Transcranial Near-Infrared Laser Transmission (NILT) Profiles (800 nm): Systematic Comparison in Four Common Research Species

被引:55
作者
Lapchak, Paul A. [1 ,2 ]
Boitano, Paul D. [1 ]
Butte, Pramod V. [2 ]
Fisher, David J. [3 ]
Hoelscher, Thilo [3 ]
Ley, Eric J. [4 ]
Nuno, Miriam [2 ]
Voie, Arne H. [3 ]
Rajput, Padmesh S. [2 ]
机构
[1] Cedars Sinai Med Ctr, Dept Neurol, Los Angeles, CA 90048 USA
[2] Cedars Sinai Med Ctr, Dept Neurosurg, Los Angeles, CA 90048 USA
[3] BURL Concepts Inc, San Diego, CA USA
[4] Cedars Sinai Med Ctr, Dept Surg, Los Angeles, CA 90048 USA
关键词
TRAUMATIC BRAIN-INJURY; TERM NEUROLOGICAL DEFICITS; ACUTE ISCHEMIC-STROKE; LIGHT THERAPY; NEUROTHERA EFFECTIVENESS; EMBOLIC STROKES; RAT-BRAIN; IRRADIATION; SAFETY; RABBITS;
D O I
10.1371/journal.pone.0127580
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Background and Purpose Transcranial near-infrared laser therapy (TLT) is a promising and novel method to promote neuroprotection and clinical improvement in both acute and chronic neurodegenerative diseases such as acute ischemic stroke (AIS), traumatic brain injury (TBI), and Alzheimer's disease (AD) patients based upon efficacy in translational animal models. However, there is limited information in the peer-reviewed literature pertaining to transcranial near-infrared laser transmission (NILT) profiles in various species. Thus, in the present study we systematically evaluated NILT characteristics through the skull of 4 different species: mouse, rat, rabbit and human. Results Using dehydrated skulls from 3 animal species, using a wavelength of 800nm and a surface power density of 700 mW/cm(2), NILT decreased from 40.10% (mouse) to 21.24% (rat) to 11.36% (rabbit) as skull thickness measured at bregma increased from 0.44 mm in mouse to 0.83 mm in rat and then 2.11 mm in rabbit. NILT also significantly increased (p<0.05) when animal skulls were hydrated (i.e. compared to dehydrated); but there was no measurable change in thickness due to hydration. In human calvaria, where mean thickness ranged from 7.19 mm at bregma to 5.91 mm in the parietal skull, only 4.18% and 4.24% of applied near-infrared light was transmitted through the skull. There was a slight (9.2-13.4%), but insignificant effect of hydration state on NILT transmission of human skulls, but there was a significant positive correlation between NILT and thickness at bregma and parietal skull, in both hydrated and dehydrated states. Conclusion This is the first systematic study to demonstrate differential NILT through the skulls of 4 different species; with an inverse relationship between NILT and skull thickness. With animal skulls, transmission profiles are dependent upon the hydration state of the skull, with significantly greater penetration through hydrated skulls compared to dehydrated skulls. Using human skulls, we demonstrate a significant correlation between thickness and penetration, but there was no correlation with skull density. The results suggest that TLT should be optimized in animals using novel approaches incorporating human skull characteristics, because of significant variance of NILT profiles directly related to skull thickness.
引用
收藏
页数:17
相关论文
共 38 条
[1]   Comparison of Therapeutic Effects between Pulsed and Continuous Wave 810-nm Wavelength Laser Irradiation for Traumatic Brain Injury in Mice [J].
Ando, Takahiro ;
Xuan, Weijun ;
Xu, Tao ;
Dai, Tianhong ;
Sharma, Sulbha K. ;
Kharkwal, Gitika B. ;
Huang, Ying-Ying ;
Wu, Qiuhe ;
Whalen, Michael J. ;
Sato, Shunichi ;
Obara, Minoru ;
Hamblin, Michael R. .
PLOS ONE, 2011, 6 (10)
[2]   Light promotes regeneration and functional recovery and alters the immune response after spinal cord injury [J].
Byrnes, KR ;
Waynant, RW ;
Ilev, IK ;
Wu, XJ ;
Barna, L ;
Smith, K ;
Heckert, R ;
Gerst, H ;
Anders, JJ .
LASERS IN SURGERY AND MEDICINE, 2005, 36 (03) :171-185
[3]   The Nuts and Bolts of Low-level Laser (Light) Therapy [J].
Chung, Hoon ;
Dai, Tianhong ;
Sharma, Sulbha K. ;
Huang, Ying-Ying ;
Carroll, James D. ;
Hamblin, Michael R. .
