Intractable secretory diarrhea in a Japanese boy with mitochondrial respiratory chain complex I deficiency

Kei Murayama1, Hironori Nagasaka, Tomoko Tsuruoka

  • 1Department of Metabolism, Chiba Children's Hospital, 579-1, Henda-cho, Midori-ku, Chiba, 266-0007, Japan. kmuraya@mri.biglobe.ne.jp

Insights

Congenital sodium diarrhea in a Japanese boy was linked to mitochondrial complex I deficiency. This deficiency in intestinal cells disrupts adenosine triphosphate (ATP) production, impacting ion gradients and causing severe diarrhea.

Area of Science:

  • Biochemistry
  • Genetics
  • Pediatrics

Background:

  • Secretory diarrhea in infants often has an unknown cause.
  • Congenital sodium diarrhea is characterized by high fecal sodium and a low osmotic gap.

Observation:

  • A Japanese boy presented with intractable diarrhea from birth, diagnosed with congenital sodium diarrhea.
  • Extensive analysis revealed undetectable liver respiratory chain complex I activity and significantly decreased jejunal complex I activity.
  • Immunohistochemistry confirmed a deficiency in the 30-kDa subunit of complex I in both liver and intestinal epithelial cells.

Findings:

  • The patient was diagnosed with complex I deficiency, a novel cause of secretory diarrhea.
  • Mitochondrial complex I deficiency was identified in both the liver and intestinal epithelial cells.
  • Compromised complex I activity leads to reduced adenosine triphosphate (ATP) production.

Implications:

  • Complex I deficiency disrupts the adenosine triphosphate (ATP) supply essential for maintaining ion gradients across cell membranes.
  • This study identifies mitochondrial complex I deficiency as a potential cause of secretory diarrhea in early life.
  • Understanding this mechanism opens new avenues for diagnosing and potentially treating infant secretory diarrhea.

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