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Yeast As a Chassis for Developing Functional Assays to Study Human P53
Published on: August 4, 2019
p53 upregulation is a frequent response to deficiency of cell-essential genes
Nadia Danilova1, Asako Kumagai, Jenny Lin
1Department of Molecular, Cell and Developmental Biology, University of California Los Angeles, Los Angeles, California, United States of America. ndanilova@ucla.edu
Background:
The role of p53 in the prevention of development of embryos damaged by genotoxic factors is well recognized. However, whether p53 plays an analogous role in preventing birth defects from genetic mutations remains an unanswered question. Genetic screens for mutations affecting development show that only a fraction of developmentally lethal mutations leads to specific phenotypes while the majority results in similar recurrent phenotypes characterized by neuronal apoptosis and developmental delay. Mutations in cell-essential genes typically fall into this group. The observation that mutations in diverse housekeeping genes lead to a similar phenotype suggests a common mechanism underlying this phenotype. For some mutants, p53 inhibition was shown to attenuate the phenotype.
Methodology/Principal Findings:
To find out how common p53 involvement is in this phenotype, we analyzed zebrafish mutants from various categories of cell essential genes. Several thousand zebrafish mutants have been identified; many of them are kept at stock centers and available for the research community. We selected mutants for genes functioning in DNA replication, transcription, telomere maintenance, ribosome biogenesis, splicing, chaperoning, endocytosis, and cellular transport. We found that mutants have similar phenotypes including neural apoptosis, failure to develop structures originated from the neural crest cells, and hematopoietic defects. All mutants share p53 upregulation and similar changes in several p53-dependent and independent molecular pathways.
Conclusion/Significance:
Our results suggest that mutations in housekeeping genes often canalize on the p53-mediated phenotype. p53 prevents the development of embryos with defects in such genes. p53-mediated changes in gene expression may also contribute to many human congenital malformations.
Insights
The tumor suppressor p53 protein prevents birth defects caused by mutations in essential genes. This p53-mediated pathway is a common mechanism underlying developmental abnormalities, offering insights into congenital malformations.
Area of Science:
- Developmental Biology
- Genetics
- Molecular Biology
Background:
- The tumor suppressor p53 protein is known to prevent embryonic development issues caused by genotoxic factors.
- Its role in preventing birth defects arising from genetic mutations is not fully understood.
- Many mutations in essential genes lead to similar developmental phenotypes, suggesting a common underlying mechanism.
Purpose of the Study:
- To investigate the involvement of p53 in developmental defects caused by mutations in cell-essential genes.
- To determine if p53 plays a conserved role in preventing phenotypes associated with mutations in housekeeping genes.
Main Methods:
- Analysis of zebrafish mutants affecting various cell-essential genes, including those involved in DNA replication, transcription, and cellular transport.
- Phenotypic characterization of mutants, including neural apoptosis, neural crest cell development, and hematopoietic defects.
- Assessment of p53 upregulation and downstream molecular pathway alterations in these mutants.
Main Results:
- Zebrafish mutants in diverse cell-essential genes exhibited similar developmental defects, including neural apoptosis and hematopoietic issues.
- All analyzed mutants showed upregulation of p53.
- Shared alterations in both p53-dependent and independent molecular pathways were observed across mutants.
Conclusions:
- Mutations in housekeeping genes frequently converge on a p53-mediated developmental phenotype.
- The p53 pathway acts to prevent the development of embryos with defects in essential genes.
- p53-mediated gene expression changes may contribute to human congenital malformations.
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