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FLCN and AMPK Confer Resistance to Hyperosmotic Stress via Remodeling of Glycogen Stores

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FLCN and AMPK Confer Resistance to Hyperosmotic Stress via Remodeling of Glycogen Stores. / Possik, Elite; Ajisebutu, Andrew; Manteghi, Sanaz et al.
In: PLoS Genetics, Vol. 11, No. 10, e1005520, 01.01.2015.

Research output: Contribution to Journal/MagazineJournal articlepeer-review

Harvard

Possik, E, Ajisebutu, A, Manteghi, S, Gingras, MC, Vijayaraghavan, T, Flamand, M, Coull, B, Schmeisser, K, Duchaine, T, van Steensel, M, Hall, DH & Pause, A 2015, 'FLCN and AMPK Confer Resistance to Hyperosmotic Stress via Remodeling of Glycogen Stores', PLoS Genetics, vol. 11, no. 10, e1005520. https://doi.org/10.1371/journal.pgen.1005520

APA

Possik, E., Ajisebutu, A., Manteghi, S., Gingras, M. C., Vijayaraghavan, T., Flamand, M., Coull, B., Schmeisser, K., Duchaine, T., van Steensel, M., Hall, D. H., & Pause, A. (2015). FLCN and AMPK Confer Resistance to Hyperosmotic Stress via Remodeling of Glycogen Stores. PLoS Genetics, 11(10), Article e1005520. https://doi.org/10.1371/journal.pgen.1005520

Vancouver

Possik E, Ajisebutu A, Manteghi S, Gingras MC, Vijayaraghavan T, Flamand M et al. FLCN and AMPK Confer Resistance to Hyperosmotic Stress via Remodeling of Glycogen Stores. PLoS Genetics. 2015 Jan 1;11(10):e1005520. doi: 10.1371/journal.pgen.1005520

Author

Possik, Elite ; Ajisebutu, Andrew ; Manteghi, Sanaz et al. / FLCN and AMPK Confer Resistance to Hyperosmotic Stress via Remodeling of Glycogen Stores. In: PLoS Genetics. 2015 ; Vol. 11, No. 10.

Bibtex

@article{8804f3f211614f978cb9f17a5f10558c,
title = "FLCN and AMPK Confer Resistance to Hyperosmotic Stress via Remodeling of Glycogen Stores",
abstract = "Mechanisms of adaptation to environmental changes in osmolarity are fundamental for cellular and organismal survival. Here we identify a novel osmotic stress resistance pathway in Caenorhabditis elegans (C. elegans), which is dependent on the metabolic master regulator 5{\textquoteright}-AMP-activated protein kinase (AMPK) and its negative regulator Folliculin (FLCN). FLCN-1 is the nematode ortholog of the tumor suppressor FLCN, responsible for the Birt-Hogg-Dub{\'e} (BHD) tumor syndrome. We show that flcn-1 mutants exhibit increased resistance to hyperosmotic stress via constitutive AMPK-dependent accumulation of glycogen reserves. Upon hyperosmotic stress exposure, glycogen stores are rapidly degraded, leading to a significant accumulation of the organic osmolyte glycerol through transcriptional upregulation of glycerol-3-phosphate dehydrogenase enzymes (gpdh-1 and gpdh-2). Importantly, the hyperosmotic stress resistance in flcn-1 mutant and wild-type animals is strongly suppressed by loss of AMPK, glycogen synthase, glycogen phosphorylase, or simultaneous loss of gpdh-1 and gpdh-2 enzymes. Our studies show for the first time that animals normally exhibit AMPK-dependent glycogen stores, which can be utilized for rapid adaptation to either energy stress or hyperosmotic stress. Importantly, we show that glycogen accumulates in kidneys from mice lacking FLCN and in renal tumors from a BHD patient. Our findings suggest a dual role for glycogen, acting as a reservoir for energy supply and osmolyte production, and both processes might be supporting tumorigenesis.",
author = "Elite Possik and Andrew Ajisebutu and Sanaz Manteghi and Gingras, {Marie Claude} and Tarika Vijayaraghavan and Mathieu Flamand and Barry Coull and Kathrin Schmeisser and Thomas Duchaine and {van Steensel}, Maurice and Hall, {David H.} and Arnim Pause",
year = "2015",
month = jan,
day = "1",
doi = "10.1371/journal.pgen.1005520",
language = "English",
volume = "11",
journal = "PLoS Genetics",
issn = "1553-7390",
publisher = "Public Library of Science",
number = "10",

