Related Experiment Video
Updated: Aug 2, 2025

Generation of CAR T Cells for Adoptive Therapy in the Context of Glioblastoma Standard of Care
Published on: February 16, 2015
The need of radiotherapy optimization for glioblastomas considering immune responses
Kentaro Nishioka1, Shuhei Takahashi2, Takashi Mori2
1Department of Radiation Oncology, Hokkaido University Hospital, North-15, West-7, Kita-ku, Sapporo, Hokkaido, 060-8638, Japan. k.nishioka@pop.med.hokudai.ac.jp.
Abstract:
Glioblastoma is the most common of malignant primary brain tumors and one of the tumors with the poorest prognosis for which the overall survival rate has not significantly improved despite recent advances in treatment techniques and therapeutic drugs. Since the emergence of immune checkpoint inhibitors, the immune response to tumors has attracted increasing attention. Treatments affecting the immune system have been attempted for various tumors, including glioblastomas, but little has been shown to be effective. It has been found that the reason for this is that glioblastomas have a high ability to evade attacks from the immune system, and that the lymphocyte depletion associated with treatment can reduce its immune function. Currently, research to elucidate the resistance of glioblastomas to the immune system and development of new immunotherapies are being vigorously carried out. Targeting of radiation therapy for glioblastomas varies among guidelines and clinical trials. Based on early reports, target definitions with wide margins are common, but there are also reports that narrowing the margins does not make a significant difference in treatment outcome. It has also been suggested that a large number of lymphocytes in the blood are irradiated by the irradiation treatment to a wide area in a large number of fractionations, which may reduce the immune function, and the blood is being recognized as an organ at risk. Recently, a randomized phase II trial comparing two types of target definition in radiotherapy for glioblastomas was conducted, and it was reported that the overall survival and progression-free survival were significantly better in a small irradiation field group. We review recent findings on the immune response and the immunotherapy to glioblastomas and the novel role of radiotherapy and propose the need to develop an optimal radiotherapy that takes radiation effects on the immune function into account.
Insights
Glioblastoma evades immune attack, limiting immunotherapy. Narrower radiation fields may improve survival by preserving immune function, suggesting a need for immune-considerate radiotherapy.
Area of Science:
- Neuro-oncology
- Immunology
- Radiation Oncology
Background:
- Glioblastoma is an aggressive brain tumor with poor prognosis, largely due to immune evasion.
- Current immunotherapies show limited efficacy because glioblastoma actively suppresses the immune system.
- Radiotherapy target margins for glioblastoma are debated, with potential immune-compromising effects from wide-field irradiation.
Purpose of the Study:
- To review current understanding of glioblastoma's immune response and immunotherapy challenges.
- To explore the role of radiotherapy in glioblastoma treatment, focusing on immune effects.
- To propose the development of optimized radiotherapy strategies that consider immune function.
Main Methods:
- Review of recent findings on glioblastoma immunology and immunotherapy.
- Analysis of radiotherapy target definition strategies and their impact on immune cells.
- Examination of a randomized phase II trial comparing different radiotherapy field sizes.
Main Results:
- Glioblastomas possess mechanisms to evade immune surveillance, hindering treatment effectiveness.
- Wide-field radiotherapy may deplete lymphocytes, reducing overall immune function.
- A smaller irradiation field in radiotherapy for glioblastoma was associated with significantly improved overall and progression-free survival.
Conclusions:
- Optimizing radiotherapy for glioblastoma requires careful consideration of its effects on the immune system.
- Reducing radiation exposure to circulating lymphocytes may enhance treatment outcomes.
- Future research should focus on developing immune-sparing radiotherapy techniques for glioblastoma.

