Effects of polarization in low-level laser therapy of spinal cord injury in rats
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Hiroaki Kobayashi | Michael R. Hamblin | Shunichi Sato | Minoru Obara | Takahiro Ando | Hiroshi Ashida | Hiroshi Nawashiro
[1] Martha Simões Ribeiro,et al. Effects of low-intensity polarized visible laser radiation on skin burns: a light microscopy study. , 2004, Journal of clinical laser medicine & surgery.
[2] Amir Oron,et al. Transcranial application of low‐energy laser irradiation improves neurological deficits in rats following acute stroke , 2006, Lasers in surgery and medicine.
[3] M. Filbin,et al. cAMP and Schwann cells promote axonal growth and functional recovery after spinal cord injury , 2004, Nature Medicine.
[4] Jackson Streeter,et al. Safety Profile of Transcranial Near-Infrared Laser Therapy Administered in Combination With Thrombolytic Therapy to Embolized Rabbits , 2008, Stroke.
[5] Ján Rosocha,et al. Transplants of Human Mesenchymal Stem Cells Improve Functional Recovery After Spinal Cord Injury in the Rat , 2006, Cellular and Molecular Neurobiology.
[6] T. Karu,et al. Primary and secondary mechanisms of action of visible to near-IR radiation on cells. , 1999, Journal of photochemistry and photobiology. B, Biology.
[7] D. Basso,et al. A sensitive and reliable locomotor rating scale for open field testing in rats. , 1995, Journal of neurotrauma.
[8] Z Simunovic,et al. Wound healing of animal and human body sport and traffic accident injuries using low-level laser therapy treatment: a randomized clinical study of seventy-four patients with control group. , 2000, Journal of clinical laser medicine & surgery.
[9] Jackson Streeter,et al. 810 nm Wavelength light: An effective therapy for transected or contused rat spinal cord , 2009, Lasers in surgery and medicine.
[10] Gong Ju,et al. Spontaneous recovery of locomotion induced by remaining fibers after spinal cord transection in adult rats. , 2003, Restorative neurology and neuroscience.
[11] W. Pan,et al. Targeting neurite growth inhibitors to induce CNS regeneration. , 2005, Current pharmaceutical design.
[12] Hideyuki Okano,et al. Therapeutic potential of appropriately evaluated safe-induced pluripotent stem cells for spinal cord injury , 2010, Proceedings of the National Academy of Sciences.
[13] Lewis D. Griffin,et al. Polarized light imaging of white matter architecture , 2007, Microscopy research and technique.
[14] V. Letokhov,et al. Elementary processes in cells after light absorption do not depend on the degree of polarization: implications for the mechanisms of laser phototherapy. , 2008, Photomedicine and laser surgery.
[15] K. Fouad,et al. Anatomical Correlates of Locomotor Recovery Following Dorsal and Ventral Lesions of the Rat Spinal Cord , 2002, Experimental Neurology.
[16] Wei Li,et al. Monte Carlo simulation of polarized photon scattering in anisotropic media. , 2009, Optics express.
[17] M. Bavbek,et al. Antibodies neutralizing Nogo-A increase pan-cadherin expression and motor recovery following spinal cord injury in rats , 2007, Spinal Cord.
[18] Edmund R Hollis,et al. Neurotrophins: Potential Therapeutic Tools for the Treatment of Spinal Cord Injury , 2011, Neurotherapeutics.
[19] A. Kienle,et al. Anisotropy of light propagation in biological tissue. , 2004, Optics letters.
[20] Semion Rochkind,et al. Transplantation of embryonal spinal cord nerve cells cultured on biodegradable microcarriers followed by low power laser irradiation for the treatment of traumatic paraplegia in rats , 2002, Neurological research.
[21] R. Waynant,et al. Light promotes regeneration and functional recovery and alters the immune response after spinal cord injury , 2005, Lasers in surgery and medicine.
[22] Martha Simões Ribeiro,et al. Collagen birefringence in skin repair in response to red polarized-laser therapy. , 2006, Journal of biomedical optics.
[23] Michael R. Hamblin,et al. Biphasic Dose Response in Low Level Light Therapy , 2009, Dose-response : a publication of International Hormesis Society.
[24] Hari Shanker Sharma,et al. A Select Combination of Neurotrophins Enhances Neuroprotection and Functional Recovery following Spinal Cord Injury , 2007, Annals of the New York Academy of Sciences.
[25] Minoru Obara,et al. Comparison of Therapeutic Effects between Pulsed and Continuous Wave 810-nm Wavelength Laser Irradiation for Traumatic Brain Injury in Mice , 2011, PloS one.
[26] Onur Armagan,et al. Effect of low level laser therapy in rheumatoid arthritis patients with carpal tunnel syndrome. , 2007, Swiss medical weekly.
[27] Norbert Gutknecht,et al. Low-level laser therapy and myofacial pain dysfunction syndrome: a randomized controlled clinical trial , 2009, Lasers in Medical Science.
[28] Nan Zeng,et al. Rotating linear polarization imaging technique for anisotropic tissues. , 2010, Journal of biomedical optics.
[29] Amir Oron,et al. low-level laser therapy applied transcranially to mice following traumatic brain injury significantly reduces long-term neurological deficits. , 2007, Journal of neurotrauma.
[30] Nan Zeng,et al. Penetration depth of linear polarization imaging for two-layer anisotropic samples. , 2011, Applied optics.
[31] J. A. Gruner,et al. A monitored contusion model of spinal cord injury in the rat. , 1992, Journal of neurotrauma.