Mitochondrial ND5 gene variation associated with encephalomyopathy and mitochondrial ATP consumption

Matthew McKenzie1, Danae Liolitsa, Natalya Akinshina

  • 1Department of Biochemistry, La Trobe University, Melbourne 3086, Australia.

Insights

Researchers identified a novel mitochondrial DNA mutation causing MELAS (mitochondrial encephalomyopathy and lactic acidosis with strokelike episodes). Impaired Complex I function leads to ATP consumption for mitochondrial potential maintenance, offering insights into this severe stroke disorder.

Area of Science:

  • Genetics
  • Mitochondrial Biology
  • Neurology

Background:

  • Mitochondrial encephalomyopathy and lactic acidosis with strokelike episodes (MELAS) is a severe, early-onset stroke disorder with limited treatment options.
  • Mitochondrial DNA (mtDNA) mutations are implicated in various human diseases, affecting cellular energy production.

Observation:

  • A MELAS patient was found to have a homoplasmic 13528A-->G mutation in the Complex I ND5 gene of their mtDNA.
  • Patient-derived fibroblasts showed reduced mitochondrial membrane potential (Deltapsim) and elevated lactate levels, indicating mitochondrial dysfunction.

Findings:

  • Transmitochondrial cybrid fusions confirmed the pathogenicity of the 13528A-->G mutation, with patient mtDNA cybrids exhibiting significantly reduced Complex I respiration and Deltapsim.
  • Inhibition of ATP-generating or -consuming pathways (adenine nucleotide translocase, F1F0-ATPase, glycolysis) revealed that patient mtDNA cybrids rely on glycolytically generated ATP to sustain Deltapsim.

Implications:

  • Mitochondria may consume ATP to maintain membrane potential in response to impaired respiration caused by mtDNA mutations.
  • This ATP consumption represents a potential pathophysiological mechanism contributing to MELAS and other human mitochondrial diseases.
  • Understanding this mechanism could lead to novel therapeutic strategies for MELAS and related mitochondrial disorders.

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