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A form of methylmalonic acidemia with homocystinuria, an inborn error of vitamin B12 (cobalamin) metabolism characterized by variable biochemical, neurological and hematological manifestations.
Features include: Lethargy, Decreased circulating adenosylcobalamin concentration, Dystonia, and Homocystinuria and 17 more.
Organ System | Phenotype Count | Example Features |
|---|---|---|
Brain and nerves | 6 | Dystonia, Spastic ataxia, Seizure |
Muscles | 3 | Cerebral cortical atrophy, Low muscle tone (hypotonia), Generalized hypotonia |
Lab test results | 2 | Decreased methylmalonyl-CoA mutase activity, Decreased methionine synthase activity |
Blood and immune system | 2 | Megaloblastic anemia, Larger than normal red blood cells (increased mean corpuscular volume) |
Eyes | 1 | Nystagmus |
Disorders of intracellular cobalamin metabolism have a variable phenotype and age of onset that are influenced by the severity and location within the pathway of the defect. Table 4. Clinical Manifestations of Disorders of Intracellular Cobalamin Metabolism
Manifestations | Combined AdoCbl and MeCbl Deficiency | MeCbl Deficiency |
|---|---|---|
cblC1 | cblD2 | cblF3 |
Perinatal | Intrauterine growth restriction | X7 |
X | Microcephaly | X |
X | X Hydrops fetalis | X |
Dysmorphic features | +/-8 | +/- |
X | Congenital heart disease | X9 |
X | X | — |
Fetal dilated cardiomyopathy | X | — |
Hydrocephalus | X | — |
X | Brain malformations | +/- |
X | Cardiomyopathy w/left ventricular noncompaction | X |
Infantile childhood | Acute metabolic decompensation | X |
X | Lethargy | X |
X | X | — |
X | X Progressive encephalopathy | X |
X | Seizures | X |
X | X | X |
Ataxia | X | X |
Hypotonia | X | X |
X | X | X |
Developmental delay / intellectual disability | X | X |
X | X | X |
Demyelinating neuropathy | X | Dystonia |
X | Microcephaly | X |
X | X Subdural hematoma | X10 |
Feeding difficulties | X | X |
X | X Failure to thrive | X |
Nystagmus | X11 | X |
X | X | — |
Retinal degeneration | X11 | — |
X | Maculopathy | X |
Optic atrophy | X11 | — |
X Megaloblastic anemia, cytopenias | X | X |
X | Stomatitis, glossitis | X |
X | Hemolytic uremic syndrome | X12 |
X | X13 Cerebral atrophy | X |
X | Dysmorphic features | X |
X | Infantile spasms | X |
X Hyperammonemia | X | X |
Adolescent adulthood | Progressive encephalopathy | X |
Leukoencephalopathy | X14 | — |
Psychosis | X15 | X |
Dementia | X15 | — |
Neuropsychiatric symptoms | X15 | — |
X | Executive dysfunction | X14 |
X | Subacute combined degeneration of the spinal cord | X15 |
X16 Glomerulopathy | X17 | — |
X | Thromboembolic microangiopathy | X18 |
Deep venous thrombosis | X15 | — |
X | Pulmonary thromboembolism | X19 |
Stroke | X20 | — |
Marfanoid features | X21 | 1. 2. , , 3. , 4. , 5. 6. 7. 8. 9. 10. 11. 12. , 13. 14. 15. , 16. 17. 18. , 19. 20. 21. |
Source: GeneReviews — "Disorders of Intracellular Cobalamin Metabolism"
MMADHC encodes metabolism of cobalamin associated D (296 aa). Involved in cobalamin metabolism and trafficking. Plays a role in regulating the biosynthesis and the proportion of two coenzymes, methylcob(III)alamin (MeCbl) and 5'-deoxyadenosylcobalamin (AdoCbl). Highest expression in Cells EBV-transformed lymphocytes (157.4 TPM) and Cells Cultured fibroblasts (145.1 TPM).
Methylmalonic aciduria and homocystinuria type cblD is associated with mutations in the MMADHC gene on chromosome 2.
The MMADHC protein participates in Defective MMADHC does not bind MMACHC:B12r and MMADHC targets transport of cytosolic cob(II)alamin to mitochondria pathways.
