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Published on: January 22, 2019
TP73 Isoform-specific disruption reveals a critical role of TAp73beta in growth suppression and inflammatory response
Jin Zhang1, Wenqiang Sun2,3, Wensheng Yan2,4
1Comparative Oncology Laboratory, Schools of Veterinary Medicine and Medicine, UC Davis, California, Davis, USA. jinzhang@ucdavis.edu.
Abstract:
TP73 is expressed as multiple N- and C-terminal isoforms through two separate promoters or alternative splicing. While N-terminal p73 isoforms have been well studied, very little is known about p73 C-terminal isoforms. Thus, CRISPR was used to delete TP73 Exon13 (E13-KO) to induce p73α to p73β isoform switch. We showed that E13-KO led to decreased cell proliferation and migration and sensitized cells to ferroptosis, which can be reverted by knockdown of TAp73β in E13-KO cells. To understand the biological function of p73β in vivo, we generated a mouse model in that the Trp73 E13 was deleted by CRISPR. We showed that p73α to p73β isoform switch led to increased cellular senescence in mouse embryonic fibroblasts. We also showed that E13-deficient mice exhibited shorter life span and were prone to spontaneous tumors, chronic inflammation and liver steatosis as compared to WT mice. Additionally, we found that the incidence of chronic inflammation and liver steatosis was higher in E13-deficient mice than that in Trp73-deficient mice, suggesting that p73β is a strong inducer of inflammatory response. Mechanistically, we showed that TAp73β was able to induce cysteine dioxygenase 1 (CDO-1), leading to cysteine depletion and subsequently, enhanced ferroptosis and growth suppression. Conversely, knockdown of CDO-1 was able to alleviate the growth suppression and ferroptosis in E13-KO cells. Together, our data suggest that at a physiologically relevant level, TAp73β is a strong inducer of growth suppression but insufficient to compensate for loss of TAp73α in tumor suppression due to aberrant induction of inflammatory response and liver steatosis.
Insights
The tumor protein p73 (TP73) C-terminal isoforms, particularly p73β, induce growth suppression and ferroptosis by upregulating CDO-1. However, p73β also promotes inflammation and liver steatosis, impairing tumor suppression.
Area of Science:
- Molecular Biology
- Cancer Research
- Genetics
Background:
- TP73 gene encodes multiple N- and C-terminal isoforms via separate promoters and alternative splicing.
- While N-terminal p73 isoforms are well-characterized, the functions of C-terminal p73 isoforms remain largely unknown.
Purpose of the Study:
- To investigate the biological roles of p73 C-terminal isoforms, specifically the p73α to p73β isoform switch, in cellular processes and in vivo.
Main Methods:
- CRISPR-Cas9 gene editing was employed to create TP73 Exon 13 knockout (E13-KO) cells and mice.
- Cell proliferation, migration, senescence, and ferroptosis assays were performed.
- In vivo studies involved lifespan analysis, tumor incidence monitoring, and assessment of chronic inflammation and liver steatosis in E13-deficient mice.
Main Results:
- E13-KO induced a p73α to p73β isoform switch, decreasing cell proliferation and migration while sensitizing cells to ferroptosis.
- In vivo, E13-deficient mice exhibited reduced lifespan, increased spontaneous tumors, chronic inflammation, and liver steatosis.
- TAp73β induced cysteine dioxygenase 1 (CDO-1), leading to cysteine depletion, enhanced ferroptosis, and growth suppression.
Conclusions:
- The p73α to p73β isoform switch drives growth suppression and ferroptosis via CDO-1 induction.
- p73β acts as a potent inducer of inflammatory response and liver steatosis, contributing to a shorter lifespan and increased tumor susceptibility.
- While TAp73β induces growth suppression, its aberrant induction of inflammation and steatosis limits its efficacy in tumor suppression compared to TAp73α loss.
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