UNC45A deficiency causes microvillus inclusion disease-like phenotype by impairing myosin VB-dependent apical

Rémi Duclaux-Loras1,2, Corinne Lebreton1, Jérémy Berthelet3

  • 1Université Paris Cité, Imagine Institute, Laboratory of Intestinal Immunity, INSERM, UMR1163, Paris, France.

Insights

UNC45A cochaperone variants cause congenital diarrhea by impairing myosin VB function, leading to intestinal failure. This study reveals UNC45A deficiency results in a form of microvillus inclusion disease.

Area of Science:

  • Genetics
  • Cell Biology
  • Gastroenterology

Background:

  • UNC45A cochaperone gene variants are linked to a syndrome including diarrhea and intestinal failure.
  • The precise mechanism of intestinal dysfunction in UNC45A deficiency was previously unknown.

Purpose of the Study:

  • To investigate the role of UNC45A in congenital diarrhea and identify the underlying molecular mechanisms.
  • To determine if UNC45A deficiency causes a specific intestinal disease phenotype.

Main Methods:

  • Next-generation sequencing identified biallelic UNC45A variants in 6 patients with congenital diarrhea.
  • Mass spectrometry identified myosin VB as a UNC45A client protein.
  • In vitro cell culture (Caco-2), 3D organoids, and zebrafish models were used to study UNC45A function.

Main Results:

  • UNC45A variants abolished expression or altered protein conformation, leading to misfolded myosin VB.
  • UNC45A-deficient cells and organoids showed abnormal epithelial morphogenesis, including microvillus inclusions and disorganized microvilli.
  • Phenotypes in patients and models resembled microvillus inclusion disease.

Conclusions:

  • UNC45A is essential for epithelial morphogenesis via its cochaperone function on myosin VB.
  • Loss of UNC45A function leads to a variant of microvillus inclusion disease, explaining congenital diarrhea in affected patients.

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