MMADHC is classified as a druggable target with score 10.4.
Genotype-phenotype correlations observed include the following:
cblC
Infantile-presentation (early-onset), severe disease is associated with the MMACHC pathogenic variants or in the homozygous or compound heterozygous state.
Noninfantile presentation (late onset) is usually associated with MMACHC pathogenic variants and MMACHC
[, , , , ]. It may also be associated with MMACHC variant if individuals are compound heterozygotes for , , , or .
cblD. The location of pathogenic variants within MMADHC correlates with the type of enzyme deficiency:
Source: GeneReviews — "Disorders of Intracellular Cobalamin Metabolism"
The disorders of intracellular cobalamin metabolism result from deficient synthesis of the coenzymes derived from vitamin B12:
Adenosylcobalamin (AdoCbl) – the coenzyme for methylmalonyl-CoA mutase enzyme
Methylcobalamin (MeCbl) – the coenzyme for the enzyme methionine synthase (MTR)
Source: GeneReviews — "Disorders of Intracellular Cobalamin Metabolism"
The following disorders may cause clinical manifestations and laboratory abnormalities similar to those seen in disorders of intracellular cobalamin metabolism.
Disorders causing both methylmalonic acidemia and homocystinuria
Vitamin B12 deficiency. Individuals with vitamin B12 deficiency can have methylmalonic acidemia and homocystinuria, as can the newborns of mothers who have vitamin B12 deficiency. To establish the diagnosis of vitamin B12 deficiency, it is necessary to measure serum vitamin B12 concentrations in both affected newborns and their mothers.
Source: GeneReviews — "Disorders of Intracellular Cobalamin Metabolism"
Genetic testing for MMADHC is available. Testing is considered confirmatory for diagnosis.
Biomarker and diagnostic research for methylmalonic aciduria and homocystinuria type cblD has been reported in the published literature.
No approved treatments are currently available for methylmalonic aciduria and homocystinuria type cblD. The disease remains an area of unmet medical need.
To establish the extent of disease and needs of an individual diagnosed with a disorder of intracellular cobalamin metabolism, the following evaluations are recommended. In an unstable individual:
Serial metabolic evaluations of blood gases, electrolytes, glucose, ammonia, liver function, total and direct bilirubin, renal function, lactate dehydrogenase, plasma amino acids (methionine), plasma methylmalonic acid (MMA), and total plasma homocysteine (tHcy) to guide acute management until the individual stabilizes
Complete blood count (CBC) with differential to evaluate for megaloblastic anemia or cytopenias
Peripheral blood smear to evaluate for the presence of schistocytes, in the presence of other manifestations of hemolytic uremic syndrome (HUS)
Once the individual becomes stable:
Clinical assessment of growth parameters, head circumference, ability to feed, developmental status, and neurologic status
Laboratory assessment of nutritional status (electrolytes, albumin, prealbumin, plasma amino acids [with careful attention to methionine levels], vitamin levels [including thiamine and 25-hydroxyvitamin D], and trace minerals) and renal function; complete blood count to monitor for cytopenias
Echocardiogram to screen for cardiac defects and cardiomyopathy
EEG and brain MRI in symptomatic individuals
Ophthalmologic examination
Consultation with a clinical geneticist and/or genetic counselor
A set of guidelines for th...
Source: GeneReviews — "Disorders of Intracellular Cobalamin Metabolism"
Potentially exacerbating circumstances:
Prolonged fasting (longer than overnight without dextrose-containing intravenous fluids)
Dietary protein intake below the recommended dietary allowance (RDA) for age
Dietary protein intake greater than that prescribed by a metabolic specialist especially in individuals with cblC, cblD-combined, cblF, or cblJ
Medical foods. Medical foods given to infants with isolated methylmalonic acidemia do not contain methionine and should be avoided as the decreased methionine intake may worsen hypomethioninemia and long-term use may contribute to poor head and linear growth , among other complications.
