Page 234 - Veterinary Laser Therapy in Small Animal Practice
P. 234
220 Veterinary Laser Therapy in Small Animal Practice
photodynamic therapy. Lasers Med Sci, 2003. 18(1): pp. 200. Stephens, B.J. and L. Ramball Jones. Tissue optics.
51–5. In: Hamblin, M., T. Agrawal, and M. de Sousa (eds)
185. Nussbaum, E.L., L. Lilge, and T. Mazzulli. Effects of Handbook of Low-Level Laser Therapy. 2016, Pan Stanford
low-level laser therapy (LLLT) of 810 nm upon in vitro Publishing, Singapore, pp. 67–86.
growth of bacteria: relevance of irradiance and radiant 201. Hashmi, J.T., et al. Effect of pulsing in low-level light
exposure. J Clin Laser Med Surg, 2003. 21(5): pp. 283–90. therapy. Lasers Surg Med, 2010. 42(6): pp. 450–66.
186. Pereira, P.R., et al. Effects of low intensity laser in in 202. Mbene, A.B., N.N. Houreld, and H. Abrahamse. DNA
vitro bacterial culture and in vivo infected wounds. Rev damage after phototherapy in wounded fibroblast cells
Col Bras Cir, 2014. 41(1): pp. 49–55. irradiated with 16 J/cm(2). J Photochem Photobiol B, 2009.
187. Bayat, M., M.M. Vasheghani, and N. Razavi. Effect 94(2): pp. 131–7.
of low-level helium-neon laser therapy on the healing of 203. Karu, T.I., L.V. Pyatibrat, and T.P. Ryabykh.
third-degree burns in rats. J Photochem Photobiol B, 2006. Nonmonotonic behavior of the dose dependence of the
83(2): pp. 87–93. radiation effect on cells in vitro exposed to pulsed laser
188. Kaya, G.S., et al. The use of 808-nm light therapy to radiation at lambda = 820 nm. Lasers Surg Med, 1997.
treat experimental chronic osteomyelitis induced in rats 21(5): pp. 485–92.
by methicillin-resistant Staphylococcus aureus. Photomed 204. Prado, R.P., et al. Experimental model for low level
Laser Surg, 2011. 29(6): pp. 405–12. laser therapy on ischemic random skin flap in rats. Acta
189. Krespi, Y.P., et al. Laser disruption and killing of Cir Bras, 2006. 21(4): pp. 258–62.
methicillin-resistant Staphylococcus aureus biofilms. Am J 205. Carvalho, R.L., et al. Effects of low-level laser therapy
Otolaryngol, 2011. 32(3): pp. 198–202. on pain and scar formation after inguinal herniation
190. Silva, D.C., et al. Low level laser therapy (AlGaInP) surgery: a randomized controlled single-blind study.
applied at 5J/cm2 reduces the proliferation of Photomed Laser Surg, 2010. 28(3): pp. 417–22.
Staphylococcus aureus MRSA in infected wounds and 206. Olivieri, L., et al. Efficacy of low-level laser therapy on
intact skin of rats. An Bras Dermatol, 2013. 88(1): pp. hair regrowth in dogs with noninflammatory alopecia: a
50–5. pilot study. Vet Dermatol, 2015. 26(1): pp. 35–9, e11.
191. Manevitch, Z., et al. Direct antifungal effect 207. da Silva, E.B., et al. Macro and microscopic analysis
of femtosecond laser on Trichophyton rubrum of island skin grafts after low-level laser therapy. Rev Col
onychomycosis. Photochem Photobiol, 2010. 86(2): pp. Bras Cir, 2013. 40(1): pp. 44–8.
476–9. 208. Kubota, J. Effects of diode laser therapy on blood flow
192. Araujo, B.F., et al. Effects of low-level laser therapy, in axial pattern flaps in the rat model. Lasers Med Sci,
660 nm, in experimental septic arthritis. ISRN Rheumatol, 2002. 17(3): pp. 146–53.
2013. 2013: p. 341832. 209. Pinfildi, C.E., et al. Effect of low-level laser therapy on
193. Lipovsky, A., et al. Visible light-induced killing of mast cells in viability of the transverse rectus abdominis
bacteria as a function of wavelength: implication for musculocutaneous flap. Photomed Laser Surg, 2009. 27(2):
wound healing. Lasers Surg Med, 2010. 42(6): pp. 467–72. pp. 337–43.
194. Keijzer, M., et al. Light distributions in artery tissue: 210. Pinfildi, C.E., et al. What is better in TRAM flap
Monte Carlo simulations for finite-diameter laser beams. survival: LLLT single or multi-irradiation? Lasers Med Sci,
Lasers Surg Med, 1989. 9(2): pp. 148–54. 2013. 28(3): pp. 755–61.
195. Firbank, M., et al. Measurement of the optical 211. Kubota, J. Defocused diode laser therapy (830 nm) in
properties of the skull in the wavelength range 650–950 the treatment of unresponsive skin ulcers: a preliminary
nm. Phys Med Biol, 1993. 38(4): pp. 503–10. trial. J Cosmet Laser Ther, 2004. 6(2): pp. 96–102.
196. Beek, J.F., et al. The optical properties of lung as a 212. Dantas, M.D., et al. Improvement of dermal burn
function of respiration. Phys Med Biol, 1997. 42(11): pp. healing by combining sodium alginate/chitosan-based
2263–72. films and low level laser therapy. J Photochem Photobiol B,
197. Ma, X., et al. Bulk optical parameters of porcine skin 2011. 105(1): pp. 51–9.
dermis at eight wavelengths from 325 to 1557 nm. Opt 213. Castro, B., et al. Development and preclinical
Lett, 2005. 30(4): pp. 412–4. evaluation of a new galactomannan-based dressing
198. Jacques, S.L. and B.W. Pogue. Tutorial on diffuse light with antioxidant properties for wound healing. Histol
transport. J Biomed Opt, 2008. 13(4): p. 041302. Histopathol, 2015. 30(12): pp. 1499–512.
199. Hall, G., et al. Goniometric measurements of thick 214. Balasch, J., et al. Case report on the treatment of
tissue using Monte Carlo simulations to obtain the single surgically debrided deep wounds with a new antioxidant
scattering anisotropy coefficient. Biomed Opt Express, wound dressing in two dogs. Adv Anim Vet Sci, 2016. 4(7):
2012. 3(11): pp. 2707–19. pp. 389–393.
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