Trial to Determine the Efficacy of Red Near-Infrared Light Treatment

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Trial to Determine the Efficacy of Red Near-Infrared Light Treatment ( trial-determine-efficacy-red-near-infrared-light-treatment )

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100 WUNSCH AND MATUSCHKA validated measurement tool for nasolabial wrinkle severity assessment. Dermatol. Surg. 34, 85–91. 13. Vinck E.M., Cagnie B.J., Cornelissen M.J., Declercq H.A., and Cambier D.C. (2005). Green light emitting diode irradiation enhances fibroblast growth impaired by high glucose level. Photomed. Laser Surg. 23, 167–171. 14. Karu T.I. (2010). Multiple roles of cytochrome c oxidase in mammalian cells under action of red and IR-A radiation. IUBMB Life 62, 607–610. 15. Weiss R.A., McDaniel D.H., Geronemus R.G., and Weiss M.A. (2005). Clinical trial of a novel non-thermal LED array for reversal of photoaging: clinical, histologic, and surface profilometric results. Lasers Surg. Med. 36, 85–91. 16. Russell B.A., Kellett N., and Reilly L.R. (2005). A study to determine the efficacy of combination LED light therapy (633 nm and 830 nm) in facial skin rejuvenation. J. Cosmet. Laser Ther. 7, 196–200. 17. Sadick N.S. (2008). A study to determine the efficacy of a novel handheld light-emitting diode device in the treatment of photoaged skin. J. Cosmet. Dermatol. 7, 263–267. rejuvenation effect in photodynamic therapy in human dermal fibroblasts. J. Invest. Dermatol. 133, 2265–2275. 23. Zastrow L., Groth N., Klein F., et al. (2009). The missing link–light-induced (280–1,600 nm) free radical formation in human skin. Skin Pharmacol. Physiol. 22, 31–44. 24. Crisan D., Crisan M., Moldovan M., Lupsor M., and Badea R. (2012). Ultrasonographic assessment of the cutaneous changes induced by topical flavonoid therapy. Clin. Cosmet. Investig. Dermatol. 5, 7–13. 25. Webb C., Dyson M., and Lewis W.H. (1998). Stimulatory effect of 660 nm low level laser energy on hypertrophic scar- derived fibroblasts: possible mechanisms for increase in cell counts. Lasers Surg. Med. 22, 294–301. 26. Baez F., and Reilly L.R. (2007). The use of light-emitting diode therapy in the treatment of photoaged skin. J. Cosmet. Dermatol. 6, 189–194. 27. Vinck E.M., Cagnie B.J., Cornelissen M.J., Declercq H.A., and Cambier D.C. (2003). Increased fibroblast proliferation in- duced by light emitting diode and low power laser irradia- tion. Lasers Med. Sci. 18, 95–99. 28. Goldberg D.J., Amin S., Russell B.A., Phelps R., Kellett N., and Reilly L.A. (2006). Combined 633-nm and 830-nm led treatment of photoaging skin. J. Drugs Dermatol. 5, 748–753. 29. Giacomoni P.U., Mammone T., and Teri M. (2010). Gender- linked differences in human skin. J. Dermatol. Sci. 55, 144– 18. Lee S.Y., Park K.H., Choi J.W., et al. (2007). A prospective, randomized, placebo-controlled, double-blinded, and split- face clinical study on LED phototherapy for skin rejuvena- tion: Clinical, profilometric, histologic, ultrastructural, and biochemical evaluations and comparison of three different treatment settings. J. Photochem. Photobiol. B. 88, 51–67. 149. 19. Santana–Blank L., Rodr ́ıguez–Santana E., and Santana– Rodr ́ıguez K.E. (2012). Photobiomodulation of aqueous in- terfaces as selective rechargeable bio-batteries in complex diseases: personal view. Photomed. Laser Surg. 30, 242–249. 20. Calderhead R.G., Kubota J., Trelles M.A., and Ohshiro T. (2008). One mechanism behind LED phototherapy for wound healing and skin rejuvenation: Key role of the mast cell. Laser Therapy 17, 141–148. 21. Zhang Y., Song S., Fong C.C., et al. (2003). cDNA microarray analysis of gene expression profiles in human fibroblast cells irradiated with red light. J. Invest. Dermatol. 120, 849–857. 22. Jang Y.H., Koo G.B., Kim J.Y., Kim Y.S., and Kim Y.C. (2013). Prolonged activation of ERK contributes to the photo- 30. Oh, J.H., Kim Y.K., Jung J.Y., et al. (2011). Intrinsic aging- and photoaging-dependent level changes of glycosamino- glycans and their correlation with water content in human skin. J. Dermatol. Sci. 62, 192–201. Address correspondence to: Alexander Wunsch Hirschgasse 11 69120 Heidelberg Germany E-mail: praxis@alexanderwunsch.de

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