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Yeast As a Chassis for Developing Functional Assays to Study Human P53
Published on: August 4, 2019
Cell differentiation modifies the p53 transcriptional program through a combination of gene silencing and
Roubina Tatavosian1,2, Micah G Donovan1, Matthew D Galbraith1,2
1Department of Pharmacology, School of Medicine, University of Colorado Anschutz Medical Campus, Aurora, CO, 80045, USA.
Abstract:
The p53 transcription factor is a master regulator of cellular responses to stress that is commonly inactivated in diverse cancer types. Despite decades of research, the mechanisms by which p53 impedes tumorigenesis across vastly different cellular contexts requires further investigation. The bulk of research has been completed using in vitro studies of cancer cell lines or in vivo studies in mouse models, but much less is known about p53 action in diverse non-transformed human tissues. Here, we investigated how different cellular states modify the p53 transcriptional program in human cells through a combination of computational analyses of publicly available large-scale datasets and in vitro studies using an isogenic system consisting of induced pluripotent stem cells (iPSCs) and two derived lineages. Analysis of publicly available mRNA expression and genetic dependency data demonstrated wide variation in terms of expression and function of a core p53 transcriptional program across various tissues and lineages. To monitor the impact of cell differentiation on the p53 transcriptome within an isogenic cell culture system, we activated p53 by pharmacological inhibition of its negative regulator MDM2. Using cell phenotyping assays and genome wide transcriptome analyses, we demonstrated that cell differentiation confines and modifies the p53 transcriptional network in a lineage-specific fashion. Although hundreds of p53 target genes are transactivated in iPSCs, only a small fraction is transactivated in each of the differentiated lineages. Mechanistic studies using small molecule inhibitors and genetic knockdowns revealed the presence of two major regulatory mechanisms contributing to this massive heterogeneity across cellular states: gene silencing by epigenetic regulatory complexes and constitutive transactivation by lineage-specific transcription factors. Altogether, these results illuminate the impact of cell differentiation on the p53 program, thus advancing our understanding of how this tumor suppressor functions in different contexts.
Insights
The tumor suppressor p53
Area of Science:
- Molecular Biology
- Cell Biology
- Genetics
Background:
- The p53 transcription factor is a critical regulator of cellular stress responses, frequently inactivated in cancer.
- Understanding p53's tumor-suppressive mechanisms across diverse cellular contexts is crucial but incompletely understood.
- Most research relies on cell lines or mouse models, with limited data on p53 in human tissues.
Purpose of the Study:
- To investigate how cellular differentiation impacts the p53 transcriptional program in human cells.
- To explore the variability of p53 function across different human tissues and cell lineages.
Main Methods:
- Computational analysis of large-scale public mRNA expression and genetic dependency datasets.
- In vitro studies using an isogenic system of induced pluripotent stem cells (iPSCs) and derived lineages.
- Pharmacological activation of p53 via MDM2 inhibition, followed by cell phenotyping and genome-wide transcriptome analysis.
- Mechanistic studies involving small molecule inhibitors and genetic knockdowns.
Main Results:
- Significant variation in p53 program expression and function exists across human tissues and lineages.
- Cell differentiation restricts and modifies the p53 transcriptional network in a lineage-specific manner.
- While hundreds of p53 targets are activated in iPSCs, only a subset is activated in differentiated cells.
- Epigenetic silencing and lineage-specific transcription factors are key regulators of this heterogeneity.
Conclusions:
- Cell differentiation profoundly impacts the p53 transcriptional network, altering its function.
- This study reveals context-dependent mechanisms of p53 tumor suppression in human cells.
- Findings advance the understanding of how p53 operates in various cellular environments.
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