Literature DB >> 32043636

REDD1 deficiency protects against nonalcoholic hepatic steatosis induced by high-fat diet.

Karine Dumas1, Chaima Ayachi1, Jerome Gilleron1, Sandra Lacas-Gervais2, Faustine Pastor1, François B Favier3, Pascal Peraldi4, Nathalie Vaillant5, Laurent Yvan-Charvet5, Stéphanie Bonnafous6,7, Stéphanie Patouraux6,7, Rodolphe Anty6,7, Albert Tran6,7, Philippe Gual6, Mireille Cormont1, Jean-François Tanti1, Sophie Giorgetti-Peraldi1.   

Abstract

Nonalcoholic fatty liver disease is a chronic liver disease which is associated with obesity and insulin resistance. We investigated the implication of REDD1 (Regulated in development and DNA damage response-1), a stress-induced protein in the development of hepatic steatosis. REDD1 expression was increased in the liver of obese mice and morbidly obese patients, and its expression correlated with hepatic steatosis and insulin resistance in obese patients. REDD1 deficiency protected mice from the development of hepatic steatosis induced by high-fat diet (HFD) without affecting body weight gain and glucose intolerance. This protection was associated with a decrease in the expression of lipogenic genes, SREBP1c, FASN, and SCD-1 in liver of HFD-fed REDD1-KO mice. Healthy mitochondria are crucial for the adequate control of lipid metabolism and failure to remove damaged mitochondria is correlated with liver steatosis. Expression of markers of autophagy and mitophagy, Beclin, LC3-II, Parkin, BNIP3L, was enhanced in liver of HFD-fed REDD1-KO mice. The number of mitochondria showing colocalization between LAMP2 and AIF was increased in liver of HFD-fed REDD1-KO mice. Moreover, mitochondria in liver of REDD1-KO mice were smaller than in WT. These results are correlated with an increase in PGC-1α and CPT-1 expression, involved in fatty acid oxidation. In conclusion, loss of REDD1 protects mice from the development of hepatic steatosis.
© 2020 Federation of American Societies for Experimental Biology.

Entities:  

Keywords:  REDD1; autophagy; hepatic steatosis; obesity

Year:  2020        PMID: 32043636     DOI: 10.1096/fj.201901799RR

Source DB:  PubMed          Journal:  FASEB J        ISSN: 0892-6638            Impact factor:   5.191


  6 in total

1.  REDD1 promotes obesity-induced metabolic dysfunction via atypical NF-κB activation.

Authors:  Dong-Keon Lee; Taesam Kim; Junyoung Byeon; Minsik Park; Suji Kim; Joohwan Kim; Seunghwan Choi; Gihwan Lee; Chanin Park; Keun Woo Lee; Yong Jung Kwon; Jeong-Hyung Lee; Young-Guen Kwon; Young-Myeong Kim
Journal:  Nat Commun       Date:  2022-10-22       Impact factor: 17.694

2.  Intermittent Hypoxia Mediates Caveolae Disassembly That Parallels Insulin Resistance Development.

Authors:  Maider Varela-Guruceaga; Elise Belaidi; Lucie Lebeau; Ella Aka; Ramaroson Andriantsitohaina; Sophie Giorgetti-Peraldi; Claire Arnaud; Soazig Le Lay
Journal:  Front Physiol       Date:  2020-11-26       Impact factor: 4.566

3.  Transcription Coactivator BCL3 Acts as a Potential Regulator of Lipid Metabolism Through the Effects on Inflammation.

Authors:  Shuo Zhang; Jingtao Gao; Shibo Liu; Lu Yu; Wen Zhang; Yinming Liang; Hui Wang
Journal:  J Inflamm Res       Date:  2021-09-23

4.  P2Y2R Deficiency Ameliorates Hepatic Steatosis by Reducing Lipogenesis and Enhancing Fatty Acid β-Oxidation through AMPK and PGC-1α Induction in High-Fat Diet-Fed Mice.

Authors:  Theodomir Dusabimana; Eun Jung Park; Jihyun Je; Kyuho Jeong; Seung Pil Yun; Hye Jung Kim; Hwajin Kim; Sang Won Park
Journal:  Int J Mol Sci       Date:  2021-05-24       Impact factor: 5.923

Review 5.  Mitophagy in the Pathogenesis of Liver Diseases.

Authors:  Po-Yuan Ke
Journal:  Cells       Date:  2020-03-30       Impact factor: 6.600

6.  DDIT4 S-Nitrosylation Aids p38-MAPK Signaling Complex Assembly to Promote Hepatic Reactive Oxygen Species Production.

Authors:  Zilong Li; Qianwen Zhao; Yunjie Lu; Yangxi Zhang; Luyang Li; Min Li; Xuemin Chen; Donglin Sun; Yunfei Duan; Yong Xu
Journal:  Adv Sci (Weinh)       Date:  2021-07-26       Impact factor: 16.806

  6 in total

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