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Yeast As a Chassis for Developing Functional Assays to Study Human P53
Published on: August 4, 2019
Cancer-associated mutations in the ribosomal protein L5 gene dysregulate the HDM2/p53-mediated ribosome biogenesis
Ines Oršolić1, Slađana Bursać1, Deana Jurada1
1Department of Molecular Medicine and Biotechnology, University of Rijeka, Faculty of Medicine, Rijeka, 51000, Croatia.
Abstract:
Perturbations in ribosome biogenesis have been associated with cancer. Such aberrations activate p53 through the RPL5/RPL11/5S rRNA complex-mediated inhibition of HDM2. Studies using animal models have suggested that this signaling pathway might constitute an important anticancer barrier. To gain a deeper insight into this issue in humans, here we analyze somatic mutations in RPL5 and RPL11 coding regions, reported in The Cancer Genome Atlas and International Cancer Genome Consortium databases. Using a combined computational and statistical approach, complemented by a range of biochemical and functional analyses in human cancer cell models, we demonstrate the existence of several mechanisms by which RPL5 mutations may impair wild-type p53 upregulation and ribosome biogenesis. Unexpectedly, the same approach provides only modest evidence for a similar role of RPL11, suggesting that RPL5 represents a preferred target during human tumorigenesis in cancers with wild-type p53. Furthermore, we find that several functional cancer-associated RPL5 somatic mutations occur as rare germline variants in general population. Our results shed light on the so-far enigmatic role of cancer-associated mutations in genes encoding ribosomal proteins, with implications for our understanding of the tumor suppressive role of the RPL5/RPL11/5S rRNA complex in human malignancies.
Insights
Mutations in RPL5, a gene involved in ribosome biogenesis, are linked to cancer by impairing p53 activation. RPL5 appears to be a key target in human cancers with wild-type p53.
Area of Science:
- Molecular Biology
- Oncology
- Genetics
Background:
- Ribosome biogenesis perturbations are linked to cancer.
- The RPL5/RPL11/5S rRNA complex inhibits HDM2, activating p53 and potentially acting as an anticancer mechanism.
Purpose of the Study:
- To investigate the role of RPL5 and RPL11 somatic mutations in human tumorigenesis.
- To elucidate the mechanisms by which these mutations affect p53 activation and ribosome biogenesis.
Main Methods:
- Analysis of somatic mutations in RPL5 and RPL11 from The Cancer Genome Atlas and International Cancer Genome Consortium databases.
- Computational and statistical analyses.
- Biochemical and functional assays in human cancer cell models.
Main Results:
- RPL5 mutations impair wild-type p53 upregulation and ribosome biogenesis through various mechanisms.
- RPL11 mutations show only modest effects, suggesting RPL5 is a preferred target in wild-type p53 human cancers.
- Cancer-associated RPL5 mutations are found as rare germline variants in the general population.
Conclusions:
- RPL5 mutations play a significant role in human tumorigenesis, particularly in wild-type p53 cancers.
- The RPL5/RPL11/5S rRNA complex's tumor suppressive role in human malignancies is clarified.
- Findings have implications for understanding cancer development and potential therapeutic strategies.
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