This article deals with further development of laser drug delivery methods. In order to estimate the effect of laser- drug interactions, we carried out the chromatographic fractionation of dexamethasone, hydrocortisone, and gentamicine, both prior to and after irradiating them by pulsed Er:YAG laser radiation. The laser radiation parameters were as follows: the wavelength, pulse energy, and pulse duration were, respectively, 2.94 micrometers , 0.7 J, and 100 microsecond(s) . The total laser radiation dose administered to a 100 (mu) l sample of these drug preparations amounted to 150 J. A chromatographic analysis revealed that drug samples exposed to Er:YAG laser radiation did not show any change. The results obtained made it possible to employ pulsed Er:YAG laser radiation to perform laser-acoustic injection of the above-mentioned drug preparations to study the treatment of staphylococcal lesions in 30 guinea pigs. The perforated channel depth was measured and the injected drug solution volume was calculated. It was found that laser injection enabled one to introduce therapeutic doses of drugs, and that it expedited the healing of lesions by 3 to 4 days, as compared to the control group that received the topical application of drugs without laser irradiation.
A further study is given of photoacoustic (PA) drug delivery technologies using an Er:YAG laser, with the main emphasis being placed on the laser perforation of skin and on PA impregnation using an additional covering quartz plate. A mathematical model based on Fick's law for PA impregnation with regard to a free and rigid interface is considered. The histological examination of the perforated guinea-pig skin ex vivo shoed that a powerful PA wave forced skin epidermis to be bent inwards. In biopsies taken 15 min later the nuclei pyknosis of epidermis cells lining the perforated channel was observed. In biopsies obtained 36 hours later an insignificant necrotic lesion remained, whereas 120 hours laser the cells recovered. I twas shown experimentally that the PA signal increased 30 times after applying a quartz plate over the drug solution, which substantially enhanced drug penetration through the skin .The dependancies were obtained of the penetration depth of the haematoporphyrin derivative photosensitizer versus the number of laser pulses and the pressing force applied to the quartz plate. The chromatographic fractionation of Diprospan and Dexamethasone hormonal preparations prior to and after the action of 200 Er:YAG laser-induced PA waves demonstrated that no additional chemical agents resulting from drug dissociation were detected. The application of laser drug delivery methods in respect of treating dermatological diseases is also discussed.
Vladimir Zharov, Yulian Menyaev, Konstantin Kalinin, Andrei Borisov, Alexei Latyshev, Mikhail Stakhanov, Leonid Velsher, Margarita Zhitkova, Victor Sokolov, D. Sukhin, V. Sarantsev
This review reflect the latest achievements of Russian science in the field of creating laser and phototherapeutic combined technologies for oncology. This article tackles the problem of further developing laser-ultrasonic medical technologies and its applications in oncology. The comparison and the features of alternative sources for photodynamic therapy including the lasers, the lamps with spectral filters and LED array are considered. The application photomatrix system for treatment posmastectomy oedema are presented. The possibilities of laser transcutaneous photosensitizer delivery methods are discussed.
This paper presents a new technology, which consists in utilizing laser drug delivery methods for the purposes of photodrug therapy. According to this technology, photosensitizer is applied onto the treated surface and then the solution is either impregnated or injected into the medium, with it being suggested to employ laser drug delivery techniques for the impregnation and injection of the photosensitizer. After introducing the photosensitizer, the area is illuminated by a matrix of light-emission diodes.
This review tackles the problem of further developing laser- ultrasonic medical technologies and gives the comparison of different laser and ultrasound combinations. The features of combined influence on biotissue are explicated with due regard for mechanic, ultrasonic (US), and thermal effects. The review present the effect of self-cleaning an optical fiber tip from the laser destruction products of biotissue, the result of research on the possibility of laser-US technology applications in endoscopy, and the ways of suppressing unwanted bending oscillations. Various spheres and peculiarities of applying laser-US technologies are discussed, including microsurgery, cosmetology, transcutaneous drug delivery, and the treatment of chronic prostatitis and infected wounds. Furthermore, the analysis of transcutaneous drug delivery methods employing a portable pulsed Er:YAG laser is presented. Drug diffusion has been shown to be enhanced under acoustic and US effects. The photo-vacuum drug injection mechanism recently suggested is discussed. It turned out that laser-US technology can be suitable for both impregnating the photosensitizer in local photodynamic therapy procedures and conducting microsurgery operations involving drug injection. Treatment of infectious processes based on the bactericidal action of photosensitizers and ultrasound due to the cavitation effect in solutions is described. An additional therapeutic effect can be achieved via the US intermingling of solutions with their simulations illumination by a matrix of red lasers or light diodes. An outlook on further developing laser-US technology and the ways of its apparatus realization are considered.
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