Literature DB >> 23850792

Peroxisomes contribute to the acylcarnitine production when the carnitine shuttle is deficient.

Sara Violante1, Lodewijk Ijlst, Heleen Te Brinke, Janet Koster, Isabel Tavares de Almeida, Ronald J A Wanders, Fátima V Ventura, Sander M Houten.   

Abstract

Fatty acid β-oxidation may occur in both mitochondria and peroxisomes. While peroxisomes oxidize specific carboxylic acids such as very long-chain fatty acids, branched-chain fatty acids, bile acids, and fatty dicarboxylic acids, mitochondria oxidize long-, medium-, and short-chain fatty acids. Oxidation of long-chain substrates requires the carnitine shuttle for mitochondrial access but medium-chain fatty acid oxidation is generally considered carnitine-independent. Using control and carnitine palmitoyltransferase 2 (CPT2)- and carnitine/acylcarnitine translocase (CACT)-deficient human fibroblasts, we investigated the oxidation of lauric acid (C12:0). Measurement of the acylcarnitine profile in the extracellular medium revealed significantly elevated levels of extracellular C10- and C12-carnitine in CPT2- and CACT-deficient fibroblasts. The accumulation of C12-carnitine indicates that lauric acid also uses the carnitine shuttle to access mitochondria. Moreover, the accumulation of extracellular C10-carnitine in CPT2- and CACT-deficient cells suggests an extramitochondrial pathway for the oxidation of lauric acid. Indeed, in the absence of peroxisomes C10-carnitine is not produced, proving that this intermediate is a product of peroxisomal β-oxidation. In conclusion, when the carnitine shuttle is impaired lauric acid is partly oxidized in peroxisomes. This peroxisomal oxidation could be a compensatory mechanism to metabolize straight medium- and long-chain fatty acids, especially in cases of mitochondrial fatty acid β-oxidation deficiency or overload.
© 2013.

Entities:  

Keywords:  2-[5-(4-chlorophenyl)pentyl]oxirane-2-carboxylate; C12:0; CACT; CPT1; CPT2; Carnitine palmitoyltransferase 1; Carnitine palmitoyltransferase 2; Carnitine/acylcarnitine translocase; CrAT; CrOT; Fatty acid β-oxidation; LCFA; MCFA; Medium-chain fatty acids; Mitochondria; POCA; carnitine acetyltranferase; carnitine octanoyltransferase; carnitine palmitoyltranferase 1; carnitine palmitoyltransferase 2; carnitine/acylcarnitine translocase; l-AC; l-aminocarnitine; lauric acid; long-chain fatty acids; medium-chain fatty acids

Mesh:

Substances:

Year:  2013        PMID: 23850792     DOI: 10.1016/j.bbalip.2013.06.007

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


  33 in total

1.  Plasma Acylcarnitines and Risk of Type 2 Diabetes in a Mediterranean Population at High Cardiovascular Risk.

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Journal:  J Clin Endocrinol Metab       Date:  2019-05-01       Impact factor: 5.958

2.  Lipidomics unveils lipid dyshomeostasis and low circulating plasmalogens as biomarkers in a monogenic mitochondrial disorder.

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Journal:  JCI Insight       Date:  2019-07-25

Review 3.  Metabolic interactions between peroxisomes and mitochondria with a special focus on acylcarnitine metabolism.

Authors:  Sander M Houten; Ronald J A Wanders; Pablo Ranea-Robles
Journal:  Biochim Biophys Acta Mol Basis Dis       Date:  2020-02-10       Impact factor: 5.187

4.  Peroxisomes can oxidize medium- and long-chain fatty acids through a pathway involving ABCD3 and HSD17B4.

Authors:  Sara Violante; Nihad Achetib; Carlo W T van Roermund; Jacob Hagen; Tetyana Dodatko; Frédéric M Vaz; Hans R Waterham; Hongjie Chen; Myriam Baes; Chunli Yu; Carmen A Argmann; Sander M Houten
Journal:  FASEB J       Date:  2018-12-12       Impact factor: 5.191

5.  Effect of Maternal Obesity on Placental Lipid Metabolism.

Authors:  Virtu Calabuig-Navarro; Maricela Haghiac; Judi Minium; Patricia Glazebrook; Geraldine Cheyana Ranasinghe; Charles Hoppel; Sylvie Hauguel de-Mouzon; Patrick Catalano; Perrie O'Tierney-Ginn
Journal:  Endocrinology       Date:  2017-08-01       Impact factor: 4.736

6.  Steroidogenesis in MA-10 mouse Leydig cells is altered via fatty acid import into the mitochondria.

Authors:  Malena B Rone; Andrew S Midzak; Daniel B Martinez-Arguelles; Jinjiang Fan; Xiaoying Ye; Josip Blonder; Vassilios Papadopoulos
Journal:  Biol Reprod       Date:  2014-09-10       Impact factor: 4.285

7.  Glucometabolic consequences of acute and prolonged inhibition of fatty acid oxidation.

Authors:  Anne-Marie Lundsgaard; Andreas M Fritzen; Trine S Nicolaisen; Christian S Carl; Kim A Sjøberg; Steffen H Raun; Anders B Klein; Eva Sanchez-Quant; Jakob Langer; Cathrine Ørskov; Christoffer Clemmensen; Matthias H Tschöp; Erik A Richter; Bente Kiens; Maximilian Kleinert
Journal:  J Lipid Res       Date:  2019-11-12       Impact factor: 5.922

Review 8.  Carnitine transport and fatty acid oxidation.

Authors:  Nicola Longo; Marta Frigeni; Marzia Pasquali
Journal:  Biochim Biophys Acta       Date:  2016-01-29

9.  Tumor metabolism and associated serum metabolites define prognostic subtypes of Asian hepatocellular carcinoma.

Authors:  Yotsawat Pomyen; Anuradha Budhu; Jittiporn Chaisaingmongkol; Marshonna Forgues; Hien Dang; Mathuros Ruchirawat; Chulabhorn Mahidol; Xin Wei Wang
Journal:  Sci Rep       Date:  2021-06-08       Impact factor: 4.996

Review 10.  Peroxisome-mitochondria interplay and disease.

Authors:  Michael Schrader; Joseph Costello; Luis F Godinho; Markus Islinger
Journal:  J Inherit Metab Dis       Date:  2015-02-17       Impact factor: 4.982

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