}

RIS

TY - JOUR

T1 - FLCN and AMPK Confer Resistance to Hyperosmotic Stress via Remodeling of Glycogen Stores

AU - Possik, Elite

AU - Ajisebutu, Andrew

AU - Manteghi, Sanaz

AU - Gingras, Marie Claude

AU - Vijayaraghavan, Tarika

AU - Flamand, Mathieu

AU - Coull, Barry

AU - Schmeisser, Kathrin

AU - Duchaine, Thomas

AU - van Steensel, Maurice

AU - Hall, David H.

AU - Pause, Arnim

PY - 2015/1/1

Y1 - 2015/1/1

N2 - Mechanisms of adaptation to environmental changes in osmolarity are fundamental for cellular and organismal survival. Here we identify a novel osmotic stress resistance pathway in Caenorhabditis elegans (C. elegans), which is dependent on the metabolic master regulator 5’-AMP-activated protein kinase (AMPK) and its negative regulator Folliculin (FLCN). FLCN-1 is the nematode ortholog of the tumor suppressor FLCN, responsible for the Birt-Hogg-Dubé (BHD) tumor syndrome. We show that flcn-1 mutants exhibit increased resistance to hyperosmotic stress via constitutive AMPK-dependent accumulation of glycogen reserves. Upon hyperosmotic stress exposure, glycogen stores are rapidly degraded, leading to a significant accumulation of the organic osmolyte glycerol through transcriptional upregulation of glycerol-3-phosphate dehydrogenase enzymes (gpdh-1 and gpdh-2). Importantly, the hyperosmotic stress resistance in flcn-1 mutant and wild-type animals is strongly suppressed by loss of AMPK, glycogen synthase, glycogen phosphorylase, or simultaneous loss of gpdh-1 and gpdh-2 enzymes. Our studies show for the first time that animals normally exhibit AMPK-dependent glycogen stores, which can be utilized for rapid adaptation to either energy stress or hyperosmotic stress. Importantly, we show that glycogen accumulates in kidneys from mice lacking FLCN and in renal tumors from a BHD patient. Our findings suggest a dual role for glycogen, acting as a reservoir for energy supply and osmolyte production, and both processes might be supporting tumorigenesis.

AB - Mechanisms of adaptation to environmental changes in osmolarity are fundamental for cellular and organismal survival. Here we identify a novel osmotic stress resistance pathway in Caenorhabditis elegans (C. elegans), which is dependent on the metabolic master regulator 5’-AMP-activated protein kinase (AMPK) and its negative regulator Folliculin (FLCN). FLCN-1 is the nematode ortholog of the tumor suppressor FLCN, responsible for the Birt-Hogg-Dubé (BHD) tumor syndrome. We show that flcn-1 mutants exhibit increased resistance to hyperosmotic stress via constitutive AMPK-dependent accumulation of glycogen reserves. Upon hyperosmotic stress exposure, glycogen stores are rapidly degraded, leading to a significant accumulation of the organic osmolyte glycerol through transcriptional upregulation of glycerol-3-phosphate dehydrogenase enzymes (gpdh-1 and gpdh-2). Importantly, the hyperosmotic stress resistance in flcn-1 mutant and wild-type animals is strongly suppressed by loss of AMPK, glycogen synthase, glycogen phosphorylase, or simultaneous loss of gpdh-1 and gpdh-2 enzymes. Our studies show for the first time that animals normally exhibit AMPK-dependent glycogen stores, which can be utilized for rapid adaptation to either energy stress or hyperosmotic stress. Importantly, we show that glycogen accumulates in kidneys from mice lacking FLCN and in renal tumors from a BHD patient. Our findings suggest a dual role for glycogen, acting as a reservoir for energy supply and osmolyte production, and both processes might be supporting tumorigenesis.

U2 - 10.1371/journal.pgen.1005520

DO - 10.1371/journal.pgen.1005520

M3 - Journal article

C2 - 26439621

AN - SCOPUS:84946594857

VL - 11

JO - PLoS Genetics

JF - PLoS Genetics

SN - 1553-7390

IS - 10

M1 - e1005520

ER -