains poorly understood. Hox genes are key regulators of stem cells and tissue patterning during embryogenesis with an unknown role in ageing.
Here we show that the epigenetic stress response in muscle stem cells
(also known as satellite cells) differs between aged and young mice. The
alteration includes aberrant global and site-specific induction of
active chromatin marks in activated satellite cells from aged mice,
resulting in the specific induction of Hoxa9 but not other Hox genes. Hoxa9
in turn activates several developmental pathways and represents a
decisive factor that separates satellite cell gene expression in aged
mice from that in young mice. The activated pathways include most of the
currently known inhibitors of satellite cell function in ageing muscle,
including Wnt, TGFβ, JAK/STAT and senescence signalling2, 3, 4, 6. Inhibition of aberrant chromatin activation or deletion of Hoxa9 improves satellite cell function and muscle regeneration in aged mice, whereas overexpression of Hoxa9 mimics ageing-associated defects in satellite cells from young mice,
which can be rescued by the inhibition of Hoxa9-targeted developmental
pathways. Together, these data delineate an altered epigenetic stress
response in activated satellite cells from aged mice, which limits
satellite cell function and muscle regeneration by Hoxa9-dependent
activation of developmental pathways.