ANNALS OF BIOMEDICAL ENGINEERING, 2012, 40 (02) :516-533
[4]   Transcranial Laser Therapy Attenuates Amyloid-β Peptide Neuropathology in Amyloid-β Protein Precursor Transgenic Mice [J].
De Taboada, Luis ;
Yu, Jin ;
El-Amouri, Salim ;
Gattoni-Celli, Sebastiano ;
Richieri, Steve ;
McCarthy, Thomas ;
Streeter, Jackson ;
Kindy, Mark S. .
JOURNAL OF ALZHEIMERS DISEASE, 2011, 23 (03) :521-535
[5]   Clinical and experimental applications of NIR-LED photobiomodulation [J].
Desmet, Kristina D. ;
Paz, David A. ;
Corry, Jesse J. ;
Eells, Janis T. ;
Wong-Riley, Margaret T. T. ;
Henry, Michele M. ;
Buchmann, Ellen V. ;
Connelly, Mary P. ;
Dovi, Julia V. ;
Liang, Huan Ling ;
Henshel, Diane S. ;
Yeager, Ronnie L. ;
Millsap, Deborah S. ;
Lim, Jinhwan ;
Gould, Lisa J. ;
Das, Rina ;
Jett, Marti ;
Hodgson, Brian D. ;
Margolis, David ;
Whelan, Harry T. .
PHOTOMEDICINE AND LASER SURGERY, 2006, 24 (02) :121-128
[6]   Transcranial application of low-energy laser irradiation improves neurological deficits in rats following acute stroke [J].
DeTaboada, L ;
Ilic, S ;
Leichliter-Martha, S ;
Oron, U ;
Oron, A ;
Streeter, J .
LASERS IN SURGERY AND MEDICINE, 2006, 38 (01) :70-73
[7]   Low-Level Laser Therapy Ameliorates Disease Progression in a Mouse Model of Alzheimer's Disease [J].
Farfara, Dorit ;
Tuby, Hana ;
Trudler, Dorit ;
Doron-Mandel, Ella ;
Maltz, Lidya ;
Vassar, Robert J. ;
Frenkel, Dan ;
Oron, Uri .
JOURNAL OF MOLECULAR NEUROSCIENCE, 2015, 55 (02) :430-436
[8]   Recommendations for standards regarding preclinical neuroprotective and restorative drug development [J].
Feinklestein, SP ;
Fisher, M ;
Furland, AJ ;
Goldstein, LB ;
Gorelick, PB ;
Kaste, M ;
Lees, KR ;
Traystman, RJ ;
Albers, GW ;
Anwer, UE ;
Ashwood, T ;
Barone, FC ;
Basta, SL ;
Bogousslavsky, J ;
Buchan, AM ;
Cady, WJ ;
Chan, PH ;
Clemens, JA ;
Cox, BF ;
Craddock, RE ;
Cramer, SC ;
del Zoppo, GJ ;
Dielrich, WD ;
Elliott, P ;
Faden, AI ;
Feuerstein, GZ ;
Ginsberg, MD ;
Gold, M ;
Greene, WL ;
Hall, ED ;
Hsu, CY ;
Hunter, AJ ;
Lai, M ;
Lesko, LM ;
Levy, DE ;
Li, FH ;
Locke, KW ;
Lodge, D ;
Lowe, D ;
Marcoux, FW ;
McCulloch, J ;
McDermott, J ;
Meibach, R ;
Messersmith, EK ;
Moseley, M ;
Moskowitz, MA ;
Mueller, AL ;
Munro, F ;
Nudo, RJ ;
Oeda, J .
STROKE, 1999, 30 (12) :2752-2758
[9]   Red/near-infrared irradiation therapy for treatment of central nervous system injuries and disorders [J].
Fitzgerald, Melinda ;
Hodgetts, Stuart ;
Van den Heuvel, Corinna ;
Natoli, Riccardo ;
Hart, Nathan S. ;
Valter, Krisztina ;
Harvey, Alan R. ;
Vink, Robert ;
Provis, Jan ;
Dunlop, Sarah A. .
REVIEWS IN THE NEUROSCIENCES, 2013, 24 (02) :205-226
[10]   Transcranial Laser Therapy in Acute Stroke Treatment Results of Neurothera Effectiveness and Safety Trial 3, a Phase III Clinical End Point Device Trial [J].
Hacke, Werner ;
Schellinger, Peter D. ;
Albers, Gregory W. ;
Bornstein, Natan M. ;
Dahlof, Bjorn L. ;
Fulton, Rachael ;
Kasner, Scott E. ;
Shuaib, Ashfaq ;
Richieri, Steven P. ;
Dilly, Stephen G. ;
Zivin, Justin ;
Lees, Kennedy R. .
STROKE, 2014, 45 (11) :3187-3193