Optical-sectioning microscopy of protoporphyrin IX fluorescence in human gliomas: standardization and quantitative comparison with histology
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Chengbo Yin | Ye Chen | Nader Sanai | Linpeng Wei | Sabine Borwege | Jonathan T C Liu | Jonathan T. C. Liu | Ye Chen | Sabine Borwege | N. Sanai | Linpeng Wei | Chengbo Yin
[1] Frederic Leblond,et al. 5-Aminolevulinic Acid-Induced Protoporphyrin IX Fluorescence in Meningioma: Qualitative and Quantitative Measurements In Vivo , 2014, Neurosurgery.
[2] G. Barger,et al. Tryptophan PET in pretreatment delineation of newly-diagnosed gliomas: MRI and histopathologic correlates , 2013, Journal of Neuro-Oncology.
[3] H Stepp,et al. Intraoperative detection of malignant gliomas by 5-aminolevulinic acid-induced porphyrin fluorescence. , 1998, Neurosurgery.
[4] N. Sanai,et al. Trends in fluorescence image-guided surgery for gliomas. , 2014, Neurosurgery.
[5] Yu Wang,et al. Video-rate in vivo fluorescence imaging with a line-scanned dual-axis confocal microscope , 2015, Journal of biomedical optics.
[6] Xiao Wang,et al. Needle-based fluorescence endomicroscopy via structured illumination with a plastic, achromatic objective , 2013, Journal of biomedical optics.
[7] C. Daumas-Duport,et al. Diffuse low-grade oligodendrogliomas extend beyond MRI-defined abnormalities , 2010, Neurology.
[8] H. Lynch,et al. Psychologic Aspects of Cancer Genetic Testing: A Research Update for Clinicians , 1997 .
[9] M. Berger,et al. Low-grade hemispheric gliomas in adults: a critical review of extent of resection as a factor influencing outcome. , 2001, Journal of neurosurgery.
[10] Daniela Prayer,et al. 5-Aminolevulinic Acid Induced Fluorescence Is a Powerful Intraoperative Marker for Precise Histopathological Grading of Gliomas with Non-Significant Contrast-Enhancement , 2013, PloS one.
[11] Susan M. Chang,et al. Role of extent of resection in the long-term outcome of low-grade hemispheric gliomas. , 2008, Journal of clinical oncology : official journal of the American Society of Clinical Oncology.
[12] Benjamin F. Grewe,et al. High-speed in vivo calcium imaging reveals neuronal network activity with near-millisecond precision , 2010, Nature Methods.
[13] I. Yang. Intraoperative confocal microscopy in the visualization of 5-aminolevulinic acid fluorescence in low-grade gliomas , 2012 .
[14] Arya Nabavi,et al. FIVE‐AMINOLEVULINIC ACID FOR FLUORESCENCE‐GUIDED RESECTION OF RECURRENT MALIGNANT GLIOMAS: A PHASE II STUDY , 2009, Neurosurgery.
[15] Frederic Leblond,et al. Quantitative fluorescence using 5-aminolevulinic acid-induced protoporphyrin IX biomarker as a surgical adjunct in low-grade glioma surgery. , 2015, Journal of neurosurgery.
[16] Milind Rajadhyaksha,et al. Performance of full-pupil line-scanning reflectance confocal microscopy in human skin and oral mucosa in vivo , 2011, Biomedical optics express.
[17] Y. Wang,et al. Comparison of line-scanned and point-scanned dual-axis confocal microscope performance. , 2013, Optics letters.
[18] V. P. Collins,et al. Intratumor heterogeneity in human glioblastoma reflects cancer evolutionary dynamics , 2013, Proceedings of the National Academy of Sciences.
[19] A. Rouse,et al. In vivo imaging of ovarian tissue using a novel confocal microlaparoscope. , 2010, American journal of obstetrics and gynecology.
[20] Thomas D. Wang,et al. Improved rejection of multiply scattered photons in confocal microscopy using dual-axes architecture. , 2007, Optics letters.
[21] M. Berger,et al. Role of Surgical Resection in Low- and High-Grade Gliomas , 2014, Current Treatment Options in Neurology.
[22] Kaoru Sakatani,et al. Quantitative spectroscopic analysis of 5-aminolevulinic acid-induced protoporphyrin IX fluorescence intensity in diffusely infiltrating astrocytomas. , 2007, Neurologia medico-chirurgica.
[23] Bartolomé Bejarano,et al. Prognostic value of residual fluorescent tissue in glioblastoma patients after gross total resection in 5-aminolevulinic Acid-guided surgery. , 2013, Neurosurgery.
[24] Kristen C. Maitland,et al. In vivo imaging of oral neoplasia using a miniaturized fiber optic confocal reflectance microscope. , 2008, Oral oncology.
[25] Nader Sanai,et al. The Value of Glioma Extent of Resection in the Modern Neurosurgical Era , 2012, Front. Neur..
[26] A. Rezvan,et al. Long-term outcome and survival of surgically treated supratentorial low-grade glioma in adult patients , 2009, Acta Neurochirurgica.
