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p73-Governed miRNA Networks: Translating Bioinformatics Approaches to Therapeutic Solutions for Cancer Metastasis
Stella Logotheti1, Stephan Marquardt1, Brigitte M Pützer2
1Institute of Experimental Gene Therapy and Cancer Research, Rostock University Medical Center, Rostock, Germany.
Abstract:
The transcription factor p73 synthesizes a large number of isoforms and presents high structural and functional homology with p53, a well-known tumor suppressor and a famous "Holy Grail" of anticancer targeting. p73 has attracted increasing attention mainly because (a) unlike p53, p73 is rarely mutated in cancer, (b) some p73 isoforms can inhibit all hallmarks of cancer, and (c) it has the ability to mimic oncosuppressive functions of p53, even in p53-mutated cells. These attributes render p73 and its downstream pathways appealing for therapeutic targeting, especially in mutant p53-driven cancers. p73 functions are, at least partly, mediated by microRNAs (miRNAs), which constitute nodal components of p73-governed networks. p73 not only regulates transcription of crucial miRNA genes, but is also predicted to affect miRNA populations in a transcription-independent manner by developing protein-protein interactions with components of the miRNA processing machinery. This combined effect of p73, both in miRNA transcription and maturation, appears to be isoform-dependent and can result in a systemic switch of cell miRNomes toward either an anti-oncogenic or oncogenic outcome. In this review, we combine literature search with bioinformatics approaches to reconstruct the p73-governed miRNA network and discuss how these crosstalks may be exploited to develop next-generation therapeutics.
Insights
The transcription factor p73, similar to p53, regulates microRNAs (miRNAs) and can be targeted for cancer therapy. Its isoform-dependent effects on miRNA networks offer new therapeutic strategies for mutant p53 cancers.
Area of Science:
- Molecular Biology
- Genetics
- Oncology
Background:
- The transcription factor p73 shares homology with p53, a tumor suppressor.
- p73 is rarely mutated in cancer and can suppress tumors, making it a therapeutic target.
- p73 regulates microRNA (miRNA) networks, influencing cancer hallmarks.
Purpose of the Study:
- To review the role of p73 in regulating miRNA networks.
- To explore the therapeutic potential of targeting p73-miRNA interactions in cancer.
- To reconstruct the p73-governed miRNA network.
Main Methods:
- Literature search
- Bioinformatics approaches
- Network reconstruction
Main Results:
- p73 regulates miRNA transcription and processing in an isoform-dependent manner.
- p73-miRNA interactions can lead to either anti-oncogenic or oncogenic outcomes.
- The p73-miRNA network presents therapeutic opportunities.
Conclusions:
- p73-miRNA crosstalk is a promising area for developing novel cancer therapeutics.
- Targeting p73 pathways could be effective in mutant p53 cancers.
- Understanding p73 isoform-specific functions is crucial for therapeutic development.
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