Analysis of Phototherapy Effectiveness Using Thermography

作者: Ya. A. Zakharchenko , L. V. Zhorina , G. N. Zmievskoy

DOI: 10.3103/S1541308X19040137

关键词:

摘要: A thermographic study of low-intensity phototherapeutic effects on the human body in situ was carried out. The feature work measurement dynamics surface temperature changes a bio-object for 40 min after cessation irradiation. relaxation character behavior with quasi-oscillating phenomena during selected observation period has been established. An explanation observed involvement literature data is proposed. It shown that 15-min irradiation at radiation intensity 14mWcm−2 optimal phototherapy wavelength 640 nm. conclusion made about possibility considering local as correlated parameter to determine dose phototherapy.

参考文章(23)
А.P. Bavrina, M.V. Rakhcheyeva, Е.I. Yakovleva, V.А. Monich, T.I. Solovyova, S.L. Malinovskaya, biologic Effect of Low-Intensity Electromagnetic Radiation on Myocardium in Experimental Ischemia Современные технологии в медицине. ,vol. 7, ,(2015)
M. L. Stakhanov, G. N. Zmievskoy, I. P. Semchuk, V. V. Filatov, Thermometric Control of Phototherapeutic Procedures Biomedical Engineering. ,vol. 49, pp. 15- 18 ,(2015) , 10.1007/S10527-015-9487-9
Xiaoguang Yang, Sholpan Askarova, Wenwen Sheng, JK Chen, Albert Y Sun, Grace Y Sun, Gang Yao, JC-M Lee, None, Low energy laser light (632.8 nm) suppresses amyloid-β peptide-induced oxidative and inflammatory responses in astrocytes. Neuroscience. ,vol. 171, pp. 859- 868 ,(2010) , 10.1016/J.NEUROSCIENCE.2010.09.025
Franziska Heu, Clemens Forster, Barbara Namer, Adrian Dragu, Werner Lang, Effect of low-level laser therapy on blood flow and oxygen- hemoglobin saturation of the foot skin in healthy subjects: a pilot study. Laser therapy. ,vol. 22, pp. 21- 30 ,(2013) , 10.5978/ISLSM.13-OR-03
G. I. Klebanov, E. A. Poltanov, T. V. Chichuk, A. N. Osipov, Yu. A. Vladimirov, Changes in superoxide dismutase activity and peroxynitrite content in rat peritoneal macrophages exposed to He-Ne laser radiation. Biochemistry. ,vol. 70, pp. 1335- 1340 ,(2005) , 10.1007/S10541-005-0266-1
D. A. Rogatkin, M. I. Shcherbakov, D. S. Makarov, O. A. Bychenkov, Thermal-vision monitoring of processes of heating and microcirculation of blood accompanying low-intensity laser therapeutic procedures Journal of Optical Technology. ,vol. 78, pp. 666- 671 ,(2011) , 10.1364/JOT.78.000666
G. N. Zmievskoi, Dosimetric Aspects of Low-Intensity Phototherapy with Coherent and Incoherent Actions Measurement Techniques. ,vol. 48, pp. 1014- 1020 ,(2005) , 10.1007/S11018-006-0014-Y
H. Matsuo, Y. Morimoto, T. Arai, M. Wada, R. Higo, S. Tabata, K. Nakai, M. Kikuchi, Heat and photolytic nitric oxide are essential factors for light-induced vascular tension changes Lasers in Medical Science. ,vol. 15, pp. 181- 187 ,(2000) , 10.1007/PL00011315
Maria Emília de Abreu Chaves, Angélica Rodrigues de Araújo, André Costa Cruz Piancastelli, Marcos Pinotti, Effects of low-power light therapy on wound healing: LASER x LED Anais Brasileiros De Dermatologia. ,vol. 89, pp. 616- 623 ,(2014) , 10.1590/ABD1806-4841.20142519