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Published on: June 28, 2019
Growth differentiation factor 11 accelerates liver senescence through the inhibition of autophagy
Jian Sun1,2, Ying Li3, Xiao Yang3
1Department of Biliopancreatic Surgery, Sun Yat-sen Memorial Hospital,Sun Yat-sen University, Guangzhou, Guangdong, China.
Abstract:
The "rejuvenating" effect of growth differentiation factor 11 (GDF11) is called into question recently, and its role, as well as plausible signaling mechanisms in liver senescence, is unclear. To overexpress or knockdown GDF11, aged male mice are injected with a single dose of adeno-associated viruses-GDF11 or adenovirus-small hairpin RNA-GDF11, respectively. GDF11 overexpression significantly accelerates liver senescence in aged mice, whereas GDF11 knockdown has opposite effects. Concomitantly, autophagic flux is impaired in livers from GDF11 overexpression mice. Conversely, GDF11 knockdown increases autophagic flux. Moreover, rapamycin successfully restores the impaired autophagic flux and alleviates liver senescence in GDF11 overexpression mice, while the GDF11 knockdown-mediated benefits are abolished by the autophagy inhibitor bafilomycin A1. GDF11 leads to a drop in lysosomal biogenesis resulting in defective autophagic flux at autophagosome clearance step. Mechanistically, GDF11 significantly activates mammalian target of rapamycin complex 1 (mTORC1) and subsequently represses transcription factor EB (TFEB), a master regulator of lysosomal biogenesis and autophagy. Inhibition of mTORC1 or TFEB overexpression rescues the GDF11-impaired autophagic flux and cellular senescence. Hepatocyte-specific deletion of GDF11 does not alter serum GDF11 levels and liver senescence. Collectively, suppression of autophagic activity via mTORC1/TFEB signaling may be a critical molecular mechanism by which GDF11 exacerbates liver senescence. Rather than a "rejuvenating" agent, GDF11 may have a detrimental effect on liver senescence.
Insights
Growth Differentiation Factor 11 (GDF11) accelerates liver senescence by impairing autophagic flux via mTORC1/TFEB signaling. This finding challenges GDF11's purported rejuvenating effects, suggesting it may worsen liver aging.
Area of Science:
- Gerontology
- Molecular Biology
- Cellular Biology
Background:
- The role of Growth Differentiation Factor 11 (GDF11) in aging, particularly liver senescence, remains controversial.
- Previous studies suggested GDF11 has rejuvenating properties, but its precise mechanisms in liver aging are unclear.
Purpose of the Study:
- To investigate the effect of GDF11 on liver senescence in aged mice.
- To elucidate the underlying molecular mechanisms, focusing on autophagic flux and related signaling pathways.
Main Methods:
- Overexpression and knockdown of GDF11 in aged male mice using viral vectors.
- Assessment of liver senescence markers, autophagic flux, and key signaling molecules (mTORC1, TFEB).
- Pharmacological manipulation of autophagy using rapamycin and bafilomycin A1.
Main Results:
- GDF11 overexpression accelerated liver senescence and impaired autophagic flux.
- GDF11 knockdown showed opposite effects, improving autophagic flux and alleviating senescence.
- GDF11 activated mTORC1, repressed TFEB, reduced lysosomal biogenesis, and inhibited autophagosome clearance.
- mTORC1 inhibition or TFEB overexpression rescued GDF11-induced senescence and autophagic defects.
Conclusions:
- GDF11 exacerbates liver senescence by suppressing autophagic activity through the mTORC1/TFEB signaling pathway.
- GDF11 may have detrimental effects on liver aging, contrary to its proposed rejuvenating role.
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