Low-level laser therapy for closed-head traumatic brain injury in mice: effect of different wavelengths
- PMID: 22275301
- PMCID: PMC3397203
- DOI: 10.1002/lsm.22003
Low-level laser therapy for closed-head traumatic brain injury in mice: effect of different wavelengths
Abstract
Background and objectives: Traumatic brain injury (TBI) affects millions worldwide and is without effective treatment. One area that is attracting growing interest is the use of transcranial low-level laser therapy (LLLT) to treat TBI. The fact that near-infrared light can penetrate into the brain would allow non-invasive treatment to be carried out with a low likelihood of treatment-related adverse events. LLLT may treat TBI by increasing respiration in the mitochondria, causing activation of transcription factors, reducing inflammatory mediators and oxidative stress, and inhibiting apoptosis.
Study design/materials and methods: We tested LLLT in a mouse model of closed-head TBI produced by a controlled weight drop onto the skull. Mice received a single treatment with continuous-wave 665, 730, 810, or 980 nm lasers (36 J/cm(2) delivered at 150 mW/cm(2)) 4-hour post-TBI and were followed up by neurological performance testing for 4 weeks.
Results: Mice with moderate-to-severe TBI treated with 665 and 810 nm laser (but not with 730 or 980 nm) had a significant improvement in Neurological Severity Score that increased over the course of the follow-up compared to sham-treated controls. Morphometry of brain sections showed a reduction in small deficits in 665 and 810 nm laser treated mouse brains at 28 days.
Conclusions: The effectiveness of 810 nm agrees with previous publications, and together with the effectiveness of 660 nm and non-effectiveness of 730 and 980 nm can be explained by the absorption spectrum of cytochrome oxidase, the candidate mitochondrial chromophore in transcranial LLLT.
Copyright © 2012 Wiley Periodicals, Inc.
Conflict of interest statement
Conflict of interest: None reported.
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References
-
- Albensi BC. Models of brain injury and alterations in synaptic plasticity. J Neurosci Res. 2001;65(4):279–283. - PubMed
-
- Waxweiler RJ, Thurman D, Sniezek J, Sosin D, O’Neil J. Monitoring the impact of traumatic brain injury: A review and update. J Neurotrauma. 1995;12(4):509–516. - PubMed
-
- Sosin DM, Sniezek JE, Thurman DJ. Incidence of mild and moderate brain injury in the United States, 1991. Brain Inj. 1996;10(1):47–54. - PubMed
-
- Bruns J, Jr, Hauser WA. The epidemiology of traumatic brain injury: A review. Epilepsia. 2003;10(44 Suppl):2–10. - PubMed
-
- Kraus JF, McArthur DL. Epidemiologic aspects of brain injury. Neurol Clin. 1996;14(2):435–450. - PubMed
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