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A maple syrup urine disease caused by mutations in BCKDHB.
Data assembled from 7 of 12 sources · Last updated Sep 19, 2026, 6:55 PM UTC
Online Mendelian Inheritance in Man
Genetic and Rare Diseases Info Center
Features include always present findings: Lethargy, Severe backward arching of the body (opisthotonus), Hyperisoleucinemia, and Feeding difficulties and others.
Organ System | Phenotype Count | Example Features |
|---|---|---|
Bones and joints | 1 | Severe backward arching of the body (opisthotonus) |
Digestive system | 1 | Feeding difficulties |
Brain and nerves | 1 | Seizure |
Traditionally, the metabolic phenotype of maple syrup urine disease (MSUD) is termed classic or intermediate on the basis of residual branched-chain alpha-ketoacid dehydrogenase (BCKD) enzyme activity. Rarely, affected individuals have partial BCKD enzyme deficiency that manifests only intermittently or responds to dietary thiamine therapy . Phenotypic distinctions are not absolute: individuals with intermediate or intermittent forms of MSUD can experience severe metabolic intoxication and encephalopathy if physiologic stress is sufficient to overwhelm residual BCKD activity or this activity is reduced by transient changes in the phosphorylation state of the enzyme complex. Even in persons with relatively high baseline residual BCKD enzyme activity, episodes of metabolic intoxication can be fatal. Table 2. Clinical Phenotypes of Maple Syrup Urine Disease
Type | Age of Onset1 | Clinical Features | Biochemical Signs2 | % with Normal BCKD Activity3 |
|---|---|---|---|---|
Classic | Neonatal | Maple syrup odor of cerumen; Poor feeding; Irritability, lethargy; Opisthotonus; Focal dystonia; "Fencing," "bicycling"; Obtundation, coma; Central respiratory failure | BCAAs in plasma; plasma alloisoleucine; BCKAs in urine; Ketonuria | 0%-2% |
Intermediate | Variable | Maple syrup odor of cerumen; Poor growth; Poor feeding; Irritability; Developmental delays | — | — |
Encephalopathy during illness | Similar to classic phenotype, though quantitatively less severe |
Source: GeneReviews — "Maple Syrup Urine Disease"
BCKDHB encodes branched chain keto acid dehydrogenase E1 subunit beta (392 aa). Together with BCKDHA forms the heterotetrameric E1 subunit of the mitochondrial branched-chain alpha-ketoacid dehydrogenase (BCKD) complex. Highest expression in Nerve Tibial (22.7 TPM) and Artery Tibial (21.1 TPM).
Maple syrup urine disease type 1B is caused by mutations in the BCKDHB gene on chromosome 6.
The BCKDHB protein participates in S399C Lipo-K105-DBT, BCKDHA:mutant BCKDHB tetramer, and BCKDHA:p-BCKDHB tetramer pathways.
BCKDHB is classified as a druggable target (Enzyme category) with score 4.0.
The severity of the MSUD metabolic phenotype is determined by the amount of residual BCKD enzyme activity relative to dietary BCAA excess and the large demands for BCAA oxidation that accompany fasting, illness, or other catabolic stresses . Although there are some established relationships between genotype and biochemical phenotype (i.e., classic vs intermediate), clinical and functional outcomes (e.g., FSIQ, psychiatric illness, executive dysfunction) cannot be predicted from genotype .
Source: GeneReviews — "Maple Syrup Urine Disease"
Maple syrup urine disease (MSUD) is caused by decreased activity of the branched-chain alpha-ketoacid dehydrogenase complex (BCKD), the second enzymatic step in the degradative pathway of the branched-chain amino acids (BCAAs), which includes leucine, isoleucine, and valine.
Scenario 1. Abnormal newborn screening (NBS) result
NBS for MSUD is primarily based on quantification of the ratios of (leucine + isoleucine) to alanine and phenylalanine concentrations on dry blood spots.
A positive screening value (i.e., those above the cutoff reported by the screening laboratory) require follow-up biochemical testing with quantitative plasma amino acid and alloisoleucine analyses. If either is abnormal, treatment and testing to establish the diagnosis should be initiated concurrently.
Source: GeneReviews — "Maple Syrup Urine Disease"
Entities to exclude in the encephalopathic neonate include birth asphyxia, hypoglycemia, status epilepticus, kernicterus, meningitis, and encephalitis. The few inborn errors of metabolism that present with neonatal encephalopathy include the following:
Hyperketosis syndromes (e.g., beta-ketothiolase deficiency [OMIM 203750])
Urea cycle defects (See Urea Cycle Disorders Overview.)
