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Published on: May 2, 2014
Optical Principles of Fluorescence-Guided Brain Tumor Surgery: A Practical Primer for the Neurosurgeon
Daniel Y Zhang1, Sunil Singhal2, John Y K Lee1
1Department of Neurosurgery, Hospital of the University of Pennsylvania, Philadelphia, Pennsylvania.
Abstract:
Fluorescence-guided surgery is a rapidly growing field that has produced some of the most important innovations in surgical oncology in the past decade. These intraoperative imaging technologies provide information distinguishing tumor tissue from normal tissue in real time as the surgery proceeds and without disruption of the workflow. Many of these fluorescent tracers target unique molecular or cellular features of tumors, which offers the opportunity for identifying pathology with high precision to help surgeons achieve their primary objective of a maximal safe resection. As novel fluorophores and fluorescent probes emerge from preclinical development, a practical understanding of the principles of fluorescence remains critical for evaluating the clinical utility of these agents and identifying opportunities for further innovation. In this review, we provide an "in-text glossary" of the fundamental principles of fluorescence with examples of direct applications to fluorescence-guided brain surgery. We offer a detailed discussion of the various advantages and limitations of the most commonly used intraoperative imaging agents, including 5-aminolevulinic acid, indocyanine green, and fluorescein, with a particular focus on the photophysical properties of these specific agents as they provide a framework through which to understand the new agents that are entering clinical trials. To this end, we conclude with a survey of the fluorescent properties of novel agents that are currently undergoing or will soon enter clinical trials for the intraoperative imaging of brain tumors.
Insights
Fluorescence-guided surgery uses real-time imaging to differentiate tumor from healthy tissue, enhancing precision in cancer resection. Understanding fluorescence principles is key to developing new imaging agents for improved surgical outcomes.
Area of Science:
- Surgical Oncology
- Medical Imaging
- Biophotonics
Background:
- Fluorescence-guided surgery (FGS) is a key innovation in surgical oncology.
- Intraoperative imaging distinguishes tumor from normal tissue in real-time.
- FGS enhances precision for maximal safe resection.
Purpose of the Study:
- Review fundamental principles of fluorescence for FGS.
- Discuss advantages and limitations of current intraoperative imaging agents.
- Survey novel fluorescent agents for brain tumor imaging.
Main Methods:
- In-text glossary of fluorescence principles.
- Analysis of photophysical properties of common agents (5-ALA, ICG, fluorescein).
- Review of emerging fluorescent probes in clinical trials.
Main Results:
- Established a framework for evaluating FGS agents based on photophysical properties.
- Detailed comparison of 5-aminolevulinic acid, indocyanine green, and fluorescein.
- Identified key characteristics of novel agents entering clinical trials.
Conclusions:
- Understanding fluorescence principles is critical for clinical utility and innovation in FGS.
- Common agents like 5-ALA, ICG, and fluorescein have specific applications and limitations.
- Novel fluorescent agents show promise for advancing intraoperative brain tumor imaging.
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