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1.
Biofizika ; 52(5): 947-52, 2007.
Article in Russian | MEDLINE | ID: mdl-17969932

ABSTRACT

A pronounced anti-inflammatory effect of high peak-power pulsed electromagnetic radiation of extremely high frequency was shown for the first time in a model of zymosan-induced footpad edema in mice. Exposure to radiation of specific parameters (35, 27 GHz, peak power 20 kW, pulse widths 400-600 ns, pulse repetition frequency 5-500 Hz) decreased the exudative edema and local hyperthermia by 20% compared to the control. The kinetics and the magnitude of the anti-inflammatory effect were comparable with those induced by sodium diclofenac at a dose of 3 mg/kg. It was found that the anti-inflammatory effect linearly increased with increasing pulse width at a fixed pulse repetition frequency and had threshold dependence on the average incident power density of the radiation at a fixed pulse width. When animals were whole-body exposed in the far-field zone of radiator, the optimal exposure duration was 20 min. Increasing the average incident power density upon local exposure of the inflamed paw accelerated both the development of the anti-inflammatory effect and the reactivation time. The results obtained will undoubtedly be of great importance in the hygienic standardization of pulsed electromagnetic radiation and in further studies of the mechanisms of its biological action.


Subject(s)
Edema/radiotherapy , Fever/radiotherapy , Radiation , Animals , Anti-Inflammatory Agents, Non-Steroidal/pharmacology , Diclofenac/pharmacology , Dose-Response Relationship, Radiation , Edema/chemically induced , Fever/chemically induced , Inflammation/chemically induced , Inflammation/radiotherapy , Male , Mice , Zymosan/toxicity
2.
Biofizika ; 52(6): 1087-92, 2007.
Article in Russian | MEDLINE | ID: mdl-18225661

ABSTRACT

The capability of high peak-power pulsed electromagnetic radiation of extremely high frequency (35,27 GHz, pulse widths of 100 and 600 ns, peak power of 20 kW) to excite acoustic waves in model water-containing objects and muscular tissue of animals has been experimentally shown for the first time. The amplitude and duration of excited acoustic pulses are within the limits of accuracy of theoretical assessments and have a complex nonlinear dependence on the energy input of electromagnetic radiation supplied. The velocity of propagation of acoustic pulses in water-containing models and isolated muscular tissue of animals was close to the reference data. The excitation of acoustic waves in biological systems under the action of high peak-power pulsed electromagnetic radiation of extremely high frequency is the important phenomenon, which essentially contributes to the understanding of the mechanisms of biological effects of these electromagnetic fields.


Subject(s)
Acoustics , Microwaves , Models, Biological , Water/chemistry , Gelatin/chemistry
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