MPC2variants disrupt mitochondrial pyruvate metabolism and cause an early-onset mitochondriopathy

Author:

Pujol Claire12,Lebigot Elise3,Gaignard Pauline3,Galai Said45,Kraoua Ichraf5,Bault Jean-Philippe6,Dard Rodolphe67,Youssef-Turki Ilhem Ben5,Omar Souheil4,Boutron Audrey3,Wai Timothy12ORCID,Slama Abdelhamid3

Affiliation:

1. Mitochondrial Biology Group, Institut Pasteur, CNRS UMR 3691 , 75015 Paris , France

2. Université Paris Cité , 75006 Paris , France

3. Biochemistry Department, Bicêtre Hospital, APHP Paris Saclay , 94270 Le Kremlin Bicêtre , France

4. Research Laboratory of Neurological Diseases of the Child (LR18SP04), Department of Clinical Biology, Faculty of Medicine of Tunis, National Institute Mongi Ben Hmida of Neurology, University of Tunis El Manar , 1068 Tunis , Tunisia

5. Research Laboratory of Neurological Diseases of the Child (LR18SP04), Department of Pediatric Neurology, National Institute Mongi Ben Hmida of Neurology, Faculty of Medicine of Tunis, University of Tunis El Manar , 1068 Tunis , Tunisia

6. Department of Gynecology, Poissy—Saint Germain en Laye Hospital , 78300 Poissy , France

7. Department of Medical Genetics, Poissy—Saint Germain en Laye Hospital , 78300 Poissy , France

Abstract

AbstractPyruvate is an essential metabolite produced by glycolysis in the cytosol and must be transported across the inner mitochondrial membrane into the mitochondrial matrix, where it is oxidized to fuel mitochondrial respiration. Pyruvate import is performed by the mitochondrial pyruvate carrier (MPC), a hetero-oligomeric complex composed by interdependent subunits MPC1 and MPC2. Pathogenic variants in the MPC1 gene disrupt mitochondrial pyruvate uptake and oxidation and cause autosomal-recessive early-onset neurological dysfunction in humans. The present work describes the first pathogenic variants in MPC2 associated with human disease in four patients from two unrelated families. In the first family, patients presented with antenatal developmental abnormalities and harboured a homozygous c.148T>C (p.Trp50Arg) variant. In the second family, patients that presented with infantile encephalopathy carried a missense c.2T>G (p.Met1?) variant disrupting the initiation codon. Patient-derived skin fibroblasts exhibit decreased pyruvate-driven oxygen consumption rates with normal activities of the pyruvate dehydrogenase complex and mitochondrial respiratory chain and no defects in mitochondrial content or morphology. Re-expression of wild-type MPC2 restored pyruvate-dependent respiration rates in patient-derived fibroblasts.The discovery of pathogenic variants in MPC2 therefore broadens the clinical and genetic landscape associated with inborn errors in pyruvate metabolism.

Funder

European Research Council

French National Center for Scientific Research

AMMI

Tunisian Ministry of High Education and Scientific Research

Publisher

Oxford University Press (OUP)

Subject

Neurology (clinical)

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