Photobiomodulation at Different Wavelengths Boosts Mitochondrial Redox Metabolism and Hemoglobin Oxygenation: Lasers vs. Light-Emitting Diodes In Vivo
Abstract
:1. Introduction
2. Results
2.1. Optical Spectra of Lasers and LED and Laser-Induced Increases of Skin Temperature
2.2. PBM Effects by 1064 nm Laser on the Human Forearm
2.3. PBM Effects by 800 nm and 850 nm Lasers on the Human Forearm
2.4. Comparison of PBM Effects by 1064 nm vs. 800 nm Lasers
2.5. PBM Effects by 810 nm LED and Comparison with Those by 800 nm Laser
3. Discussion
3.1. High Reproducibility of 1064 nm PBM on the Human Forearm
3.2. Experimental Evidence for Proval of Hypothesis 1
3.3. Experimental Confirmation for Hypothesis 2
3.4. Experimental Confirmation for Hypothesis 3
3.5. Tool to Guide Light Selection and Dosage for Effective Clinical Applications of PBM
3.6. Limitations of the Study and Future Work
4. Materials and Methods
4.1. Participants
4.2. Instrumentation for PBM and bbNIRS
4.3. Experimental Setup and Protocol
4.4. Spectra of Lasers/LED and PBM-Induced Temperature Changes
4.5. Data Processing and Statistical Analysis
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Pruitt, T.; Carter, C.; Wang, X.; Wu, A.; Liu, H. Photobiomodulation at Different Wavelengths Boosts Mitochondrial Redox Metabolism and Hemoglobin Oxygenation: Lasers vs. Light-Emitting Diodes In Vivo. Metabolites 2022, 12, 103. https://doi.org/10.3390/metabo12020103
Pruitt T, Carter C, Wang X, Wu A, Liu H. Photobiomodulation at Different Wavelengths Boosts Mitochondrial Redox Metabolism and Hemoglobin Oxygenation: Lasers vs. Light-Emitting Diodes In Vivo. Metabolites. 2022; 12(2):103. https://doi.org/10.3390/metabo12020103
Chicago/Turabian StylePruitt, Tyrell, Caroline Carter, Xinlong Wang, Anqi Wu, and Hanli Liu. 2022. "Photobiomodulation at Different Wavelengths Boosts Mitochondrial Redox Metabolism and Hemoglobin Oxygenation: Lasers vs. Light-Emitting Diodes In Vivo" Metabolites 12, no. 2: 103. https://doi.org/10.3390/metabo12020103
APA StylePruitt, T., Carter, C., Wang, X., Wu, A., & Liu, H. (2022). Photobiomodulation at Different Wavelengths Boosts Mitochondrial Redox Metabolism and Hemoglobin Oxygenation: Lasers vs. Light-Emitting Diodes In Vivo. Metabolites, 12(2), 103. https://doi.org/10.3390/metabo12020103