Citrin Deficiency: Biochemical Mechanisms Underlying a Complex Hepatic Metabolic Disorder

Citrin Deficiency (CD), caused by pathogenic variants in SLC25A13, is a rare inherited metabolic disorder with age-dependent manifestations ranging from neonatal intrahepatic cholestasis to adult-onset citrullinemia. Although the genetic basis of CD is well established, the mechanisms linking loss of the mitochondrial aspartate/glutamate carrier (citrin) to the CD phenotype remain incompletely understood. This review examines current evidence from patients and available cellular and animal models supporting the biochemical mechanisms underlying CD. We discuss how disruption of the malate–aspartate shuttle alters cytosolic redox homeostasis and its consequences for interconnected pathways of carbohydrate, lipid, and nitrogen metabolism, including glycolysis, gluconeogenesis, galactose metabolism, fatty acid oxidation, lipogenesis, and ureagenesis. We also distinguish mechanisms supported by experimental evidence from those that remain hypothetical and highlight major unresolved questions regarding metabolic adaptation, disease progression, and the transition to the adult phenotype.

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Publication Details

Journal
Biomolecules
Published
2026-10-07
DOI
https://doi.org/10.3390/biom16101460
Primary Topic
Metabolism and Genetic Disorders
Type
article
Field-Weighted Citation Impact
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article

Citrin Deficiency: Biochemical Mechanisms Underlying a Complex Hepatic Metabolic Disorder

Jorgina Satrústegui, Araceli del Arco, Laura Contreras, Ismael García-Lobo
Biomolecules
Metabolism and Genetic Disorders
article

Citrin Deficiency: Biochemical Mechanisms Underlying a Complex Hepatic Metabolic Disorder

Jorgina Satrústegui, Araceli del Arco, Laura Contreras, Ismael García-Lobo
article en

Abstract

Citrin Deficiency (CD), caused by pathogenic variants in SLC25A13, is a rare inherited metabolic disorder with age-dependent manifestations ranging from neonatal intrahepatic cholestasis to adult-onset citrullinemia. Although the genetic basis of CD is well established, the mechanisms linking loss of the mitochondrial aspartate/glutamate carrier (citrin) to the CD phenotype remain incompletely understood. This review examines current evidence from patients and available cellular and animal models supporting the biochemical mechanisms underlying CD. We discuss how disruption of the malate–aspartate shuttle alters cytosolic redox homeostasis and its consequences for interconnected pathways of carbohydrate, lipid, and nitrogen metabolism, including glycolysis, gluconeogenesis, galactose metabolism, fatty acid oxidation, lipogenesis, and ureagenesis. We also distinguish mechanisms supported by experimental evidence from those that remain hypothetical and highlight major unresolved questions regarding metabolic adaptation, disease progression, and the transition to the adult phenotype.

BiomoleculesVol. 16(10)
Hospital Universitario Fundación Jiménez Díaz (ES), Centro de Biología Molecular Severo Ochoa (ES), Universidad Autónoma de Madrid (ES), University of Castilla-La Mancha (ES)
Openalex Percentile: Top 14%
Metabolism and Genetic Disorders
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