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Yeast As a Chassis for Developing Functional Assays to Study Human P53
Published on: August 4, 2019
O6-methylguanine-induced transcriptional mutagenesis reduces p53 tumor-suppressor function
Monika Ezerskyte1, João A Paredes1, Stefano Malvezzi1
1Unit of Biochemical Toxicology, Institute of Environmental Medicine, Karolinska Institutet, SE-171 77 Stockholm, Sweden.
Abstract:
Altered protein function due to mutagenesis plays an important role in disease development. This is perhaps most evident in tumorigenesis and the associated loss or gain of function of tumor-suppressor genes and oncogenes. The extent to which lesion-induced transcriptional mutagenesis (TM) influences protein function and its contribution to the development of disease is not well understood. In this study, the impact of O6-methylguanine on the transcription fidelity of p53 and the subsequent effects on the protein's function as a regulator of cell death and cell-cycle arrest were examined in human cells. Levels of TM were determined by RNA-sequencing. In cells with active DNA repair, misincorporation of uridine opposite the lesion occurred in 0.14% of the transcripts and increased to 14.7% when repair by alkylguanine-DNA alkyltransferase was compromised. Expression of the dominant-negative p53 R248W mutant due to TM significantly reduced the transactivation of several established p53 target genes that mediate the tumor-suppressor function, including CDKN1A (p21) and BBC3 (PUMA). This resulted in deregulated signaling through the retinoblastoma protein and loss of G1/S cell-cycle checkpoint function. In addition, we observed impaired activation of apoptosis coupled to the reduction of the tumor-suppressor functions of p53. Taking these findings together, this work provides evidence that TM can induce phenotypic changes in mammalian cells that have important implications for the role of TM in tumorigenesis.
Insights
Transcriptional mutagenesis (TM) caused by DNA damage, like O6-methylguanine, can alter tumor suppressor protein p53 function. This disruption impairs cell death and cell-cycle arrest, contributing to cancer development.
Area of Science:
- Molecular Biology
- Cancer Research
- Genetics
Background:
- Mutagenesis altering protein function is key in diseases like cancer.
- The role of transcriptional mutagenesis (TM) in disease development is not fully understood.
- O6-methylguanine is a mutagenic lesion that can affect DNA and protein function.
Purpose of the Study:
- To investigate the impact of O6-methylguanine on p53 transcriptional fidelity and function.
- To determine how TM affects p53's role in regulating cell death and cell-cycle arrest.
- To assess the contribution of TM to tumorigenesis.
Main Methods:
- Human cells were used to study the effects of O6-methylguanine.
- RNA-sequencing was employed to quantify levels of TM.
- The transactivation of p53 target genes and cell-cycle checkpoint functions were analyzed.
Main Results:
- TM increased from 0.14% to 14.7% when DNA repair was compromised.
- Expression of a dominant-negative p53 mutant (R248W) due to TM reduced transactivation of CDKN1A (p21) and BBC3 (PUMA).
- This led to deregulated retinoblastoma protein signaling, loss of G1/S cell-cycle arrest, and impaired apoptosis.
Conclusions:
- Transcriptional mutagenesis can induce phenotypic changes in mammalian cells.
- TM can impair the tumor-suppressor functions of p53.
- These findings highlight the significant role of TM in tumorigenesis.
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