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Published on: March 25, 2020
Successful treatment of infantile oxysterol 7α-hydroxylase deficiency with oral chenodeoxycholic acid
Yun-Ping Tang1,2, Jing-Yu Gong1, Kenneth D R Setchell3
1Department of Pediatrics, Jinshan Hospital, Fudan University, Shanghai, 201508, China.
Insights
CYP7B1 deficiency, a genetic disorder, presents diverse symptoms from liver failure to neurological issues. Early chenodeoxycholic acid treatment shows promise in improving outcomes for affected individuals.
Area of Science:
- Biochemistry
- Genetics
- Pediatric Hepatology
Background:
- CYP7B1 deficiency is linked to severe infantile cholestasis and hereditary spastic paraplegia type 5.
- Historically, infants with CYP7B1 mutations and liver disease often succumbed to liver failure.
- Recent findings suggest chenodeoxycholic acid may improve survival in affected patients.
Purpose of the Study:
- To investigate the genotype-phenotype correlation in CYP7B1 deficiency.
- To evaluate the therapeutic effect of chenodeoxycholic acid in a patient with CYP7B1 deficiency.
- To highlight the variable clinical presentation of CYP7B1 deficiency.
Main Methods:
- Case study of a Chinese infant with compound heterozygous CYP7B1 mutations (c.187C>T/c.334C>T).
- Analysis of urinary bile acids using fast atom bombardment mass spectrometry.
- Clinical monitoring and neurological examination of the patient and her sibling.
Main Results:
- The infant exhibited progressive cholestasis and elevated prothrombin time, with confirmed atypical bile acids.
- Chenodeoxycholic acid administration led to rapid improvement in liver function and normalization of bile acids.
- The patient's sibling, with identical mutations, presented with neurological symptoms (spastic paraplegia) without infantile cholestasis.
Conclusions:
- CYP7B1 deficiency exhibits a wide spectrum of phenotypes, even among siblings.
- Early intervention with chenodeoxycholic acid may significantly improve the prognosis for patients with CYP7B1 deficiency.
- This case underscores the importance of considering CYP7B1 mutations in infants with unexplained cholestasis and in individuals with spastic paraplegia.
Background:
Deficiency of oxysterol 7α-hydroxylase, encoded by CYP7B1, is associated with fatal infantile progressive intrahepatic cholestasis and hereditary spastic paraplegia type 5. Most reported patients with CYP7B1 mutations presenting with liver disease in infancy have died of liver failure. However, it was recently reported that two patients treated with chenodeoxycholic acid survived. Correlations between the phenotype and genotype of CYP7B1 deficiency have not been clearly established.
Case Presentation:
A 5-month-7-day-old Chinese baby from non-consanguineous parents was referred for progressive cholestasis and prolonged prothrombin time from one month of age. Genetic testing revealed compound heterozygous mutations c.187C > T(p.R63X)/c.334C > T(p.R112X) in CYP7B1, and fast atom bombardment mass spectrometry analysis of the urinary bile acid confirmed the presence of atypical hepatotoxic 3β-hydroxy-Δ5-bile acids. While awaiting liver transplantation she was orally administered chenodeoxycholic acid. Her liver function rapidly improved, urine atypical bile acids normalized, and she thrived well until the last follow-up at 23 months of age. Her 15-year-old brother, with no history of infantile cholestasis but harboring the same mutations in CYP7B1, had gait abnormality from 13 years of age. Neurological examination revealed hyper-reflexia and spasticity of the lower limbs. Brain MRI revealed enlarged perivascular space in the bilateral basal ganglia and white matter of frontal parietal.
Conclusions:
In summary, these findings highlight that the phenotype of CYP7B1 deficiency varies widely, even in siblings and that early administration of chenodeoxycholic acid may improve prognosis.
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