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RAB3GAP1 and RAB3GAP2 modulate basal and rapamycin-induced autophagy

Macroautophagy is a degradative pathway that sequesters and transports cytosolic cargo in autophagosomes to lysosomes, and its deterioration affects intracellular proteostasis. Membrane dynamics accompanying autophagy are mostly elusive and depend on trafficking processes. RAB GTPase activating prot...

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Autores principales: Spang, Natalie, Feldmann, Anne, Huesmann, Heike, Bekbulat, Fazilet, Schmitt, Verena, Hiebel, Christof, Koziollek-Drechsler, Ingrid, Clement, Albrecht M, Moosmann, Bernd, Jung, Jennifer, Behrends, Christian, Dikic, Ivan, Kern, Andreas, Behl, Christian
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Taylor & Francis 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4502700/
https://www.ncbi.nlm.nih.gov/pubmed/25495476
http://dx.doi.org/10.4161/15548627.2014.994359
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author Spang, Natalie
Feldmann, Anne
Huesmann, Heike
Bekbulat, Fazilet
Schmitt, Verena
Hiebel, Christof
Koziollek-Drechsler, Ingrid
Clement, Albrecht M
Moosmann, Bernd
Jung, Jennifer
Behrends, Christian
Dikic, Ivan
Kern, Andreas
Behl, Christian
author_facet Spang, Natalie
Feldmann, Anne
Huesmann, Heike
Bekbulat, Fazilet
Schmitt, Verena
Hiebel, Christof
Koziollek-Drechsler, Ingrid
Clement, Albrecht M
Moosmann, Bernd
Jung, Jennifer
Behrends, Christian
Dikic, Ivan
Kern, Andreas
Behl, Christian
author_sort Spang, Natalie
collection PubMed
description Macroautophagy is a degradative pathway that sequesters and transports cytosolic cargo in autophagosomes to lysosomes, and its deterioration affects intracellular proteostasis. Membrane dynamics accompanying autophagy are mostly elusive and depend on trafficking processes. RAB GTPase activating proteins (RABGAPs) are important factors for the coordination of cellular vesicle transport systems, and several TBC (TRE2-BUB2-CDC16) domain-containing RABGAPs are associated with autophagy. Employing C. elegans and human primary fibroblasts, we show that RAB3GAP1 and RAB3GAP2, which are components of the TBC domain-free RAB3GAP complex, influence protein aggregation and affect autophagy at basal and rapamycin-induced conditions. Correlating the activity of RAB3GAP1/2 with ATG3 and ATG16L1 and analyzing ATG5 punctate structures, we illustrate that the RAB3GAPs modulate autophagosomal biogenesis. Significant levels of RAB3GAP1/2 colocalize with members of the Atg8 family at lipid droplets, and their autophagy modulatory activity depends on the GTPase-activating activity of RAB3GAP1 but is independent of the RAB GTPase RAB3. Moreover, we analyzed RAB3GAP1/2 in relation to the previously reported suppressive autophagy modulators FEZ1 and FEZ2 and demonstrate that both reciprocally regulate autophagy. In conclusion, we identify RAB3GAP1/2 as novel conserved factors of the autophagy and proteostasis network.
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spelling pubmed-45027002016-01-28 RAB3GAP1 and RAB3GAP2 modulate basal and rapamycin-induced autophagy Spang, Natalie Feldmann, Anne Huesmann, Heike Bekbulat, Fazilet Schmitt, Verena Hiebel, Christof Koziollek-Drechsler, Ingrid Clement, Albrecht M Moosmann, Bernd Jung, Jennifer Behrends, Christian Dikic, Ivan Kern, Andreas Behl, Christian Autophagy Basic Research Papers Macroautophagy is a degradative pathway that sequesters and transports cytosolic cargo in autophagosomes to lysosomes, and its deterioration affects intracellular proteostasis. Membrane dynamics accompanying autophagy are mostly elusive and depend on trafficking processes. RAB GTPase activating proteins (RABGAPs) are important factors for the coordination of cellular vesicle transport systems, and several TBC (TRE2-BUB2-CDC16) domain-containing RABGAPs are associated with autophagy. Employing C. elegans and human primary fibroblasts, we show that RAB3GAP1 and RAB3GAP2, which are components of the TBC domain-free RAB3GAP complex, influence protein aggregation and affect autophagy at basal and rapamycin-induced conditions. Correlating the activity of RAB3GAP1/2 with ATG3 and ATG16L1 and analyzing ATG5 punctate structures, we illustrate that the RAB3GAPs modulate autophagosomal biogenesis. Significant levels of RAB3GAP1/2 colocalize with members of the Atg8 family at lipid droplets, and their autophagy modulatory activity depends on the GTPase-activating activity of RAB3GAP1 but is independent of the RAB GTPase RAB3. Moreover, we analyzed RAB3GAP1/2 in relation to the previously reported suppressive autophagy modulators FEZ1 and FEZ2 and demonstrate that both reciprocally regulate autophagy. In conclusion, we identify RAB3GAP1/2 as novel conserved factors of the autophagy and proteostasis network. Taylor & Francis 2015-01-28 /pmc/articles/PMC4502700/ /pubmed/25495476 http://dx.doi.org/10.4161/15548627.2014.994359 Text en © 2014 The Author(s). Published with license by Taylor & Francis http://creativecommons.org/licenses/by-nc/3.0/ This is an Open Access article distributed under the terms of the Creative Commons Attribution-Non-Commercial License (http://creativecommons.org/licenses/by-nc/3.0/), which permits unrestricted non-commercial use, distribution, and reproduction in any medium, provided the original work is properly cited. The moral rights of the named author(s) have been asserted.
spellingShingle Basic Research Papers
Spang, Natalie
Feldmann, Anne
Huesmann, Heike
Bekbulat, Fazilet
Schmitt, Verena
Hiebel, Christof
Koziollek-Drechsler, Ingrid
Clement, Albrecht M
Moosmann, Bernd
Jung, Jennifer
Behrends, Christian
Dikic, Ivan
Kern, Andreas
Behl, Christian
RAB3GAP1 and RAB3GAP2 modulate basal and rapamycin-induced autophagy
title RAB3GAP1 and RAB3GAP2 modulate basal and rapamycin-induced autophagy
title_full RAB3GAP1 and RAB3GAP2 modulate basal and rapamycin-induced autophagy
title_fullStr RAB3GAP1 and RAB3GAP2 modulate basal and rapamycin-induced autophagy
title_full_unstemmed RAB3GAP1 and RAB3GAP2 modulate basal and rapamycin-induced autophagy
title_short RAB3GAP1 and RAB3GAP2 modulate basal and rapamycin-induced autophagy
title_sort rab3gap1 and rab3gap2 modulate basal and rapamycin-induced autophagy
topic Basic Research Papers
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4502700/
https://www.ncbi.nlm.nih.gov/pubmed/25495476
http://dx.doi.org/10.4161/15548627.2014.994359
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