Brain tumor radiosurgery. Current status and strategies to enhance the effect of radiosurgery
- 1. Univ. of Pittsburgh Medical Center, PA (United States)
Description
First, the current status of brain tumor radiosurgery is reviewed, and radiosurgery for brain tumors, including benign tumors, malignant tumors, primary glial tumors, and metastatic tumors, is described. Rapid developments in neuroimaging, stereotactic techniques, and robotic technology in the last decade have contributed to improved results and wider applications of radiosurgery. Radiosurgery has become the preferred management modality for many intracranial tumors, including schwannomas, meningiomas, and metastatic tumors. Although radiosurgery provides survival benefits in patients with diffuse malignant brain tumors, cure is still not possible. Microscopic tumor infiltration into surrounding normal tissue is the main cause of recurrence. Additional strategies are needed to specifically target tumor cells. Next, strategies to enhance the effect of radiosurgery are reviewed. Whereas the long-term clinical results of radiosurgery have established its role in the treatment of benign tumors, additional strategies are needed to improve cell killing in malignant brain tumors and to protect normal surrounding brain. The first strategy included the use of various agents to protect normal brain while delivering a high dose to the tumor cells, but finding an effective radioprotective agent has been problematic. Pentobarbital and 21-aminosteroid (21-AS) are presented as examples. The second strategy for radiation protection aimed at the repair of radiation-induced damage to the normal brain. The cause of radiation-induced breakdown of normal tissue is unclear. The white matter and the cerebral vasculature appear to be particularly susceptible to radiation. Oligodendrocytes and endothelial cells may be critical targets of radiation. The authors hypothesize that radiation-induced damage to these cell types can be repaired by neural stem cells. They also describe the use of tumor necrosis factor alpha (TNF-alpha) and neural stem cells as a means of enhancing the effect of radiosurgery either by radiation sensitization or by a synergistic action. In the future, gene transfer to sensitize malignant tumor cells to radiosurgery may provide enhanced tumor cell killing, while radioprotective agents will prevent damage to surrounding normal tissue. (K.H.)
Additional details
Publishing Information
- Journal Title
- Brain Tumor Pathology
- Journal Volume
- 17
- Journal Issue
- 2
- Journal Page Range
- p. 89-96
- ISSN
- 0914-8108
INIS
- Country of Publication
- Japan
- Country of Input or Organization
- Japan
- INIS RN
- 32033307
- Subject category
- S62: RADIOLOGY AND NUCLEAR MEDICINE;
- Descriptors DEI
- ADENOMAS; BRAIN; CEREBRUM; GENES; GLIOMAS; METASTASES; NEMBUTAL; NEOPLASMS; PATIENTS; RADIOPROTECTIVE SUBSTANCES; RADIOSENSITIZERS; RADIOTHERAPY; REVIEWS
- Descriptors DEC
- ANESTHETICS; AZINES; BARBITURATES; BODY; BRAIN; CARCINOMAS; CENTRAL NERVOUS SYSTEM; CENTRAL NERVOUS SYSTEM AGENTS; CENTRAL NERVOUS SYSTEM DEPRESSANTS; DISEASES; DOCUMENT TYPES; DRUGS; HETEROCYCLIC COMPOUNDS; HYPNOTICS AND SEDATIVES; MEDICINE; NEOPLASMS; NERVOUS SYSTEM; NERVOUS SYSTEM DISEASES; NUCLEAR MEDICINE; ORGANIC COMPOUNDS; ORGANIC NITROGEN COMPOUNDS; ORGANIC OXYGEN COMPOUNDS; ORGANS; PYRIMIDINES; RADIOLOGY; RESPONSE MODIFYING FACTORS; THERAPY