S6K1 Is Indispensible for Stress-Induced Microtubule Acetylation and Autophagic Flux

Autophagy is a specific macromolecule and organelle degradation process. The target macromolecule or organelle is first enclosed in an autophagosome, and then delivered along acetylated microtubules to the lysosome. Autophagy is triggered by stress and largely contributes to cell survival. We have p...

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Main Authors: Aleksandra Hać, Karolina Pierzynowska, Anna Herman-Antosiewicz
Format: Article
Language:English
Published: MDPI AG 2021-04-01
Series:Cells
Subjects:
Online Access:https://www.mdpi.com/2073-4409/10/4/929
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spelling doaj-34128feae74744639b783557097b11c62021-04-17T23:00:44ZengMDPI AGCells2073-44092021-04-011092992910.3390/cells10040929S6K1 Is Indispensible for Stress-Induced Microtubule Acetylation and Autophagic FluxAleksandra Hać0Karolina Pierzynowska1Anna Herman-Antosiewicz2Department of Medical Biology and Genetics, Faculty of Biology, University of Gdańsk, Wita Stwosza 59, 80-308 Gdańsk, PolandDepartment of Molecular Biology, Faculty of Biology, University of Gdańsk, Wita Stwosza 59, 80-308 Gdańsk, PolandDepartment of Medical Biology and Genetics, Faculty of Biology, University of Gdańsk, Wita Stwosza 59, 80-308 Gdańsk, PolandAutophagy is a specific macromolecule and organelle degradation process. The target macromolecule or organelle is first enclosed in an autophagosome, and then delivered along acetylated microtubules to the lysosome. Autophagy is triggered by stress and largely contributes to cell survival. We have previously shown that S6K1 kinase is essential for autophagic flux under stress conditions. Here, we aimed to elucidate the underlying mechanism of S6K1 involvement in autophagy. We stimulated autophagy in S6K1/2 double-knockout mouse embryonic fibroblasts by exposing them to different stress conditions. Transient gene overexpression or silencing, immunoblotting, immunofluorescence, flow cytometry, and ratiometric fluorescence analyses revealed that the perturbation of autophagic flux in S6K1-deficient cells did not stem from impaired lysosomal function. Instead, the absence of S6K1 abolished stress-induced tubulin acetylation and disrupted the acetylated microtubule network, in turn impairing the autophagosome-lysosome fusion. S6K1 overexpression restored tubulin acetylation and autophagic flux in stressed S6K1/2-deficient cells. Similar effect of S6K1 status was observed in prostate cancer cells. Furthermore, overexpression of an acetylation-mimicking, but not acetylation-resistant, tubulin variant effectively restored autophagic flux in stressed S6K1/2-deficient cells. Collectively, S6K1 controls tubulin acetylation, hence contributing to the autophagic flux induced by different stress conditions and in different cells.https://www.mdpi.com/2073-4409/10/4/929S6 kinase 1 (S6K1)tubulin acetylationautophagic fluxautophagosome-lysosome fusionserum deprivationsulforaphane
collection DOAJ
language English
format Article
sources DOAJ
author Aleksandra Hać
Karolina Pierzynowska
Anna Herman-Antosiewicz
spellingShingle Aleksandra Hać
Karolina Pierzynowska
Anna Herman-Antosiewicz
S6K1 Is Indispensible for Stress-Induced Microtubule Acetylation and Autophagic Flux
Cells
S6 kinase 1 (S6K1)
tubulin acetylation
autophagic flux
autophagosome-lysosome fusion
serum deprivation
sulforaphane
author_facet Aleksandra Hać
Karolina Pierzynowska
Anna Herman-Antosiewicz
author_sort Aleksandra Hać
title S6K1 Is Indispensible for Stress-Induced Microtubule Acetylation and Autophagic Flux
title_short S6K1 Is Indispensible for Stress-Induced Microtubule Acetylation and Autophagic Flux
title_full S6K1 Is Indispensible for Stress-Induced Microtubule Acetylation and Autophagic Flux
title_fullStr S6K1 Is Indispensible for Stress-Induced Microtubule Acetylation and Autophagic Flux
title_full_unstemmed S6K1 Is Indispensible for Stress-Induced Microtubule Acetylation and Autophagic Flux
title_sort s6k1 is indispensible for stress-induced microtubule acetylation and autophagic flux
publisher MDPI AG
series Cells
issn 2073-4409
publishDate 2021-04-01
description Autophagy is a specific macromolecule and organelle degradation process. The target macromolecule or organelle is first enclosed in an autophagosome, and then delivered along acetylated microtubules to the lysosome. Autophagy is triggered by stress and largely contributes to cell survival. We have previously shown that S6K1 kinase is essential for autophagic flux under stress conditions. Here, we aimed to elucidate the underlying mechanism of S6K1 involvement in autophagy. We stimulated autophagy in S6K1/2 double-knockout mouse embryonic fibroblasts by exposing them to different stress conditions. Transient gene overexpression or silencing, immunoblotting, immunofluorescence, flow cytometry, and ratiometric fluorescence analyses revealed that the perturbation of autophagic flux in S6K1-deficient cells did not stem from impaired lysosomal function. Instead, the absence of S6K1 abolished stress-induced tubulin acetylation and disrupted the acetylated microtubule network, in turn impairing the autophagosome-lysosome fusion. S6K1 overexpression restored tubulin acetylation and autophagic flux in stressed S6K1/2-deficient cells. Similar effect of S6K1 status was observed in prostate cancer cells. Furthermore, overexpression of an acetylation-mimicking, but not acetylation-resistant, tubulin variant effectively restored autophagic flux in stressed S6K1/2-deficient cells. Collectively, S6K1 controls tubulin acetylation, hence contributing to the autophagic flux induced by different stress conditions and in different cells.
topic S6 kinase 1 (S6K1)
tubulin acetylation
autophagic flux
autophagosome-lysosome fusion
serum deprivation
sulforaphane
url https://www.mdpi.com/2073-4409/10/4/929
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