Nitrous oxide, an anesthetic that is potentially toxic as it depletes the body stores of vitamin B12 and inhibits methionine synthase activity [, , , ]
Source: GeneReviews — "Disorders of Intracellular Cobalamin Metabolism"
Search ClinicalTrials.gov in the US and EU Clinical Trials Register in Europe for information on clinical studies for a wide range of diseases and conditions.
Source: GeneReviews — "Disorders of Intracellular Cobalamin Metabolism"
View trials for methylmalonic aciduria and homocystinuria type cblD
The following evaluations are performed at different intervals depending on age and disease severity:
During the first year of life, infants may need to be evaluated once or twice a month by a metabolic specialist.
Toddlers and school-age children should be evaluated at least twice a year to adjust medication dosing (hydroxocobalamin, betaine) during growth and to evaluate nutritional status.
Teens and adults may be seen on a yearly basis.
Clinical evaluation should assess the following:
Growth including weight, linear growth, and head circumference
Nutritional status
Feeding ability
Developmental and neurocognitive progress, as age-appropriate
Laboratory evaluation should include the following:
Metabolic studies including urine organic acids, serum methylmalonic acid analysis, plasma amino acids (methionine), plasma tHcy concentration
CBC to monitor for cytopenias
Nutritional studies, if indicated: electrolytes, albumin, prealbumin, plasma amino acids, vitamin levels (including thiamine and 25-hydroxyvitamin D), essential fatty acids, and trace minerals
Routine evaluations should include the following:
Source: GeneReviews — "Disorders of Intracellular Cobalamin Metabolism"
Estimated prevalence: <1 in 1,000,000 (VERY_RARE).
No clinical trials have been registered for methylmalonic aciduria and homocystinuria type cblD.
102 publications have been identified in PubMed for methylmalonic aciduria and homocystinuria type cblD. Research spans Epidemiology / Natural History (36%), Review / Meta-Analysis (26%), and Clinical Trial Publication (20%).
Research Type | Count | % of Total |
|---|---|---|
Disease patterns and progression | 37 | 36% |
Research summaries | 27 | 26% |
Clinical study results | 20 | 20% |
Laboratory research | 12 | 12% |
Testing and diagnosis research | 4 | 4% |
Patient case studies | 1 | 1% |
New treatment approaches | 1 | 1% |
Esra D (2026). [PMID: 41741629](https://pubmed.ncbi.nlm.nih.gov/41741629/). *Scientific reports*. [Epidemiology / Natural History]
Urbina J (2026). [PMID: 41549912](https://pubmed.ncbi.nlm.nih.gov/41549912/). *Clinical obesity*. [Review / Meta-Analysis]
Pfeiffer CM (2026). [PMID: 42163863](https://pubmed.ncbi.nlm.nih.gov/42163863/). *Curr Dev Nutr*. [Diagnostic / Biomarker]
Moroianu LA (2026). [PMID: 42187879](https://pubmed.ncbi.nlm.nih.gov/42187879/). *Diseases*. [Review / Meta-Analysis]
Tessema M (2026). [PMID: 41611087](https://pubmed.ncbi.nlm.nih.gov/41611087/). *The American journal of clinical nutrition*. [Diagnostic / Biomarker]
Triggianese P (2026). [PMID: 41754076](https://pubmed.ncbi.nlm.nih.gov/41754076/). *Nutrients*. [Basic Science / Preclinical]
Mubashir M (2026). [PMID: 41974540](https://pubmed.ncbi.nlm.nih.gov/41974540/). *BMJ Open*. [Epidemiology / Natural History]
Toth IH (2026). [PMID: 41682724](https://pubmed.ncbi.nlm.nih.gov/41682724/). *Journal of clinical medicine*. [Basic Science / Preclinical]
Salikhova S (2026). [PMID: 41876308](https://pubmed.ncbi.nlm.nih.gov/41876308/). *Journal of pediatric urology*. [Diagnostic / Biomarker]
Baykan M (2026). [PMID: 41914064](https://pubmed.ncbi.nlm.nih.gov/41914064/). *Journal of oral & facial pain and headache*. [Clinical Trial Publication]
Data assembled from 7 of 12 sources · Last updated Sep 19, 2026, 9:42 PM UTC
Online Mendelian Inheritance in Man
European rare disease database
Genetic and Rare Diseases Info Center