Carboxy terminal tail of polycystin-1 regulates localization of TSC2 to repress mTOR.

Autosomal dominant polycystic kidney disease (ADPKD) is a commonly inherited renal disorder caused by defects in the PKD1 or PKD2 genes. ADPKD is associated with significant morbidity, and is a major underlying cause of end-stage renal failure (ESRF). Commonly, treatment options are limited to the m...

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Main Authors: Ruhee Dere, Patricia D Wilson, Richard N Sandford, Cheryl Lyn Walker
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2010-02-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC2821926?pdf=render
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spelling doaj-166a60b9ebd04140b0c9b51f9ef9b9092020-11-24T22:03:22ZengPublic Library of Science (PLoS)PLoS ONE1932-62032010-02-0152e923910.1371/journal.pone.0009239Carboxy terminal tail of polycystin-1 regulates localization of TSC2 to repress mTOR.Ruhee DerePatricia D WilsonRichard N SandfordCheryl Lyn WalkerAutosomal dominant polycystic kidney disease (ADPKD) is a commonly inherited renal disorder caused by defects in the PKD1 or PKD2 genes. ADPKD is associated with significant morbidity, and is a major underlying cause of end-stage renal failure (ESRF). Commonly, treatment options are limited to the management of hypertension, cardiovascular risk factors, dialysis, and transplantation when ESRF develops, although several new pharmacotherapies, including rapamycin, have shown early promise in animal and human studies. Evidence implicates polycystin-1 (PC-1), the gene product of the PKD1 gene, in regulation of the mTOR pathway. Here we demonstrate a mechanism by which the intracellular, carboxy-terminal tail of polycystin-1 (CP1) regulates mTOR signaling by altering the subcellular localization of the tuberous sclerosis complex 2 (TSC2) tumor suppressor, a gatekeeper for mTOR activity. Phosphorylation of TSC2 at S939 by AKT causes partitioning of TSC2 away from the membrane, its GAP target Rheb, and its activating partner TSC1 to the cytosol via 14-3-3 protein binding. We found that TSC2 and a C-terminal polycystin-1 peptide (CP1) directly interact and that a membrane-tethered CP1 protects TSC2 from AKT phosphorylation at S939, retaining TSC2 at the membrane to inhibit the mTOR pathway. CP1 decreased binding of 14-3-3 proteins to TSC2 and increased the interaction between TSC2 and its activating partner TSC1. Interestingly, while membrane tethering of CP1 was required to activate TSC2 and repress mTOR, the ability of CP1 to inhibit mTOR signaling did not require primary cilia and was independent of AMPK activation. These data identify a unique mechanism for modulation of TSC2 repression of mTOR signaling via membrane retention of this tumor suppressor, and identify PC-1 as a regulator of this downstream component of the PI3K signaling cascade.http://europepmc.org/articles/PMC2821926?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Ruhee Dere
Patricia D Wilson
Richard N Sandford
Cheryl Lyn Walker
spellingShingle Ruhee Dere
Patricia D Wilson
Richard N Sandford
Cheryl Lyn Walker
Carboxy terminal tail of polycystin-1 regulates localization of TSC2 to repress mTOR.
PLoS ONE
author_facet Ruhee Dere
Patricia D Wilson
Richard N Sandford
Cheryl Lyn Walker
author_sort Ruhee Dere
title Carboxy terminal tail of polycystin-1 regulates localization of TSC2 to repress mTOR.
title_short Carboxy terminal tail of polycystin-1 regulates localization of TSC2 to repress mTOR.
title_full Carboxy terminal tail of polycystin-1 regulates localization of TSC2 to repress mTOR.
title_fullStr Carboxy terminal tail of polycystin-1 regulates localization of TSC2 to repress mTOR.
title_full_unstemmed Carboxy terminal tail of polycystin-1 regulates localization of TSC2 to repress mTOR.
title_sort carboxy terminal tail of polycystin-1 regulates localization of tsc2 to repress mtor.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2010-02-01
description Autosomal dominant polycystic kidney disease (ADPKD) is a commonly inherited renal disorder caused by defects in the PKD1 or PKD2 genes. ADPKD is associated with significant morbidity, and is a major underlying cause of end-stage renal failure (ESRF). Commonly, treatment options are limited to the management of hypertension, cardiovascular risk factors, dialysis, and transplantation when ESRF develops, although several new pharmacotherapies, including rapamycin, have shown early promise in animal and human studies. Evidence implicates polycystin-1 (PC-1), the gene product of the PKD1 gene, in regulation of the mTOR pathway. Here we demonstrate a mechanism by which the intracellular, carboxy-terminal tail of polycystin-1 (CP1) regulates mTOR signaling by altering the subcellular localization of the tuberous sclerosis complex 2 (TSC2) tumor suppressor, a gatekeeper for mTOR activity. Phosphorylation of TSC2 at S939 by AKT causes partitioning of TSC2 away from the membrane, its GAP target Rheb, and its activating partner TSC1 to the cytosol via 14-3-3 protein binding. We found that TSC2 and a C-terminal polycystin-1 peptide (CP1) directly interact and that a membrane-tethered CP1 protects TSC2 from AKT phosphorylation at S939, retaining TSC2 at the membrane to inhibit the mTOR pathway. CP1 decreased binding of 14-3-3 proteins to TSC2 and increased the interaction between TSC2 and its activating partner TSC1. Interestingly, while membrane tethering of CP1 was required to activate TSC2 and repress mTOR, the ability of CP1 to inhibit mTOR signaling did not require primary cilia and was independent of AMPK activation. These data identify a unique mechanism for modulation of TSC2 repression of mTOR signaling via membrane retention of this tumor suppressor, and identify PC-1 as a regulator of this downstream component of the PI3K signaling cascade.
url http://europepmc.org/articles/PMC2821926?pdf=render
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