Literature DB >> 28396286

Altered mitochondrial and peroxisomal integrity in lipocalin-2-deficient mice with hepatic steatosis.

Anastasia Asimakopoulou1, Annabelle Fülöp2, Erawan Borkham-Kamphorst1, Eddy Van de Leur1, Nikolaus Gassler3, Thorsten Berger4, Birte Beine5, Helmut E Meyer6, Tak W Mak7, Carsten Hopf2, Corinna Henkel8, Ralf Weiskirchen9.   

Abstract

Lipocalin-2 (LCN2) is a secreted adipokine that transports small hydrophobic molecules such as fatty acids and steroids. LCN2 limits bacterial growth by sequestering iron-containing siderophores and in mammalian liver protects against inflammation, infection, injury and other stressors. Because LCN2 modulates hepatic fat metabolism and homeostasis, we performed a comparative profiling of proteins and lipids of wild type (WT) and Lcn2-deficient mice fed either standard chow or a methionine- and choline-deficient (MCD) diet. Label-free proteomics and 2D-DIGE protein expression profiling revealed differential expression of BRIT1/MCPH1, FABP5, HMGB1, HBB2, and L-FABP, results confirmed by Western blotting. Gene ontology enrichment analysis identified enrichment for genes associated with mitochondrial membrane permeabilization and metabolic processes involving carboxylic acid. Measurements of mitochondrial membrane potential, mitochondrial chelatable iron pool, intracellular lipid peroxidation, and peroxisome numbers in primary hepatocytes confirmed that LCN2 regulates mitochondrial and peroxisomal integrity. Matrix-Assisted Laser Desorption/Ionization Time-Of-Flight (MALDI-TOF) mass spectrometry imaging identified significant changes to sphingomyelins, triglycerides, and glycerophospholipids in livers of mice fed an MCD diet regardless of LCN2 status. However, two arachidonic acid-containing glycerophospholipids were increased in Lcn2-deficient livers. Thus, LCN2 influences peroxisomal and mitochondrial biology in the liver to maintain triglyceride balance, handle oxidative stress, and control apoptosis.
Copyright © 2017 Elsevier B.V. All rights reserved.

Entities:  

Keywords:  Arachidonic acid; Dietary model; Fatty acid binding proteins; GO analysis; Iron pool; Lipidomics; Liver; Mitochondria; Peroxisomes; Phosphoinositide (3,4,5) triphosphate; Proteomics

Mesh:

Substances:

Year:  2017        PMID: 28396286     DOI: 10.1016/j.bbadis.2017.04.006

Source DB:  PubMed          Journal:  Biochim Biophys Acta Mol Basis Dis        ISSN: 0925-4439            Impact factor:   5.187


  12 in total

1.  Metabonomic Profile of Macrosteatotic Allografts for Orthotopic Liver Transplantation in Patients With Initial Poor Function: Mechanistic Investigation and Prognostic Prediction.

Authors:  Zhengtao Liu; Hai Zhu; Wenchao Wang; Jun Xu; Shuping Que; Li Zhuang; Junjie Qian; Shuai Wang; Jian Yu; Feng Zhang; Shengyong Yin; Haiyang Xie; Lin Zhou; Lei Geng; Shusen Zheng
Journal:  Front Cell Dev Biol       Date:  2020-08-28

2.  Lipocalin 2 Plays an Important Role in Regulating Inflammation in Retinal Degeneration.

Authors:  Tanu Parmar; Vipul M Parmar; Lindsay Perusek; Anouk Georges; Masayo Takahashi; John W Crabb; Akiko Maeda
Journal:  J Immunol       Date:  2018-03-30       Impact factor: 5.422

3.  Sex-specific metabolic functions of adipose Lipocalin-2.

Authors:  Karthickeyan Chella Krishnan; Simon Sabir; Michaël Shum; Yonghong Meng; Rebeca Acín-Pérez; Jennifer M Lang; Raquel R Floyd; Laurent Vergnes; Marcus M Seldin; Brie K Fuqua; Dulshan W Jayasekera; Sereena K Nand; Diana C Anum; Calvin Pan; Linsey Stiles; Miklós Péterfy; Karen Reue; Marc Liesa; Aldons J Lusis
Journal:  Mol Metab       Date:  2019-09-27       Impact factor: 7.422

Review 4.  A Scoping Review on Lipocalin-2 and Its Role in Non-Alcoholic Steatohepatitis and Hepatocellular Carcinoma.

Authors:  Marinela Krizanac; Paola Berenice Mass Sanchez; Ralf Weiskirchen; Anastasia Asimakopoulos
Journal:  Int J Mol Sci       Date:  2021-03-11       Impact factor: 5.923

5.  The relationship between Lipocalin-2 level and hepatic steatosis in obese patients with NAFLD after bariatric surgery.

Authors:  Jiaqi Chen; Shihui Lei; Yueye Huang; Xiaojuan Zha; Lei Gu; Donglei Zhou; Jun Li; Feng Liu; Nannan Li; Lei Du; Xiu Huang; Ziwei Lin; Le Bu; Shen Qu
Journal:  Lipids Health Dis       Date:  2022-01-16       Impact factor: 3.876

6.  Anti-Obesity Effect of the Above-Ground Part of Valeriana dageletiana Nakai ex F. Maek Extract in High-Fat Diet-Induced Obese C57BL/6N Mice.

Authors:  Zhiqiang Wang; Seung Hwan Hwang; Ju Hee Kim; Soon Sung Lim
Journal:  Nutrients       Date:  2017-07-02       Impact factor: 5.717

7.  Data on Lipocalin 2 and phosphatidylinositol 3-kinase signaling in a methionine- and choline-deficient model of non-alcoholic steatohepatitis.

Authors:  Anastasia Asimakopoulou; Erawan Borkham-Kamphorst; Eddy Van de Leur; Ralf Weiskirchen
Journal:  Data Brief       Date:  2017-07-01

8.  Inactivation of SREBP-1a Phosphorylation Prevents Fatty Liver Disease in Mice: Identification of Related Signaling Pathways by Gene Expression Profiles in Liver and Proteomes of Peroxisomes.

Authors:  Birgit Knebel; Sonja Hartwig; Sylvia Jacob; Ulrike Kettel; Martina Schiller; Waltraud Passlack; Cornelia Koellmer; Stefan Lehr; Dirk Müller-Wieland; Jorg Kotzka
Journal:  Int J Mol Sci       Date:  2018-03-25       Impact factor: 5.923

9.  Deletion of Perilipin 5 Protects Against Hepatic Injury in Nonalcoholic Fatty Liver Disease via Missing Inflammasome Activation.

Authors:  Anastasia Asimakopoulou; Kathrin M Engel; Nikolaus Gassler; Thilo Bracht; Barbara Sitek; Eva M Buhl; Stavroula Kalampoka; Manuela Pinoé-Schmidt; Josef van Helden; Jürgen Schiller; Ralf Weiskirchen
Journal:  Cells       Date:  2020-05-28       Impact factor: 6.600

Review 10.  Multifaceted Microcephaly-Related Gene MCPH1.

Authors:  Martina Kristofova; Alessandro Ori; Zhao-Qi Wang
Journal:  Cells       Date:  2022-01-14       Impact factor: 6.600

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