Deficiency in mitochondrial complex I activity due to Ndufs6 gene trap insertion induces renal disease

Josephine M Forbes1, Bi-Xia Ke, Tuong-Vi Nguyen

  • 1Glycation, Nutrition and Metabolism Laboratory, Baker IDI Heart & Diabetes Institute, Melbourne, Australia.

Abstract

Insights

Mitochondrial complex I deficiency, caused by Ndufs6 gene disruption, leads to kidney disease in mice. This research highlights complex I defects as a direct cause of renal impairment.

Area of Science:

  • Biochemistry
  • Genetics
  • Nephrology

Background:

  • Mitochondrial respiratory chain enzyme complex defects are linked to various disorders, including kidney disease.
  • Complex I deficiency, stemming from gene mutations, is the most prevalent human oxidative phosphorylation disorder.

Purpose of the Study:

  • To investigate if mitochondrial complex I abnormality alone contributes to renal disease development.
  • To examine the renal consequences of Ndufs6 gene knockdown in a mouse model.

Main Methods:

  • Studied mice with partial complex I deficiency due to Ndufs6 gene knockdown (Ndufs6gt/gt and Ndufs6gt/+).
  • Assessed renal function through markers like albuminuria and kidney injury molecule-1 (Kim-1).
  • Evaluated mitochondrial function, including ATP and superoxide generation, and oxidative stress markers.

Main Results:

  • Ndufs6 mice exhibited partial complex I deficiency and developed renal disease hallmarks: albuminuria, elevated Kim-1, fibrosis, and glomerular changes.
  • Mice showed reduced mitochondrial ATP and superoxide production, disrupted electrochemical potential, and increased oxidative stress markers.
  • Juvenile Ndufs6gt/gt mice displayed early renal impairment signs, including increased urinary Kim-1 and cystatin C.

Conclusions:

  • Complex I deficiency resulting from Ndufs6 interruption is identified as an independent cause of renal impairment.
  • Partial deficits in mitochondrial respiratory chain function may represent risk factors for chronic kidney disease.

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