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Published on: May 21, 2020
Genome-wide p63-Target Gene Analyses Reveal TAp63/NRF2-Dependent Oxidative Stress Responses
Marco Napoli1,2, Avani A Deshpande1,2, Deepavali Chakravarti3
1Department of Molecular Oncology, Division of Basic Science, H. Lee Moffitt Cancer Center and Research Institute, Tampa, Florida.
Abstract:
The p53 family member TP63 encodes two sets of N-terminal isoforms, TAp63 and ΔNp63 isoforms. They each regulate diverse biological functions in epidermal morphogenesis and in cancer. In the skin, where their activities have been extensively characterized, TAp63 prevents premature aging by regulating the quiescence and genomic stability of stem cells required for wound healing and hair regeneration, while ΔNp63 controls maintenance and terminal differentiation of epidermal basal cells. This functional diversity is surprising given that these isoforms share a high degree of similarity, including an identical sequence for a DNA-binding domain. To understand the mechanisms of the transcriptional programs regulated by each p63 isoform and leading to diverse biological functions, we performed genome-wide analyses using p63 isoform-specific chromatin immunoprecipitation, RNA sequencing, and metabolomics of TAp63-/- and ΔNp63-/- mouse epidermal cells. Our data indicate that TAp63 and ΔNp63 physically and functionally interact with distinct transcription factors for the downstream regulation of their target genes, thus ultimately leading to the regulation of unique transcriptional programs and biological processes. Our findings unveil novel transcriptomes regulated by the p63 isoforms to control diverse biological functions, including the cooperation between TAp63 and NRF2 in the modulation of metabolic pathways and response to oxidative stress providing a mechanistic explanation for the TAp63 knock out phenotypes.
Significance:
The p63 isoforms, TAp63 and ΔNp63, control epithelial morphogenesis and tumorigenesis through the interaction with distinct transcription factors and the subsequent regulation of unique transcriptional programs.
Insights
The p63 isoforms, TAp63 and ΔNp63, control skin cell functions by interacting with different transcription factors. This leads to unique gene expression programs, explaining their diverse roles in development and disease.
Area of Science:
- Molecular Biology
- Developmental Biology
- Cancer Biology
Background:
- The TP63 gene encodes TAp63 and ΔNp63 isoforms with distinct roles in epidermal development and cancer.
- Despite sharing a DNA-binding domain, these isoforms regulate unique biological functions, including stem cell maintenance, differentiation, and aging.
- Understanding the molecular mechanisms underlying these distinct functions is crucial for comprehending epithelial biology and disease.
Purpose of the Study:
- To elucidate the distinct transcriptional programs regulated by TAp63 and ΔNp63 isoforms.
- To identify the mechanisms by which these isoforms achieve functional diversity despite structural similarities.
- To uncover novel interactions and pathways controlled by p63 isoforms in epidermal cells.
Main Methods:
- Genome-wide analyses including p63 isoform-specific chromatin immunoprecipitation (ChIP).
- RNA sequencing (RNA-seq) to profile gene expression changes.
- Metabolomics to assess metabolic alterations in TAp63-/- and ΔNp63-/- mouse epidermal cells.
Main Results:
- TAp63 and ΔNp63 interact with distinct transcription factors to regulate unique downstream target genes.
- Identification of novel transcriptomes specifically controlled by each p63 isoform.
- Demonstrated cooperation between TAp63 and NRF2 in regulating metabolic pathways and oxidative stress response.
Conclusions:
- p63 isoforms achieve functional specificity through interactions with different transcription factors, leading to distinct transcriptional outputs.
- These findings provide mechanistic insights into the diverse roles of p63 in epidermal homeostasis, aging, and potentially cancer.
- The study highlights the importance of isoform-specific regulation in complex biological processes.
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