Role of AMACR (α-methylacyl-CoA racemase) and MFE-1 (peroxisomal multifunctional enzyme-1) in bile acid synthesis in mice

Author:

Autio Kaija J.12,Schmitz Werner3,Nair Remya R.12,Selkälä Eija M.12,Sormunen Raija T.24,Miinalainen Ilkka J.2,Crick Peter J.5,Wang Yuqin5,Griffiths William J.5,Reddy Janardan K.6,Baes Myriam7,Hiltunen J. Kalervo12

Affiliation:

1. Faculty of Biochemistry and Molecular Medicine, University of Oulu, P.O. Box 3000, FI-90014, Finland

2. Biocenter Oulu, University of Oulu, P.O. Box 5000, FI-90014, Finland

3. Theodor-Boveri-Institut für Biowissenschaften, Lehrstuhl für Biochemie und Molekularbiologie der Universität Würzburg, Am Hubland, 97974 Würzburg, Germany

4. Department of Pathology, University of Oulu and Oulu University Hospital, P.O. Box 5000, FI-90014, Finland

5. Institute of Mass Spectrometry, College of Medicine, Swansea University, Singleton Park, Swansea SA2 8PP, U.K.

6. Department of Pathology, Northwestern University Feinberg School of Medicine, Chicago, IL 60611, U.S.A.

7. Laboratory of Cell Metabolism, Department of Pharmaceutical and Pharmacological Sciences, University of Leuven, Herestraat 49 O&N 2, 3000 Leuven, Belgium

Abstract

Cholesterol is catabolized to bile acids by peroxisomal β-oxidation in which the side chain of C27-bile acid intermediates is shortened by three carbon atoms to form mature C24-bile acids. Knockout mouse models deficient in AMACR (α-methylacyl-CoA racemase) or MFE-2 (peroxisomal multifunctional enzyme type 2), in which this β-oxidation pathway is prevented, display a residual C24-bile acid pool which, although greatly reduced, implies the existence of alternative pathways of bile acid synthesis. One alternative pathway could involve Mfe-1 (peroxisomal multifunctional enzyme type 1) either with or without Amacr. To test this hypothesis, we generated a double knockout mouse model lacking both Amacr and Mfe-1 activities and studied the bile acid profiles in wild-type, Mfe-1 and Amacr single knockout mouse line and Mfe-1 and Amacr double knockout mouse lines. The total bile acid pool was decreased in Mfe-1−/− mice compared with wild-type and the levels of mature C24-bile acids were reduced in the double knockout mice when compared with Amacr-deficient mice. These results indicate that Mfe-1 can contribute to the synthesis of mature bile acids in both Amacr-dependent and Amacr-independent pathways.

Publisher

Portland Press Ltd.

Subject

Cell Biology,Molecular Biology,Biochemistry

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