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Published on: July 28, 2013
Molecular Aberrations Associated with Seizure Control in Diffuse Astrocytic and Oligodendroglial Tumors
Hime Suzuki1, Nobuhiro Mikuni1, Shintaro Sugita2
1Department of Neurosurgery, Sapporo Medical University.
Abstract:
Diffuse astrocytic and oligodendroglial tumors are frequently associated with symptomatic epilepsy, and predictive seizure control is important for the improvement of patient quality of life. To elucidate the factors related to drug resistance of brain tumor-associated epilepsy from a pathological perspective. From January 2012 to October 2017, 36 patients diagnosed with diffuse astrocytic or oligodendroglial tumors were included. Assessment for seizure control was performed according to the Engel classification of seizures. Patient clinical, radiological, and pathological data were stratified based on the following 16 variables: age, sex, location of tumor, existence of the preoperative seizure, extent of resection, administration of temozolomide, radiation therapy, recurrence, Karnofsky performance scale, isocitrate dehydrogenase 1, 1p/19q co-deletion, Olig2, platelet-derived growth factor receptor alpha, p53, ATRX, and Ki67. These factors were compared between the well-controlled group and drug-resistant seizure group. Twenty-seven patients experienced seizures; of these, 14 cases were well-controlled, and 13 cases were drug-resistant. Neither clinical nor radiological characteristics were significantly different between these two groups, though p53 immunodetection levels were significantly higher, and the frequency of 1p/19q co-deletion was significantly lower in the group with drug-resistant seizures than in the well-controlled group. In the multivariate analysis, only one item was selected according to stepwise methods, and a significant difference was observed for p53 (OR, 21.600; 95% CI, 2.135-218.579; P = 0.009). Upregulation of p53 may be a molecular mechanism underlying drug resistant epilepsy associated with diffuse astrocytic and oligodendroglial tumors.
Insights
Upregulation of p53 is linked to drug-resistant epilepsy in diffuse gliomas. Lower 1p/19q co-deletion also indicates resistance, suggesting p53 as a key factor in treatment outcomes for brain tumor-associated epilepsy.
Area of Science:
- Neuro-oncology
- Epileptology
- Molecular Pathology
Background:
- Diffuse astrocytic and oligodendroglial tumors frequently cause epilepsy, impacting patient quality of life.
- Predicting and managing drug-resistant seizures is crucial for these patients.
- Understanding pathological factors is key to improving seizure control.
Purpose of the Study:
- To identify pathological factors associated with drug-resistant epilepsy in patients with diffuse gliomas.
- To compare clinical, radiological, and pathological variables between well-controlled and drug-resistant seizure groups.
Main Methods:
- Retrospective analysis of 36 patients with diffuse astrocytic or oligodendroglial tumors (2012-2017).
- Assessment of seizure control using the Engel classification.
- Stratification and comparison of 16 clinical, radiological, and pathological variables, including p53 and 1p/19q co-deletion status.
Main Results:
- No significant differences in clinical or radiological characteristics between seizure control groups.
- Significantly higher p53 immunodetection and lower frequency of 1p/19q co-deletion in the drug-resistant group.
- Multivariate analysis identified p53 upregulation as a significant predictor of drug resistance (OR, 21.600; P = 0.009).
Conclusions:
- Upregulation of p53 is a potential molecular mechanism for drug-resistant epilepsy in diffuse gliomas.
- Reduced 1p/19q co-deletion may also contribute to seizure resistance.
- These findings highlight p53 as a target for improving epilepsy management in brain tumor patients.
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