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Scanning Fiber Endoscope Improves Detection of 5-Aminolevulinic Acid-Induced Protoporphyrin IX Fluorescence at the Boundary of Infiltrative Glioma

Overview
Journal World Neurosurg
Publisher Elsevier
Date 2018 Feb 7
PMID 29408716
Citations 27
Authors
Affiliations
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Abstract

Objective: Fluorescence-guided surgery with protoporphyrin IX (PpIX) as a photodiagnostic marker is gaining acceptance for resection of malignant gliomas. Current wide-field imaging technologies do not have sufficient sensitivity to detect low PpIX concentrations. We evaluated a scanning fiber endoscope (SFE) for detection of PpIX fluorescence in gliomas and compared it to an operating microscope (OPMI) equipped with a fluorescence module and to a benchtop confocal laser scanning microscope (CLSM).

Methods: 5-Aminolevulinic acid-induced PpIX fluorescence was assessed in GL261-Luc2 cells in vitro and in vivo after implantation in mouse brains, at an invading glioma growth stage, simulating residual tumor. Intraoperative fluorescence of high and low PpIX concentrations in normal brain and tumor regions with SFE, OPMI, CLSM, and histopathology were compared.

Results: SFE imaging of PpIX correlated to CLSM at the cellular level. PpIX accumulated in normal brain cells but significantly less than in glioma cells. SFE was more sensitive to accumulated PpIX in fluorescent brain areas than OPMI (P < 0.01) and dramatically increased imaging time (>6×) before tumor-to-background contrast was diminished because of photobleaching.

Conclusions: SFE provides new endoscopic capabilities to view PpIX-fluorescing tumor regions at cellular resolution. SFE may allow accurate imaging of 5-aminolevulinic acid labeling of gliomas and other tumor types when current detection techniques have failed to provide reliable visualization. SFE was significantly more sensitive than OPMI to low PpIX concentrations, which is relevant to identifying the leading edge or metastasizing cells of malignant glioma or to treating low-grade gliomas. This new application has the potential to benefit surgical outcomes.

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References
1.
Ericson M, Grapengiesser S, Gudmundson F, Wennberg A, Larko O, Moan J . A spectroscopic study of the photobleaching of protoporphyrin IX in solution. Lasers Med Sci. 2003; 18(1):56-62. DOI: 10.1007/s10103-002-0254-2. View

2.
Susaki E, Tainaka K, Perrin D, Yukinaga H, Kuno A, Ueda H . Advanced CUBIC protocols for whole-brain and whole-body clearing and imaging. Nat Protoc. 2015; 10(11):1709-27. DOI: 10.1038/nprot.2015.085. View

3.
Rapp M, Kamp M, Steiger H, Sabel M . Endoscopic-assisted visualization of 5-aminolevulinic acid-induced fluorescence in malignant glioma surgery: a technical note. World Neurosurg. 2013; 82(1-2):e277-9. DOI: 10.1016/j.wneu.2013.07.002. View

4.
Webber J, Kessel D, Fromm D . On-line fluorescence of human tissues after oral administration of 5-aminolevulinic acid. J Photochem Photobiol B. 1997; 38(2-3):209-14. DOI: 10.1016/s1011-1344(96)07445-3. View

5.
Stummer W, Tonn J, Goetz C, Ullrich W, Stepp H, Bink A . 5-Aminolevulinic acid-derived tumor fluorescence: the diagnostic accuracy of visible fluorescence qualities as corroborated by spectrometry and histology and postoperative imaging. Neurosurgery. 2013; 74(3):310-9. PMC: 4206350. DOI: 10.1227/NEU.0000000000000267. View