Obesity is a health problem that is reaching epidemic proportions in the United States and has become a major and growing factor contributing to an increased prevalence of Type II diabetes and an increased risk of premature death from cardiovascular disease. Despite the need for therapeutic options to control obesity, little is known about the intracellular mechanisms that regulate fat storage and release in adipose tissue. Fatty acids, the body's major energy currency, are stored as triacylglycerols in large intracellular lipid droplets in adipocytes. The perilipins are the most abundant proteins on the surfaces of lipid droplets in adipocytes and are also found in steroidogenic cells. The proposed studies test the hypotheses that 1) perilipins facilitate triacylglycerol storage by forming a protective barrier against cytosolic lipases, and 2) phosphorylation of perilipins facilitates lipolysis in lipolytically stimulated adipocytes by attenuating the barrier to facilitate lipase access to stored triacylglycerols.
The Specific Aims of the proposed research are to 1) define the structural domains of perilipin A required for its targeting to and embedding into lipid droplets, 2) to study how perilipin A protects stored triacylglycerols from hormone-sensitive lipase, and 3) to elucidate the role of the phosphorylation of perilipin A in the promotion of lipolysis.
These aims will be tested by the expression of intact and mutant perilipin A in cultured cells that lack perilipins followed by assays for lipid storage and release, and the presence of the mutant perilipins on lipid droplets.

Agency
National Institute of Health (NIH)
Institute
National Institute of Diabetes and Digestive and Kidney Diseases (NIDDK)
Type
Research Project (R01)
Project #
5R01DK054797-04
Application #
6603562
Study Section
Metabolism Study Section (MET)
Program Officer
Haft, Carol R
Project Start
2000-08-15
Project End
2005-03-31
Budget Start
2003-08-01
Budget End
2005-03-31
Support Year
4
Fiscal Year
2003
Total Cost
$244,770
Indirect Cost
Name
Rutgers University
Department
Nutrition
Type
Schools of Earth Sciences/Natur
DUNS #
001912864
City
New Brunswick
State
NJ
Country
United States
Zip Code
08901
Sztalryd, Carole; Brasaemle, Dawn L (2017) The perilipin family of lipid droplet proteins: Gatekeepers of intracellular lipolysis. Biochim Biophys Acta Mol Cell Biol Lipids 1862:1221-1232
Brasaemle, Dawn L; Wolins, Nathan E (2016) Isolation of Lipid Droplets from Cells by Density Gradient Centrifugation. Curr Protoc Cell Biol 72:3.15.1-3.15.13
Sahu-Osen, Anita; Montero-Moran, Gabriela; Schittmayer, Matthias et al. (2015) CGI-58/ABHD5 is phosphorylated on Ser239 by protein kinase A: control of subcellular localization. J Lipid Res 56:109-21
McMahon, Derek; Dinh, Anna; Kurz, Daniel et al. (2014) Comparative gene identification 58/?/? hydrolase domain 5 lacks lysophosphatidic acid acyltransferase activity. J Lipid Res 55:1750-61
Brasaemle, Dawn L; Wolins, Nathan E (2012) Packaging of fat: an evolving model of lipid droplet assembly and expansion. J Biol Chem 287:2273-9
Brasaemle, Dawn L (2011) DisseCCTing phospholipid function in lipid droplet dynamics. Cell Metab 14:437-8
Wang, Hong; Bell, Ming; Sreenivasan, Urmila et al. (2011) Unique regulation of adipose triglyceride lipase (ATGL) by perilipin 5, a lipid droplet-associated protein. J Biol Chem 286:15707-15
Caviglia, Jorge M; Betters, Jenna L; Dapito, Dianne-Helerie et al. (2011) Adipose-selective overexpression of ABHD5/CGI-58 does not increase lipolysis or protect against diet-induced obesity. J Lipid Res 52:2032-42
Montero-Moran, Gabriela; Caviglia, Jorge M; McMahon, Derek et al. (2010) CGI-58/ABHD5 is a coenzyme A-dependent lysophosphatidic acid acyltransferase. J Lipid Res 51:709-19
Kimmel, Alan R; Brasaemle, Dawn L; McAndrews-Hill, Monica et al. (2010) Adoption of PERILIPIN as a unifying nomenclature for the mammalian PAT-family of intracellular lipid storage droplet proteins. J Lipid Res 51:468-71

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