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.
Abstract:
Feingold syndrome type 1, caused by loss-of-function of MYCN, is characterized by varied phenotypes including esophageal and duodenal atresia. However, no adequate model exists for studying the syndrome's pathological or molecular mechanisms, nor is there a treatment strategy. Here, we developed a zebrafish Feingold syndrome type 1 model with nonfunctional mycn, which had severe intestinal atresia. Single-cell RNA-seq identified a subcluster of intestinal cells that were highly sensitive to Mycn, and impaired cell proliferation decreased the overall number of intestinal cells in the mycn mutant fish. Bulk RNA-seq and metabolomic analysis showed that expression of ribosomal genes was down-regulated and that amino acid metabolism was abnormal. Northern blot and ribosomal profiling analysis showed abnormal rRNA processing and decreases in free 40S, 60S, and 80S ribosome particles, which led to impaired translation in the mutant. Besides, both Ribo-seq and western blot analysis showed that mTOR pathway was impaired in mycn mutant, and blocking mTOR pathway by rapamycin treatment can mimic the intestinal defect, and both L-leucine and Rheb, which can elevate translation via activating TOR pathway, could rescue the intestinal phenotype of mycn mutant. In summary, by this zebrafish Feingold syndrome type 1 model, we found that disturbance of ribosomal biogenesis and blockage of protein synthesis during development are primary causes of the intestinal defect in Feingold syndrome type 1. Importantly, our work suggests that leucine supplementation may be a feasible and easy treatment option for this disease.
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.
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