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Combined radiation and p53 gene therapy of malignant glioma cells
1Department of Neurological Surgery, University of Wisconsin School of Medicine, Madison 53792-3232, USA. badie@neuro-novell.neurosurg.wisc.edu
Abstract:
More than half of malignant gliomas reportedly have alterations in the p53 tumor suppressor gene. Because p53 plays a key role in the cellular response to DNA-damaging agents, we investigated the role of p53 gene therapy before ionizing radiation in cultured human glioma cells containing normal or mutated p53. Three established human glioma cell lines expressing the wild-type (U87 MG, p53wt) or mutant (A172 and U373 MG, p53mut) p53 gene were transduced by recombinant adenoviral vectors bearing human p53 (Adp53) and Escherichia coli beta-galactosidase genes (AdLacZ, control virus) before radiation (0-20 Gy). Changes in p53, p21, and Bax expression were studied by Western immunoblotting, whereas cell cycle alterations and apoptosis were investigated by flow cytometry and nuclear staining. Survival was assessed by clonogenic assays. Within 48 hours of Adp53 exposure, all three cell lines demonstrated p53 expression at a viral multiplicity of infection of 100. p21, which is a p53-inducible downstream effector gene, was overexpressed, and cells were arrested in the G1 phase. Bax expression, which is thought to play a role in p53-induced apoptosis, did not change with either radiation or Adp53. Apoptosis and survival after p53 gene therapy varied. U87 MG (p53wt) cells showed minimal apoptosis after Adp53, irradiation, or combined treatments. U373 MG (p53mut) cells underwent massive apoptosis and died within 48 hours of Adp53 treatment, independent of irradiation. Surprisingly, A172 (p53mut) cells demonstrated minimal apoptosis after Adp53 exposure; however, unlike U373 MG cells, apoptosis increased with radiation dose. Survival of all three cell lines was reduced dramatically after >10 Gy. Although Adp53 transduction significantly reduced the survival of U373 MG cells and inhibited A172 growth, it had no effect on the U87 MG cell line. Transduction with AdLacZ did not affect apoptosis or cell cycle progression and only minimally affected survival in all cell lines. We conclude that responses to p53 gene therapy are variable among gliomas and most likely depend upon both cellular p53 status and as yet ill-defined downstream pathways involving activation of cell cycle regulatory and apoptotic genes.
Insights
p53 gene therapy combined with radiation shows variable responses in glioma cells. Glioma cell responses to p53 gene therapy depend on p53 status and downstream pathways.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Malignant gliomas frequently exhibit alterations in the p53 tumor suppressor gene.
- The p53 gene is crucial for cellular responses to DNA damage.
Purpose of the Study:
- To investigate the efficacy of p53 gene therapy prior to ionizing radiation in human glioma cells.
- To determine if p53 gene therapy's effectiveness correlates with the p53 gene's status (wild-type or mutated).
Main Methods:
- Three human glioma cell lines (U87 MG - p53wt, A172 - p53mut, U373 MG - p53mut) were transduced with adenoviral vectors carrying the p53 gene (Adp53) or a control gene (AdLacZ).
- Cells were subsequently exposed to ionizing radiation (0-20 Gy).
- Expression of p53, p21, and Bax, cell cycle progression, apoptosis, and cell survival were analyzed.
Main Results:
- Adp53 transduction led to p53 expression, p21 overexpression, and G1 cell cycle arrest in all cell lines.
- Apoptosis and survival varied significantly: U373 MG (p53mut) cells showed massive apoptosis with Adp53 alone, A172 (p53mut) cells showed increased apoptosis with combined Adp53 and radiation, while U87 MG (p53wt) cells showed minimal response.
- Adp53 significantly reduced survival in U373 MG and inhibited growth in A172 cells, but had no effect on U87 MG cells.
Conclusions:
- Glioma cell responses to p53 gene therapy are heterogeneous.
- Therapeutic outcomes are influenced by the intrinsic p53 gene status and complex downstream signaling pathways regulating cell cycle and apoptosis.