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Turning on the light for brain tumor surgery: A 5-aminolevulinic acid story
David J McCracken1, Alexander J Schupper2, Nikita Lakomkin3
1Department of Neurosurgery, Piedmont Healthcare, Atlanta, Georgia, USA.
Abstract:
To aid surgeons in more complete and safe resection of brain tumors, adjuvant technologies have been developed to improve visualization of target tissue. Fluorescence-guided surgery relies on the use of fluorophores and specific light wavelengths to better delineate tumor tissue, inflammation, and areas of blood-brain barrier breakdown. 5-aminolevulinic acid (5-ALA), the first fluorophore developed specifically for brain tumors, accumulates within tumor cells, improving visualization of tumors both at the core, and infiltrative margin. Here, we describe the background of how 5-ALA integrated into the modern neurosurgery practice, clinical evidence for the current use of 5-ALA, and future directions for its role in neurosurgical oncology. Maximal safe resection remains the standard of care for most brain tumors. Gross total resection of high-grade gliomas (HGGs) is associated with greater overall survival and progression-free survival (PFS) in comparison to subtotal resection or adjuvant treatment therapies alone.1-3 A major challenge neurosurgeons encounter when resecting infiltrative gliomas is identification of the glioma tumor margin to perform a radical resection while avoiding and preserving eloquent regions of the brain. 5-aminolevulinic acid (5-ALA) remains the only optical-imaging agent approved by the FDA for use in glioma surgery and identification of tumor tissue.4 A multicenter randomized, controlled trial revealed that 5-ALA fluorescence-guided surgery (FGS) almost doubled the extent of tumor resection and also improved 6-month PFS.5 In this review, we will highlight the current evidence for use of 5-ALA FGS in brain tumor surgery, as well as discuss the future directions for its use.
Insights
5-aminolevulinic acid (5-ALA) fluorescence-guided surgery nearly doubles tumor resection extent in glioma patients. This technique improves visualization of tumor margins, enhancing surgical outcomes and progression-free survival.
Area of Science:
- Neurosurgical Oncology
- Medical Imaging
- Optical Diagnostics
Background:
- Maximal safe resection is crucial for high-grade glioma (HGG) patient outcomes.
- Identifying infiltrative glioma margins is a significant surgical challenge.
- 5-aminolevulinic acid (5-ALA) is the sole FDA-approved optical imaging agent for glioma surgery.
Approach:
- 5-ALA accumulates in tumor cells, enabling fluorescence visualization.
- Fluorescence-guided surgery (FGS) uses specific light wavelengths to delineate tumor tissue.
- This review covers 5-ALA's integration into neurosurgery, clinical evidence, and future applications.
Key Points:
- 5-ALA FGS almost doubled the extent of tumor resection in a key trial.
- Improved visualization aids in identifying both tumor core and infiltrative margins.
- Enhanced resection contributes to better overall and progression-free survival (PFS).
Conclusions:
- 5-ALA FGS is a valuable tool for improving glioma resection completeness and safety.
- Continued research and integration of 5-ALA will advance neurosurgical oncology.
- Future directions may expand the role of optical imaging in brain tumor treatment.

