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Yeast As a Chassis for Developing Functional Assays to Study Human P53
Published on: August 4, 2019
Ribosome biogenesis dysfunction leads to p53-mediated apoptosis and goblet cell differentiation of mouse intestinal
A Stedman1,2, S Beck-Cormier1,2, M Le Bouteiller1,2
1Mouse Functional Genetics, Department of Developmental & Stem Cell Biology, Institut Pasteur, 25 rue du docteur Roux, Paris, France.
Abstract:
Ribosome biogenesis is an essential cellular process. Its impairment is associated with developmental defects and increased risk of cancer. The in vivo cellular responses to defective ribosome biogenesis and the underlying molecular mechanisms are still incompletely understood. In particular, the consequences of impaired ribosome biogenesis within the intestinal epithelium in mammals have not been investigated so far. Here we adopted a genetic approach to investigate the role of Notchless (NLE), an essential actor of ribosome biogenesis, in the adult mouse intestinal lineage. Nle deficiency led to defects in the synthesis of large ribosomal subunit in crypts cells and resulted in the rapid elimination of intestinal stem cells and progenitors through distinct types of cellular responses, including apoptosis, cell cycle arrest and biased differentiation toward the goblet cell lineage. Similar observations were made using the rRNA transcription inhibitor CX-5461 on intestinal organoids culture. Importantly, we found that p53 activation was responsible for most of the cellular responses observed, including differentiation toward the goblet cell lineage. Moreover, we identify the goblet cell-specific marker Muc2 as a direct transcriptional target of p53. Nle-deficient ISCs and progenitors disappearance persisted in the absence of p53, underlying the existence of p53-independent cellular responses following defective ribosome biogenesis. Our data indicate that NLE is a crucial factor for intestinal homeostasis and provide new insights into how perturbations of ribosome biogenesis impact on cell fate decisions within the intestinal epithelium.
Insights
Defective ribosome biogenesis impairs intestinal stem cell function, leading to their elimination via apoptosis, cell cycle arrest, and differentiation. This study reveals Notchless (NLE) is crucial for intestinal homeostasis.
Area of Science:
- Cell Biology
- Molecular Biology
- Gastroenterology
Background:
- Ribosome biogenesis is vital for cell function, and its disruption is linked to developmental issues and cancer.
- The cellular responses and molecular mechanisms of impaired ribosome biogenesis in vivo, especially in the mammalian intestinal epithelium, remain poorly understood.
Purpose of the Study:
- To investigate the role of Notchless (NLE), a key ribosome biogenesis factor, in the adult mouse intestinal lineage.
- To elucidate the cellular and molecular consequences of impaired ribosome biogenesis in the intestinal epithelium.
Main Methods:
- Genetic manipulation of Notchless (Nle) in adult mouse intestinal stem cells (ISCs) and progenitors.
- Utilized rRNA transcription inhibitor CX-5461 on intestinal organoid cultures.
- Analyzed cellular responses including apoptosis, cell cycle arrest, differentiation, and p53 activation.
Main Results:
- Nle deficiency caused defects in large ribosomal subunit synthesis, leading to rapid elimination of ISCs and progenitors.
- Cellular responses included apoptosis, cell cycle arrest, and biased differentiation towards goblet cells.
- p53 activation mediated most observed responses, with Muc2 identified as a direct p53 transcriptional target.
- ISC and progenitor loss continued in p53-deficient mice, indicating p53-independent pathways.
Conclusions:
- Notchless (NLE) is essential for maintaining intestinal homeostasis.
- Perturbations in ribosome biogenesis trigger distinct cellular responses, including p53-dependent and independent pathways, impacting cell fate decisions in the intestinal epithelium.
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