Mitochondrial function in skeletal myofibers is controlled by a TRF2-SIRT3 axis over lifetime
AGING CELL
Authors: Robin, Jerome D.; Burbano, Maria-Sol Jacome; Peng, Han; Croce, Olivier; Thomas, Jean Luc; Laberthonniere, Camille; Renault, Valerie; Lototska, Liudmyla; Pousse, Melanie; Tessier, Florent; Bauwens, Serge; Leong, Waiian; Sacconi, Sabrina; Schaeffer, Laurent; Magdinier, Frederique; Ye, Jing; Gilson, Eric
Abstract
Telomere shortening follows a developmentally regulated process that leads to replicative senescence of dividing cells. However, whether telomere changes are involved in postmitotic cell function and aging remains elusive. In this study, we discovered that the level of the TRF2 protein, a key telomere-capping protein, declines in human skeletal muscle over lifetime. In cultured human myotubes, TRF2 downregulation did not trigger telomere dysfunction, but suppressed expression of the mitochondrial Sirtuin 3 gene (SIRT3) leading to mitochondrial respiration dysfunction and increased levels of reactive oxygen species. Importantly, restoring the Sirt3 level in TRF2-compromised myotubes fully rescued mitochondrial functions. Finally, targeted ablation of the Terf2 gene in mouse skeletal muscle leads to mitochondrial dysfunction and sirt3 downregulation similarly to those of TRF2-compromised human myotubes. Altogether, these results reveal a TRF2-SIRT3 axis controlling muscle mitochondrial function. We propose that this axis connects developmentally regulated telomere changes to muscle redox metabolism.
Preconditioning with partial caloric restriction confers long-term protection against grey and white matter injury after transient focal ischemia
JOURNAL OF CEREBRAL BLOOD FLOW AND METABOLISM
Authors: Zhang, Jia; Zhang, Wenting; Gao, Xuguang; Zhao, Yongfang; Chen, Di; Xu, Na; Pu, Hongjian; Stetler, R. Anne; Gao, Yanqin
Abstract
Caloric restriction (CR) has been extensively examined as a preventative strategy against aging and various diseases, but CR effects on cerebral ischemia are largely unknown. We subjected C57BL6/J mice to ad libitum food access (LF) or a diet restricted to 70% of ad libitum food access (RF) for two to four weeks followed by 60 min of transient focal ischemia (tFCI). RF for four weeks protected against subsequent tFCI-induced infarct. RF improved sensorimotor function after stroke in the foot fault and corner tests, as well as performance in the Morris water maze test. In addition, RF preserved ischemic white matter tract integrity assessed by histology and compound action potential. Sirt1 and Sirt3 were both upregulated in RF ischemic brain, but heterozygous deletion of Sirt1 or knockout of Sirt3 did not alter the protection induced by RF against ischemic injury. RF induced significant release of adiponectin, a hormone related to glucose metabolism. Knockout of adiponectin decreased RF-induced protection after tFCI. These data demonstrate the novel finding that white matter, as well as neurons, benefit from CR prior to cerebral ischemic injury, and that adiponectin may contribute to these protective effects.