[27] M. Berger,et al. Insular glioma resection: assessment of patient morbidity, survival, and tumor progression. , 2010, Journal of neurosurgery.
[28] Keith D. Paulsen,et al. δ-aminolevulinic acid-induced protoporphyrin IX concentration correlates with histopathologic markers of malignancy in human gliomas: the need for quantitative fluorescence-guided resection to identify regions of increasing malignancy. , 2011, Neuro-oncology.
[29] Tim N. Ford,et al. Fluorescence endomicroscopy with structured illumination. , 2008, Optics express.
[30] Georg Widhalm,et al. What is the Surgical Benefit of Utilizing 5-Aminolevulinic Acid for Fluorescence-Guided Surgery of Malignant Gliomas? , 2015, Neurosurgery.
[31] Gereon R. Fink,et al. Volumetry of [11C]-methionine PET uptake and MRI contrast enhancement in patients with recurrent glioblastoma multiforme , 2009, European Journal of Nuclear Medicine and Molecular Imaging.
[32] Sadao Kaneko,et al. Fluorescence-Guided Resection of Malignant Glioma with 5-ALA , 2016, Int. J. Biomed. Imaging.
[33] Malini Olivo,et al. Mapping ALA-induced PPIX fluorescence in normal brain and brain tumour using confocal fluorescence microscopy. , 2004, International journal of oncology.
[34] Luigi di Stefano,et al. A simple and efficient connected components labeling algorithm , 1999, Proceedings 10th International Conference on Image Analysis and Processing.
[35] K. Paulsen,et al. Glioblastoma multiforme treatment with clinical trials for surgical resection (aminolevulinic acid). , 2012, Neurosurgery clinics of North America.
[36] Jonathan T. C. Liu,et al. A liquid optical phantom with tissue-like heterogeneities for confocal microscopy , 2012, Biomedical optics express.
[37] Summer L. Gibbs,et al. Protoporphyrin IX Level Correlates with Number of Mitochondria, But Increase in Production Correlates with Tumor Cell Size , 2006, Photochemistry and photobiology.
[38] Nathan O. Loewke,et al. Micromirror-scanned dual-axis confocal microscope utilizing a gradient-index relay lens for image guidance during brain surgery. , 2010, Journal of biomedical optics.
[39] Jonathan T. C. Liu,et al. Comparing high‐resolution microscopy techniques for potential intraoperative use in guiding low‐grade glioma resections , 2015, Lasers in surgery and medicine.
[40] F. Zanella,et al. Fluorescence-guided surgery with 5-aminolevulinic acid for resection of malignant glioma: a randomised controlled multicentre phase III trial. , 2006, The Lancet. Oncology.
[41] M. Weller,et al. Specific intensity imaging for glioblastoma and neural cell cultures with 5-aminolevulinic acid-derived protoporphyrin IX , 2004, Journal of Neuro-Oncology.
[42] Harry Moseley,et al. Modelling fluorescence in clinical photodynamic therapy , 2012, Photochemical & Photobiological Sciences.
[43] W. Stummer,et al. The Value of 5-Aminolevulinic Acid in Low-grade Gliomas and High-grade Gliomas Lacking Glioblastoma Imaging Features: An Analysis Based on Fluorescence, Magnetic Resonance Imaging, 18F-Fluoroethyl Tyrosine Positron Emission Tomography, and Tumor Molecular Factors , 2015, Neurosurgery.
[44] Christopher H Contag,et al. Dual-axes confocal reflectance microscope for distinguishing colonic neoplasia. , 2006, Journal of biomedical optics.
[45] Jonathan T. C. Liu,et al. Assessing the tissue-imaging performance of confocal microscope architectures via Monte Carlo simulations. , 2012, Optics letters.
[46] F. Jolesz,et al. Survival rates in patients with low‐grade glioma after intraoperative magnetic resonance image guidance , 2005, Cancer.
[47] Mitchel S Berger,et al. An extent of resection threshold for newly diagnosed glioblastomas. , 2011, Journal of neurosurgery.
[48] Stephen Chad Kanick,et al. Characterization and standardization of tissue-simulating protoporphyrin IX optical phantoms , 2016, Journal of biomedical optics.
[49] M. Rajadhyaksha,et al. Miniature in vivo MEMS-based line-scanned dual-axis confocal microscope for point-of-care pathology. , 2016, Biomedical optics express.
[50] L D Lunsford,et al. Magnetic resonance imaging does not define tumor boundaries. , 1986, Acta radiologica. Supplementum.
[51] S. Tejada Solis,et al. Surgery guided by 5-aminolevulinic fluorescence in glioblastoma: volumetric analysis of extent of resection in single-center experience , 2011, Journal of Neuro-Oncology.
[52] Milind Rajadhyaksha,et al. Confocal theta line-scanning microscope for imaging human tissues. , 2007, Applied optics.
[53] Thomas D. Wang,et al. Efficient rejection of scattered light enables deep optical sectioning in turbid media with low-numerical-aperture optics in a dual-axis confocal architecture. , 2008, Journal of biomedical optics.
[54] A. Rouse,et al. Clinical confocal microlaparoscope for real-time in vivo optical biopsies. , 2009, Journal of biomedical optics.