Distinct functions of wild-type and R273H mutant Δ133p53α differentially regulate glioblastoma aggressiveness and
Sebastien M Joruiz1, Natalia Von Muhlinen1, Izumi Horikawa1
1Laboratory of Human Carcinogenesis, Center for Cancer Research, National Cancer Institute, National Institute of Health, Bethesda, MD, USA.
Abstract:
Despite being mutated in 92% of TP53 mutant cancers, how mutations on p53 isoforms affect their activities remain largely unknown. Therefore, exploring the effect of mutations on p53 isoforms activities is a critical, albeit unexplored area in the p53 field. In this article, we report for the first time a mutant Δ133p53α-specific pathway which increases IL4I1 and IDO1 expression and activates AHR, a tumor-promoting mechanism. Accordingly, while WT Δ133p53α reduces apoptosis to promote DNA repair, mutant R273H also reduces apoptosis but fails to maintain genomic stability, increasing the risks of accumulation of mutations and tumor's deriving towards a more aggressive phenotype. Furthermore, using 2D and 3D spheroids culture, we show that WT Δ133p53α reduces cell proliferation, EMT, and invasion, while the mutant Δ133p53α R273H enhances all three processes, confirming its oncogenic potential and strongly suggesting a similar in vivo activity. Importantly, the effects on cell growth and invasion are independent of mutant full-length p53α, indicating that these activities are actively carried by mutant Δ133p53α R273H. Furthermore, both WT and mutant Δ133p53α reduce cellular senescence in a senescence inducer-dependent manner (temozolomide or radiation) because they regulate different senescence-associated target genes. Hence, WT Δ133p53α rescues temozolomide-induced but not radiation-induced senescence, while mutant Δ133p53α R273H rescues radiation-induced but not temozolomide-induced senescence. Lastly, we determined that IL4I1, IDO1, and AHR are significantly higher in GBMs compared to low-grade gliomas. Importantly, high expression of all three genes in LGG and IL4I1 in GBM is significantly associated with poorer patients' survival, confirming the clinical relevance of this pathway in glioblastomas. These data show that, compared to WT Δ133p53α, R273H mutation reorientates its activities toward carcinogenesis and activates the oncogenic IL4I1/IDO1/AHR pathway, a potential prognostic marker and therapeutic target in GBM by combining drugs specifically modulating Δ133p53α expression and IDO1/Il4I1/AHR inhibitors.
Insights
Mutant p53 isoform Δ133p53α R273H promotes cancer by activating the IL4I1/IDO1/AHR pathway, unlike its wild-type form. This pathway is a potential therapeutic target in glioblastomas.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- TP53 mutations are prevalent in cancers, yet the functional impact of mutations on p53 isoforms remains poorly understood.
- p53 isoforms, including Δ133p53α, play diverse roles in cellular processes, and their altered functions due to mutations can drive tumorigenesis.
Purpose of the Study:
- To investigate the specific effects of wild-type (WT) and mutant (R273H) Δ133p53α on cellular functions and oncogenic pathways.
- To identify novel tumor-promoting mechanisms driven by mutant p53 isoforms and assess their clinical relevance in glioblastomas.
Main Methods:
- Utilized 2D and 3D spheroid cultures to assess cell proliferation, epithelial-mesenchymal transition (EMT), invasion, and apoptosis.
- Analyzed gene expression of IL4I1, IDO1, and AHR, and evaluated cellular senescence induction by temozolomide and radiation.
- Correlated gene expression levels with patient survival data in glioblastoma (GBM) and low-grade glioma (LGG) cohorts.
Main Results:
- Mutant Δ133p53α R273H, unlike WT Δ133p53α, enhances cell proliferation, EMT, and invasion, indicating oncogenic potential.
- Mutant Δ133p53α R273H activates the IL4I1/IDO1/AHR pathway, a mechanism promoting tumor growth, and fails to maintain genomic stability.
- WT and mutant Δ133p53α differentially regulate senescence, with the mutant form associated with poorer survival in GBM patients due to IL4I1/IDO1/AHR pathway activation.
Conclusions:
- The R273H mutation reorients Δ133p53α activity towards carcinogenesis, distinct from WT Δ133p53α's tumor-suppressive functions.
- The IL4I1/IDO1/AHR pathway activated by mutant Δ133p53α represents a potential prognostic marker and therapeutic target in glioblastomas.
- Targeting Δ133p53α expression and the IL4I1/IDO1/AHR pathway offers a promising strategy for glioblastoma treatment.
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