Mycn regulates intestinal development through ribosomal biogenesis in a zebrafish model of Feingold syndrome 1

Yun-Fei Li1, Tao Cheng1,2, Ying-Jie Zhang1

  • 1Institute of Genetics and Department of Human Genetics, Zhejiang University School of Medicine, Hangzhou, China.

Plos Biology
|November 1, 2022
PubMed

Insights

A new zebrafish model for Feingold syndrome type 1 reveals that impaired ribosomal biogenesis and protein synthesis cause intestinal defects. Leucine supplementation shows promise as a treatment for this rare genetic disorder.

Area of Science:

  • Developmental Biology
  • Genetics
  • Molecular Biology

Background:

  • Feingold syndrome type 1, linked to MYCN loss-of-function, presents with diverse phenotypes like esophageal and duodenal atresia.
  • Existing models are inadequate for studying Feingold syndrome type 1's pathology, molecular mechanisms, or treatment.

Purpose of the Study:

  • To develop a zebrafish model for Feingold syndrome type 1 to investigate its pathological and molecular underpinnings.
  • To identify potential therapeutic strategies for Feingold syndrome type 1.

Main Methods:

  • Generation of a zebrafish model with nonfunctional mycn exhibiting severe intestinal atresia.
  • Utilized single-cell RNA sequencing (scRNA-seq), bulk RNA sequencing, metabolomics, Northern blot, ribosomal profiling, and Ribo-seq.
  • Investigated the mTOR pathway and tested the efficacy of rapamycin, L-leucine, and Rheb.

Main Results:

  • The mycn mutant zebrafish displayed severe intestinal atresia, linked to a decrease in intestinal cells due to impaired proliferation.
  • Down-regulation of ribosomal gene expression, abnormal amino acid metabolism, and defects in rRNA processing were observed.
  • Impaired translation, mTOR pathway dysfunction, and successful rescue of intestinal defects with L-leucine and Rheb were identified.

Conclusions:

  • Disturbances in ribosomal biogenesis and protein synthesis are primary causes of intestinal defects in Feingold syndrome type 1.
  • The study highlights the mTOR pathway's role in the syndrome's pathogenesis.
  • Leucine supplementation emerges as a potential therapeutic approach for Feingold syndrome type 1.