Literature DB >> 11916915

Expression profiling of palmitate- and oleate-regulated genes provides novel insights into the effects of chronic lipid exposure on pancreatic beta-cell function.

Anna K Busch1, Damien Cordery, Gareth S Denyer, Trevor J Biden.   

Abstract

Chronic lipid exposure is implicated in beta-cell dysfunction in type 2 diabetes. We therefore used oligonucleotide arrays to define global alterations in gene expression in MIN6 cells after 48-h pretreatment with oleate or palmitate. Altogether, 126 genes were altered > or =1.9-fold by palmitate, 62 by oleate, and 46 by both lipids. Importantly, nine of the palmitate-regulated genes are known to be correspondingly changed in models of type 2 diabetes. A tendency toward beta-cell de-differentiation was also apparent with palmitate: pyruvate carboxylase and mitochondrial glycerol 3-phosphate dehydrogenase were downregulated, whereas lactate dehydrogenase and fructose 1,6-bisphosphatases were induced. Increases in the latter (also seen with oleate), along with glucosamine-phosphate N-acetyl transferase, imply upregulation of the hexosamine biosynthesis pathway in palmitate-treated cells. However, palmitate also increased expression of calcyclin and 25-kDa synaptosomal-associated protein (SNAP25), which control distal secretory processes. Consistent with these findings, secretory responses to noncarbohydrate stimuli, especially palmitate itself, were upregulated in palmitate-treated cells (much less so with oleate). Indeed, glucose-stimulated secretion was slightly sensitized by chronic palmitate exposure but inhibited by oleate treatment, whereas both lipids enhanced basal secretion. Oleate and palmitate also induced expression of chemokines (MCP-1 and GRO1 oncogene) and genes of the acute phase response (serum amyloid A3). Increases in transcriptional modulators such as ATF3, CCAAT/enhancer binding protein-beta (C/EBPbeta), C/EBPdelta, and c-fos were also seen. The results highlight links between regulated gene expression and phenotypic alterations in palmitate versus oleate-pretreated beta-cells.

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Year:  2002        PMID: 11916915     DOI: 10.2337/diabetes.51.4.977

Source DB:  PubMed          Journal:  Diabetes        ISSN: 0012-1797            Impact factor:   9.461


  51 in total

1.  Oleate disrupts cAMP signaling, contributing to potent stimulation of pancreatic β-cell autophagy.

Authors:  Kwan Yi Chu; Liam O'Reilly; Natalie Mellet; Peter J Meikle; Clarissa Bartley; Trevor J Biden
Journal:  J Biol Chem       Date:  2018-12-05       Impact factor: 5.157

2.  Genome-wide identification of palmitate-regulated immediate early genes and target genes in pancreatic beta-cells reveals a central role of NF-κB.

Authors:  Hyung Jin Choi; Seungwoo Hwang; Se-Hee Lee; You Ri Lee; Jiyon Shin; Kyong Soo Park; Young Min Cho
Journal:  Mol Biol Rep       Date:  2012-06       Impact factor: 2.316

3.  The nuclear orphan receptor Nur77 is a lipotoxicity sensor regulating glucose-induced insulin secretion in pancreatic β-cells.

Authors:  Olivier Briand; Audrey Helleboid-Chapman; Maheul Ploton; Nathalie Hennuyer; Rodolphe Carpentier; François Pattou; Brigitte Vandewalle; Ericka Moerman; Valery Gmyr; Julie Kerr-Conte; Jérôme Eeckhoute; Bart Staels; Philippe Lefebvre
Journal:  Mol Endocrinol       Date:  2012-02-02

Review 4.  Glucolipotoxicity: fuel excess and beta-cell dysfunction.

Authors:  Vincent Poitout; R Paul Robertson
Journal:  Endocr Rev       Date:  2007-11-29       Impact factor: 19.871

Review 5.  The role of FOXO1 in β-cell failure and type 2 diabetes mellitus.

Authors:  Tadahiro Kitamura
Journal:  Nat Rev Endocrinol       Date:  2013-08-20       Impact factor: 43.330

6.  Differentially expressed genes of human microvascular endothelial cells in response to anti-dengue virus NS1 antibodies by suppression subtractive hybridization.

Authors:  Yue Yin; Lan Jiang; Danyun Fang; Lifang Jiang; Junmei Zhou
Journal:  Viral Immunol       Date:  2013-05-22       Impact factor: 2.257

7.  Contrasting patterns of expression of transcription factors in pancreatic alpha and beta cells.

Authors:  Jie Wang; Gene Webb; Yun Cao; Donald F Steiner
Journal:  Proc Natl Acad Sci U S A       Date:  2003-10-13       Impact factor: 11.205

8.  Role for activating transcription factor 3 in stress-induced beta-cell apoptosis.

Authors:  Matthew G Hartman; Dan Lu; Mi-Lyang Kim; Gary J Kociba; Tala Shukri; Jean Buteau; Xiaozhong Wang; Wendy L Frankel; Denis Guttridge; Marc Prentki; Shane T Grey; David Ron; Tsonwin Hai
Journal:  Mol Cell Biol       Date:  2004-07       Impact factor: 4.272

Review 9.  A hypothetical model to solve the controversy over the involvement of UCP2 in palmitate-induced β-cell dysfunction.

Authors:  Alaa Shaheen; Ahmad M A Aljebali
Journal:  Endocrine       Date:  2016-08-04       Impact factor: 3.633

10.  Coordinate changes in histone modifications, mRNA levels, and metabolite profiles in clonal INS-1 832/13 β-cells accompany functional adaptations to lipotoxicity.

Authors:  Siri Malmgren; Peter Spégel; Anders P H Danielsson; Cecilia L Nagorny; Lotta E Andersson; Marloes Dekker Nitert; Martin Ridderstråle; Hindrik Mulder; Charlotte Ling
Journal:  J Biol Chem       Date:  2013-03-08       Impact factor: 5.157

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