Glycine encephalopathy (nonketotic hyperglycinemia)
Propionic acidemia or isolated methylmalonic acidemia (rarely)
Source: GeneReviews — "Maple Syrup Urine Disease"
Genetic testing for BCKDHB is available. Testing is considered confirmatory for diagnosis.
Biomarker and diagnostic research for maple syrup urine disease type 1B has been reported in the published literature.
No approved treatments are currently available for maple syrup urine disease type 1B. The disease remains an area of unmet medical need.
When maple syrup urine disease (MSUD) is suspected during the diagnostic evaluation (i.e., due to elevated concentration of leucine, isoleucine, valine, and/or alloisoleucine), metabolic treatment should be initiated immediately. Development and evaluation of treatment plans, training and education of affected individuals and their families, and avoidance of side effects of dietary treatment (i.e., malnutrition, growth failure) require a multidisciplinary approach to care with oversight and expertise from a specialized metabolic center. Consensus nutritional guidelines have been published (full text) and two peer-reviewed articles provide general guidelines about the comprehensive treatment and monitoring of MSUD: see (full text), (full text). To establish the extent of disease and needs in an individual following initial diagnosis of MSUD, the evaluations summarized (if not performed as part of the evaluation that led to diagnosis) are recommended.
Table 4.
Recommended Evaluations Following Initial Diagnosis of Maple Syrup Urine Disease
Evaluation/System | Comment
Consultation w/metabolic physician / biochemical geneticist specialist metabolic dietician1 | • Transfer to specialist center w/experience in management of inherited metabolic diseases (strongly recommended).
Source: GeneReviews — "Maple Syrup Urine Disease"
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 — "Maple Syrup Urine Disease"
View trials for maple syrup urine disease type 1B
Table 10.
Recommended Surveillance for Individuals with Maple Syrup Urine Disease
Manifestation | Evaluation | Frequency/Comment
| Full amino acid profile (either from plasma or filter paper) | • For rapidly growing infants, monitoring 1x or 2x/wk
Weekly in children, adolescents, adults2,3
Measurement of calcium, magnesium, zinc, folate, selenium omega-3 essential fatty acid | As indicated based on clinical signs of deficiency
Visit w/metabolic specialist | At least monthly in infancy
| Monitor developmental milestones4,5 | At each visit or as needed
1. See Goals of laboratory monitoring (following) for target concentrations for various amino acids and other nutrients.
2. The frequency of amino acid monitoring varies by age, metabolic stability, adherence, and regional clinical practice.
3. The frequency of amino acid monitoring correlates directly with metabolic control and long-term measures of intelligence .
4. The Denver Developmental Screening Test II or a comparable tool is useful for monitoring development of infants and young children with MSUD.
5. School-age children, adolescents, and adults should have neurocognitive testing if indicated by school performance or behavior problems .
Goals of laboratory monitoring
Source: GeneReviews — "Maple Syrup Urine Disease"
Phenotype severity distribution: 7 always present features.
No clinical trials have been registered for maple syrup urine disease type 1B.
5 publications have been identified in PubMed for maple syrup urine disease type 1B. Research spans Diagnostic / Biomarker (20%), Review / Meta-Analysis (20%), and Basic Science / Preclinical (20%).
Wang H (2026). [PMID: 41487100](https://pubmed.ncbi.nlm.nih.gov/41487100/). *Circulation*. [Basic Science / Preclinical]
Wang J (2025). [PMID: 40009698](https://pubmed.ncbi.nlm.nih.gov/40009698/). *Sci Transl Med*. [Gene Therapy / Novel Therapeutics]
Rostampour N (2025). [PMID: 39773751](https://pubmed.ncbi.nlm.nih.gov/39773751/). *Orphanet J Rare Dis*. [Review / Meta-Analysis]
Llorin H (2024). [PMID: 39669632](https://pubmed.ncbi.nlm.nih.gov/39669632/). *Genet Med Open*. [Diagnostic / Biomarker]
Abdelkhalek ZS (2024). [PMID: 39551846](https://pubmed.ncbi.nlm.nih.gov/39551846/). *Sci Rep*. [Epidemiology / Natural History]
— |
— |
Intermittent | Variable | Normal early growth development; Episodic decompensations that can be severe | Normal BCAAs when well; Similar to classic biochemical profile during illness | 5%-20% |
Thiamine-responsive | Variable | Similar to intermediate phenotype | Improvement of leucine tolerance biochemical profile w/thiamine therapy | 2%-40% BCAAs = branched-chain amino acids; BCKAs = branched-chain alpha-ketoacids All infants with classic MSUD present during the neonatal period. |