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Methylmalonyl-CoA mutase (MMUT) is a nuclear-encoded mitochondrial enzyme essential for the degradation of branched-chain amino acids (valine, isoleucine, threonine, and methionine), odd-chain fatty acids, and the side chain of cholesterol (UniProt P22033). It catalyzes the reversible isomerization of (R)-methylmalonyl-CoA to succinyl-CoA, which then enters the Krebs cycle for energy production (NCBI Gene ID 4594). This enzymatic process is strictly dependent on adenosylcobalamin, a derivative of vitamin B12, which serves as a radical-generating cofactor (PubMed: 11134021). Deficiency in MMUT activity, often due to genetic mutations, results in methylmalonic acidemia (MMA), a life-threatening condition characterized by the accumulation of methylmalonic acid and other toxic metabolites (StatPearls: NBK448075). Current therapeutic interventions include dietary restriction, vitamin B12 supplementation for responsive variants, and innovative approaches like mRNA-based therapies (e.g., mRNA-3928) and gene editing (e.g., LB-001) designed to restore functional enzyme levels in the liver (ClinicalTrials.gov: NCT04899310). These emerging therapies aim to provide a long-term solution by enabling the body to produce functional MMUT protein, thereby reducing toxic metabolite levels and preventing metabolic crises.
Restoration of enzyme activity through cofactor supplementation to enhance residual function, mRNA-mediated protein expression in hepatocytes, or genomic integration of a functional gene copy (PubMed: 30111750; ClinicalTrials.gov: NCT04899310).
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