Methylmalonic Acidemia (MMA)

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Definition And Classification

Classification Of Subtypes

Category Subtypes And Characteristics
Isolated MMA Mutase Deficiency: MMUT gene defects, classified into mut⁰ (complete deficiency) and mut⁻ (partial activity).
Cobalamin Disorders: Defects in the synthesis of the adenosylcobalamin cofactor (cblA, cblB, cblD-MMA).
Combined MMA And Homocystinuria Defects in cytosolic cobalamin metabolism, leading to combined methylmalonic acidemia and homocystinuria (cblC, cblD, cblF, cblJ, cblX).

Pathophysiology And Etiology

Metabolic Block And Precursors

Mechanisms Of Toxicity

Consequence Mechanism
Mitochondrial Toxicity Accumulation of metabolites inhibits the Krebs cycle (specifically citrate synthase) and impairs oxidative phosphorylation.
Hyperammonemia Propionyl-CoA competitively inhibits N-acetylglutamate synthase (NAGS), causing secondary urea cycle dysfunction.
Hyperglycinemia Toxic metabolites inhibit the glycine cleavage system.
Bone Marrow Suppression Toxic effects lead to neutropenia and thrombocytopenia.

Clinical Features And Complications

Age Of Onset And Presentation

Long-Term Complications

System Specific Complications
Neurologic Metabolic stroke affecting the globus pallidus in the basal ganglia, leading to movement disorders like dystonia, chorea, and spasticity.
Renal Chronic tubulointerstitial nephritis leading to progressive Chronic Kidney Disease, a feature unique to Methylmalonic Acidemia compared to other organic acidemias.
Other Systems Acute pancreatitis, optic nerve atrophy, cardiomyopathy, and acrodermatitis enteropathica-like skin rashes.

Investigations

Screening And Diagnostic Workup

Test Category Findings
Screening Labs High anion gap metabolic acidosis, marked ketosis and ketonuria, mild to severe hyperammonemia, hyperglycinemia, and cytopenias (neutropenia, thrombocytopenia).
Urine Organic Acids Massive elevation of Methylmalonic acid, alongside methylcitrate and 3-hydroxypropionate.
Plasma Acylcarnitine Elevated C3 (propionylcarnitine) and C4DC (methylmalonylcarnitine).
Plasma Homocysteine Essential to rule out combined Methylmalonic Acidemia and Homocystinuria (e.g., cblC disease).
Confirmatory Tests Molecular genetics via gene panel testing for MMUT, MMAA, and MMAB. Clinical or in vitro Vitamin B12 responsiveness challenge.

Management

Acute Decompensation

Chronic Maintenance And Transplantation

Therapy Type Interventions
Dietary Low-protein diet restricting Isoleucine, Valine, Methionine, and Threonine, supplemented with specific medical foods. Avoidance of prolonged fasting.
Pharmacotherapy Intramuscular Hydroxocobalamin for B12-responsive subtypes. Maintenance L-Carnitine (50-100 mg/kg/day). Gut sterilization using oral Metronidazole or Neomycin to decrease propionate production by enteric bacteria.
Transplantation Liver transplantation corrects metabolic instability but fails to prevent chronic renal progression or reverse existing brain damage. Combined Liver-Kidney transplantation is indicated for patients exhibiting renal failure.

Prognosis