A cryptic pathogenic NDUFV1 variant identified by RNA-seq in a patient with normal complex I activity in muscle and

Sharmila Kiss1, John Christodoulou2,3, David R Thorburn2,3,4

  • 1Department of Metabolic Medicine, The Royal Children's Hospital, Parkville, Victoria, Australia.

Insights

Mitochondrial respiratory chain disorders are complex inherited metabolic diseases. This case highlights how analyzing synonymous variants and using RNA sequencing can aid in diagnosing elusive mitochondrial conditions.

Area of Science:

  • Biochemistry
  • Genetics
  • Neurology

Background:

  • Mitochondrial respiratory chain (MRC) disorders are common inherited metabolic diseases.
  • Complex I deficiency is a significant subset of MRC disorders, presenting diverse clinical issues.
  • Diagnosis can be challenging due to varied symptoms and normal initial enzyme tests.

Observation:

  • A patient presented with failure to thrive, vomiting, hypotonia, and motor milestone regression.
  • Brain imaging suggested Leigh syndrome, but without characteristic diffusion restriction.
  • Muscle respiratory chain enzyme activity was normal, complicating the diagnostic process.

Findings:

  • Whole-genome sequencing revealed maternally inherited NDUFV1 missense and paternally inherited synonymous variants.
  • RNA sequencing confirmed aberrant splicing caused by the synonymous variant.
  • The diagnostic journey was prolonged due to atypical presentation and normal enzyme activities.

Implications:

  • This case underscores the importance of investigating synonymous variants in undiagnosed genetic disorders.
  • Complete resolution of MRI findings can occur in mitochondrial diseases.
  • RNA sequencing is crucial for identifying pathogenic splicing variants, aiding in rare disease diagnosis.

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