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Published on: December 28, 2017
Functional MRI for radiotherapy of gliomas
Jenghwa Chang1, Ashwatha Narayana
1Department of Radiation Oncology, New York-Presbyterian Hospital/Weill Cornell Medical College, 525 E 68th St., Box 25, New York, NY 10065, USA.
Abstract:
In this paper, we review the applications of functional magnetic resonance imaging (MRI) for target delineation and critical organ avoidance for brain radiotherapy. In this article we distinguish functional MRI from brain functional MRI (fMRI). Functional MRI includes magnetic resonance spectroscopic imaging (MRSI), perfusion MRI, diffusion tensor imaging (DTI) and brain fMRI. These functional MRI modalities can provide unique metabolic, pathological and physiological information that are not available in anatomic MRI and can potentially improve the treatment outcomes of brain tumors. For example, both choline (Cho) to N-acetylaspartate (NAA) and Cho to creatine (Cr) ratios from MRSI increase with increasing tumor malignancy and can be used to grade gliomas. Relative cerebral blood volume (rCBV) measurements from dynamic susceptibility contrast perfusion magnetic resonance imaging (DSC MRI) are superior to conventional contrast-enhanced MRI in predicting tumor biology and may be even superior to pathologic assessment in predicting patient clinical outcomes. Brain fMRI can help identify and avoid functionally critical areas when constructing treatment plans for brain radiotherapy. In the past, functional MRI measurements have not been routinely used in a clinical arena due to the experimental nature of these imaging modalities. As these methods become more commonly used and effective image co-registration algorithms become available, integration of functional MRI into the treatment process of brain radiotherapy now appears to be clinically feasible, at least in major medical centers.
Insights
Functional MRI techniques like MRSI and fMRI offer valuable metabolic and physiological data for brain radiotherapy. These advanced imaging methods can improve tumor delineation and critical organ avoidance, enhancing treatment outcomes.
Area of Science:
- Radiotherapy
- Neuroimaging
- Oncology
Background:
- Anatomical MRI alone has limitations in providing metabolic and physiological data for brain tumor treatment.
- Functional MRI (fMRI) modalities offer unique insights beyond standard anatomical imaging.
Purpose of the Study:
- To review the applications of functional MRI (fMRI) in brain radiotherapy.
- To highlight the potential of fMRI for target delineation and critical organ avoidance.
- To discuss the clinical feasibility of integrating fMRI into radiotherapy treatment planning.
Main Methods:
- Review of functional MRI techniques including Magnetic Resonance Spectroscopic Imaging (MRSI), perfusion MRI, Diffusion Tensor Imaging (DTI), and brain fMRI.
- Analysis of how these techniques provide metabolic, pathological, and physiological information.
- Discussion of clinical integration challenges and advancements.
Main Results:
- MRSI ratios (e.g., choline to N-acetylaspartate) correlate with glioma malignancy.
- Perfusion MRI (DSC MRI) measurements like relative cerebral blood volume (rCBV) can predict tumor biology and patient outcomes.
- Brain fMRI aids in identifying and avoiding functionally critical brain areas during radiotherapy planning.
Conclusions:
- Functional MRI modalities provide crucial information for improving brain radiotherapy.
- Despite past experimental use, advancements in techniques and co-registration algorithms make clinical integration feasible.
- Wider adoption of fMRI in major centers can enhance precision and outcomes in brain tumor treatment.

