Literature DB >> 23353597

Overexpression of PLIN5 in skeletal muscle promotes oxidative gene expression and intramyocellular lipid content without compromising insulin sensitivity.

M Bosma1, L M Sparks, G J Hooiveld, J A Jorgensen, S M Houten, P Schrauwen, S Kersten, M K C Hesselink.   

Abstract

AIMS/HYPOTHESIS: While lipid deposition in the skeletal muscle is considered to be involved in obesity-associated insulin resistance, neutral intramyocellular lipid (IMCL) accumulation per se does not necessarily induce insulin resistance. We previously demonstrated that overexpression of the lipid droplet coat protein perilipin 2 augments intramyocellular lipid content while improving insulin sensitivity. Another member of the perilipin family, perilipin 5 (PLIN5), is predominantly expressed in oxidative tissues like the skeletal muscle. Here we investigated the effects of PLIN5 overexpression - in comparison with the effects of PLIN2 - on skeletal muscle lipid levels, gene expression profiles and insulin sensitivity.
METHODS: Gene electroporation was used to overexpress PLIN5 in tibialis anterior muscle of rats fed a high fat diet. Eight days after electroporation, insulin-mediated glucose uptake in the skeletal muscle was measured by means of a hyperinsulinemic euglycemic clamp. Electron microscopy, fluorescence microscopy and lipid extractions were performed to investigate IMCL accumulation. Gene expression profiles were obtained using microarrays.
RESULTS: TAG storage and lipid droplet size increased upon PLIN5 overexpression. Despite the higher IMCL content, insulin sensitivity was not impaired and DAG and acylcarnitine levels were unaffected. In contrast to the effects of PLIN2 overexpression, microarray data analysis revealed a gene expression profile favoring FA oxidation and improved mitochondrial function. CONCLUSIONS/
INTERPRETATION: Both PLIN2 and PLIN5 increase neutral IMCL content without impeding insulin-mediated glucose uptake. As opposed to the effects of PLIN2 overexpression, overexpression of PLIN5 in the skeletal muscle promoted expression of a cluster of genes under control of PPARα and PGC1α involved in FA catabolism and mitochondrial oxidation.
Copyright © 2013 Elsevier B.V. All rights reserved.

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Year:  2013        PMID: 23353597     DOI: 10.1016/j.bbalip.2013.01.007

Source DB:  PubMed          Journal:  Biochim Biophys Acta        ISSN: 0006-3002


  52 in total

1.  Perilipin 3 Differentially Regulates Skeletal Muscle Lipid Oxidation in Active, Sedentary, and Type 2 Diabetic Males.

Authors:  Jeffrey D Covington; Robert C Noland; R Caitlin Hebert; Blaine S Masinter; Steven R Smith; Arild C Rustan; Eric Ravussin; Sudip Bajpeyi
Journal:  J Clin Endocrinol Metab       Date:  2015-07-14       Impact factor: 5.958

2.  Lipid droplet remodelling and reduced muscle ceramides following sprint interval and moderate-intensity continuous exercise training in obese males.

Authors:  S O Shepherd; M Cocks; P J Meikle; N A Mellett; A M Ranasinghe; T A Barker; A J M Wagenmakers; C S Shaw
Journal:  Int J Obes (Lond)       Date:  2017-07-24       Impact factor: 5.095

3.  Liver Perilipin 5 Expression Worsens Hepatosteatosis But Not Insulin Resistance in High Fat-Fed Mice.

Authors:  Michelle B Trevino; David Mazur-Hart; Yui Machida; Timothy King; Joseph Nadler; Elena V Galkina; Arjun Poddar; Sucharita Dutta; Yumi Imai
Journal:  Mol Endocrinol       Date:  2015-08-21

Review 4.  The perilipin family of lipid droplet proteins: Gatekeepers of intracellular lipolysis.

Authors:  Carole Sztalryd; Dawn L Brasaemle
Journal:  Biochim Biophys Acta Mol Cell Biol Lipids       Date:  2017-07-25       Impact factor: 4.698

5.  The athlete's paradOXpat.

Authors:  Nathan E Wolins; Bettina Mittendorfer
Journal:  J Physiol       Date:  2018-01-30       Impact factor: 5.182

Review 6.  The biology of lipid droplet-bound mitochondria.

Authors:  Michaela Veliova; Anton Petcherski; Marc Liesa; Orian S Shirihai
Journal:  Semin Cell Dev Biol       Date:  2020-05-20       Impact factor: 7.727

7.  Novel metabolic disorders in skeletal muscle of Lipodystrophic Bscl2/Seipin deficient mice.

Authors:  Wenqiong Xu; Hongyi Zhou; Hongzhuan Xuan; Pradip Saha; Gongxian Wang; Weiqin Chen
Journal:  Mol Cell Endocrinol       Date:  2018-12-04       Impact factor: 4.102

8.  Use of fluorescence microscopy to probe intracellular lipolysis.

Authors:  Emilio P Mottillo; George M Paul; Hsiao-Ping H Moore; James G Granneman
Journal:  Methods Enzymol       Date:  2014       Impact factor: 1.600

9.  Training alters the distribution of perilipin proteins in muscle following acute free fatty acid exposure.

Authors:  S O Shepherd; J A Strauss; Q Wang; J J Dube; B Goodpaster; D G Mashek; L S Chow
Journal:  J Physiol       Date:  2017-06-27       Impact factor: 5.182

10.  Dissociation of intramyocellular lipid storage and insulin resistance in trained athletes and type 2 diabetes patients; involvement of perilipin 5?

Authors:  Anne Gemmink; Sabine Daemen; Bram Brouwers; Peter R Huntjens; Gert Schaart; Esther Moonen-Kornips; Johanna Jörgensen; Joris Hoeks; Patrick Schrauwen; Matthijs K C Hesselink
Journal:  J Physiol       Date:  2017-11-23       Impact factor: 5.182

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