4.8 Article

Podocytes maintain high basal levels of autophagy independent of mtor signaling

期刊

AUTOPHAGY
卷 16, 期 11, 页码 1932-1948

出版社

TAYLOR & FRANCIS INC
DOI: 10.1080/15548627.2019.1705007

关键词

AMPK; autophagy; glomerulus; kidney; LC3; MTOR; podocyte; Raptor; rapamycin; signaling; Tsc1

资金

  1. German Research Foundation [CRC1140, CRC1192, CRC992, TH 1358/3-1]
  2. European Foundation for the Study of Diabetes (EFSD)
  3. German Research Foundation Heisenberg Program [HU1016/8-2, HU1016/5-1]
  4. EC | European Research Council (ERC)
  5. H2020-IMI2 BEAt-DKD [115974]
  6. BMBF-STOP-FSGS [01GM1518C]
  7. Excellence Initiative of the German Federal Government BIOSS, FRIAS Freiburg Institute of Advanced Studies
  8. Excellence Initiative of the German State Government BIOSS, FRIAS Freiburg Institute of Advanced Studies
  9. Alexander von Humboldt Foundation
  10. National Natural Science Foundation of China (NSFC) [81470912]
  11. Berta Ottenstein Program
  12. Else Kroener Fresenius Foundation NAKSYS
  13. BMBF GlioPATH [01ZX1402B]
  14. BMBF MAPTor-NET [031A426B]
  15. MESI-STRAT [754688]
  16. Uehara Memorial Foundation
  17. German TS Foundation
  18. Stichting TSC Fonds
  19. PoLiMeR Innovative Training Network (Marie Sklodowska Curie grant) [812616]
  20. Rosalind-Franklin-Fellowship of the Universitiy of Groningen
  21. Marie Curie Actions (MSCA) [812616] Funding Source: Marie Curie Actions (MSCA)

向作者/读者索取更多资源

While constant basal levels of macroautophagy/autophagy are a prerequisite to preserve long-lived podocytes at the filtration barrier, MTOR regulates at the same time podocyte size and compensatory hypertrophy. Since MTOR is known to generally suppress autophagy, the apparently independent regulation of these two key pathways of glomerular maintenance remained puzzling. We now report that long-term genetic manipulation of MTOR activity does in fact not influence high basal levels of autophagy in podocytes either in vitro or in vivo. Instead we present data showing that autophagy in podocytes is mainly controlled by AMP-activated protein kinase (AMPK) and ULK1 (unc-51 like kinase 1). Pharmacological inhibition of MTOR further shows that the uncoupling of MTOR activity and autophagy is time dependent. Together, our data reveal a novel and unexpected cell-specific mechanism, which permits concurrent MTOR activity as well as high basal autophagy rates in podocytes. Thus, these data indicate manipulation of the AMPK-ULK1 axis rather than inhibition of MTOR as a promising therapeutic intervention to enhance autophagy and preserve podocyte homeostasis in glomerular diseases.

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