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Published on: September 10, 2017
p53 determines multidrug sensitivity of childhood neuroblastoma
Chengyuan Xue1, Michelle Haber, Claudia Flemming
1Children's Cancer Institute Australia for Medical Research, Randwick, New South Wales, Australia.
Abstract:
For pediatric cancers like neuroblastoma, the most common extracranial solid tumor of infancy, p53 mutations are rare at diagnosis, but may be acquired after chemotherapy, suggesting a potential role in drug resistance. Heavy metal-selected neuroblastoma cells were found to acquire an unusually broad multidrug resistance (MDR) phenotype but displayed no alterations in genes associated with "classic" MDR. These cells had acquired a mutant p53 gene, linking p53 to drug sensitivity in neuroblastoma. We therefore generated p53-deficient variants in neuroblastoma cell lines with wild-type p53 by transduction of p53-suppressive constructs encoding either short hairpin RNA or a dominant-negative p53 mutant. Analysis of these cells indicated that (a) in contrast to previous reports, wild-type p53 was fully functional in all neuroblastoma lines tested; (b) inactivation of p53 in neuroblastoma cells resulted in establishment of a MDR phenotype; (c) p53-dependent senescence, the primary response of some neuroblastoma cells to DNA damage, is replaced after p53 inactivation by mitotic catastrophe and subsequent apoptosis; (d) knockdown of mutant p53 did not revert the MDR phenotype, suggesting it is determined by p53 inactivation rather than gain of mutant function. These results suggest the importance of p53 status as a prognostic marker of treatment response in neuroblastoma. p53 suppression may have opposite effects on drug sensitivity as determined by analysis of isogenic pairs of tumor cell lines of nonneuroblastoma origin, indicating the importance of tissue context for p53-mediated modulation of tumor cell sensitivity to treatment.
Insights
p53 gene inactivation in neuroblastoma cells leads to multidrug resistance (MDR). This finding highlights p53 status as a key prognostic marker for treatment response in pediatric cancers.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Neuroblastoma, a common infant cancer, rarely has p53 mutations at diagnosis.
- Acquired p53 mutations post-chemotherapy may contribute to drug resistance.
- Heavy metal-selected neuroblastoma cells exhibit multidrug resistance (MDR) without classic MDR gene alterations.
Purpose of the Study:
- To investigate the role of p53 in conferring multidrug resistance (MDR) in neuroblastoma.
- To determine if p53 inactivation, rather than a gain of function, drives MDR.
- To assess the prognostic value of p53 status in neuroblastoma treatment response.
Main Methods:
- Generated p53-deficient neuroblastoma cell lines using short hairpin RNA and dominant-negative p53 constructs.
- Analyzed the drug sensitivity and cellular response to DNA damage in p53-altered cell lines.
- Compared p53 function and MDR phenotypes in neuroblastoma versus non-neuroblastoma cell lines.
Main Results:
- Wild-type p53 was functional in all tested neuroblastoma lines.
- p53 inactivation in neuroblastoma cells induced a MDR phenotype.
- p53 inactivation shifted the response from senescence to mitotic catastrophe and apoptosis.
- Knockdown of mutant p53 did not reverse MDR, indicating p53 loss of function is key.
Conclusions:
- p53 inactivation is a critical driver of multidrug resistance in neuroblastoma.
- p53 status serves as a prognostic marker for neuroblastoma treatment outcomes.
- The effect of p53 on drug sensitivity is context-dependent, varying by tumor type.
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