Literature DB >> 21055475

Fluorescence lifetime spectroscopy for guided therapy of brain tumors.

Pramod V Butte1, Adam N Mamelak, Miriam Nuno, Serguei I Bannykh, Keith L Black, Laura Marcu.   

Abstract

This study evaluates the potential of time-resolved laser induced fluorescence spectroscopy (TR-LIFS) as intra-operative tool for the delineation of brain tumor from normal brain. Forty two patients undergoing glioma (WHO grade I-IV) surgery were enrolled in this study. A TR-LIFS prototype apparatus (gated detection, fast digitizer) was used to induce in-vivo fluorescence using a pulsed N2 laser (337 nm excitation, 0.7 ns pulse width) and to record the time-resolved spectrum (360-550 nm range, 10 nm interval). The sites of TR-LIFS measurement were validated by conventional histopathology (H&E staining). Parameters derived from the TR-LIFS data including intensity values and time-resolved intensity decay features (average fluorescence lifetime and Laguerre coefficients values) were used for tissue characterization and classification. 71 areas of tumor and normal brain were analyzed. Several parameters allowed for the differentiation of distinct tissue types. For example, normal cortex (N=35) and normal white matter (N=12) exhibit a longer-lasting fluorescence emission at 390 nm (τ390=2.12±0.10 ns) when compared with 460 nm (τ460=1.16±0.08 ns). High grade glioma (grades III and IV) samples (N=17) demonstrate emission peaks at 460 nm, with large variation at 390 nm while low grade glioma (I and II) samples (N=7) demonstrated a peak fluorescence emission at 460 nm. A linear discriminant algorithm allowed for the classification of low-grade gliomas with 100% sensitivity and 98% specificity. High-grade glioma demonstrated a high degree of heterogeneity thus reducing the discrimination accuracy of these tumors to 47% sensitivity and 94% specificity. Current findings demonstrate that TR-LIFS holds the potential to diagnose brain tumors intra-operatively and to provide a valuable tool for aiding the neurosurgeon-neuropathologist team in to rapidly distinguish between tumor and normal brain during surgery. Copyright Â
© 2010 Elsevier Inc. All rights reserved.

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Year:  2010        PMID: 21055475      PMCID: PMC3335732          DOI: 10.1016/j.neuroimage.2010.11.001

Source DB:  PubMed          Journal:  Neuroimage        ISSN: 1053-8119            Impact factor:   6.556


  55 in total

1.  Effects of fiber-optic probe design and probe-to-target distance on diffuse reflectance measurements of turbid media: an experimental and computational study at 337 nm.

Authors:  Thanassis Papaioannou; Norris W Preyer; Qiyin Fang; Adam Brightwell; Michael Carnohan; Greg Cottone; Russel Ross; Linda R Jones; Laura Marcu
Journal:  Appl Opt       Date:  2004-05-10       Impact factor: 1.980

2.  Brain tissue autofluorescence: an aid for intraoperative delineation of tumor resection margins.

Authors:  G Bottiroli; A C Croce; D Locatelli; R Nano; E Giombelli; A Messina; E Benericetti
Journal:  Cancer Detect Prev       Date:  1998

Review 3.  [Advances in adults' gliomas biology, imaging and treatment].

Authors:  F Ducray; G Dutertre; D Ricard; E Gontier; A Idbaih; C Massard
Journal:  Bull Cancer       Date:  2010-01       Impact factor: 1.276

4.  Diagnostic potential of autofluorescence for an assisted intraoperative delineation of glioblastoma resection margins.

Authors:  Anna C Croce; Sabrina Fiorani; Donata Locatelli; Rosanna Nano; Mauro Ceroni; Flavio Tancioni; Ermanno Giombelli; Eugenio Benericetti; Giovanni Bottiroli
Journal:  Photochem Photobiol       Date:  2003-03       Impact factor: 3.421

5.  Photodynamic therapy of brain tumors--a work in progress.

Authors:  Paul J Muller; Brian C Wilson
Journal:  Lasers Surg Med       Date:  2006-06       Impact factor: 4.025

6.  Diagnosis of meningioma by time-resolved fluorescence spectroscopy.

Authors:  Pramod V Butte; Brian K Pikul; Aviv Hever; William H Yong; Keith L Black; Laura Marcu
Journal:  J Biomed Opt       Date:  2005 Nov-Dec       Impact factor: 3.170

Review 7.  Therapeutic advances in malignant glioma: current status and future prospects.

Authors:  H Ian Robins; Andrew B Lassman; Deepak Khuntia
Journal:  Neuroimaging Clin N Am       Date:  2009-11       Impact factor: 2.264

8.  Optical touch pointer for fluorescence guided glioblastoma resection using 5-aminolevulinic acid.

Authors:  Neda Haj-Hosseini; Johan Richter; Stefan Andersson-Engels; Karin Wårdell
Journal:  Lasers Surg Med       Date:  2010-01       Impact factor: 4.025

9.  New methods for time-resolved fluorescence spectroscopy data analysis based on the Laguerre expansion technique--applications in tissue diagnosis.

Authors:  J A Jo; L Marcu; Q Fang; T Papaioannou; J H Qiao; M C Fishbein; B Beseth; A H Dorafshar; T Reil; D Baker; J Freischlag
Journal:  Methods Inf Med       Date:  2007       Impact factor: 2.176

10.  Diagnostic potential of laser-induced autofluorescence emission in brain tissue.

Authors:  Y G Chung; J A Schwartz; C M Gardner; R E Sawaya; S L Jacques
Journal:  J Korean Med Sci       Date:  1997-04       Impact factor: 2.153

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  34 in total

1.  Comparing high-resolution microscopy techniques for potential intraoperative use in guiding low-grade glioma resections.

Authors:  Daphne Meza; Danni Wang; Yu Wang; Sabine Borwege; Nader Sanai; Jonathan T C Liu
Journal:  Lasers Surg Med       Date:  2015-04-14       Impact factor: 4.025

Review 2.  Fluorescence lifetime techniques in medical applications.

Authors:  Laura Marcu
Journal:  Ann Biomed Eng       Date:  2012-01-25       Impact factor: 3.934

3.  Spectral and lifetime domain measurements of rat brain tumors.

Authors:  D Abi Haidar; B Leh; M Zanello; R Siebert
Journal:  Biomed Opt Express       Date:  2015-03-11       Impact factor: 3.732

Review 4.  Review of the potential of optical technologies for cancer diagnosis in neurosurgery: a step toward intraoperative neurophotonics.

Authors:  Fartash Vasefi; Nicholas MacKinnon; Daniel L Farkas; Babak Kateb
Journal:  Neurophotonics       Date:  2016-12-26       Impact factor: 3.593

Review 5.  Optical technologies for intraoperative neurosurgical guidance.

Authors:  Pablo A Valdés; David W Roberts; Fa-Ke Lu; Alexandra Golby
Journal:  Neurosurg Focus       Date:  2016-03       Impact factor: 4.047

6.  Advances in Imaging: Brain Tumors to Alzheimer's Disease.

Authors:  Rameshwar Patil; Yosef Koronyo; Alexander V Ljubimov; Brenda Salumbides; Adam Mamelak; Pallavi R Gangalum; Hui Ding; Jose Portilla-Arias; Eggehard Holler; Pramod Butte; Maya Koronyo-Hamaoui; Julia Y Ljubimova; Keith L Black
Journal:  Bangk Med J       Date:  2015-09

7.  Real-time diagnosis and visualization of tumor margins in excised breast specimens using fluorescence lifetime imaging and machine learning.

Authors:  Jakob Unger; Christoph Hebisch; Jennifer E Phipps; João L Lagarto; Hanna Kim; Morgan A Darrow; Richard J Bold; Laura Marcu
Journal:  Biomed Opt Express       Date:  2020-02-14       Impact factor: 3.732

Review 8.  In vivo bio-imaging using chlorotoxin-based conjugates.

Authors:  Mark R Stroud; Stacey J Hansen; James M Olson
Journal:  Curr Pharm Des       Date:  2011-12       Impact factor: 3.116

9.  Combined fluorescence and reflectance spectroscopy for in vivo quantification of cancer biomarkers in low- and high-grade glioma surgery.

Authors:  Pablo A Valdés; Anthony Kim; Frederic Leblond; Olga M Conde; Brent T Harris; Keith D Paulsen; Brian C Wilson; David W Roberts
Journal:  J Biomed Opt       Date:  2011-11       Impact factor: 3.170

10.  A novel optical approach to intraoperative detection of parathyroid glands.

Authors:  Melanie A McWade; Constantine Paras; Lisa M White; John E Phay; Anita Mahadevan-Jansen; James T Broome
Journal:  Surgery       Date:  2013-12       Impact factor: 3.982

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