A planimetric study of experimentally modeled infected wounds exposed to high-intensity pulsed broadband radiation
https://doi.org/10.24931/2413-9432-2025-14-1-29-35
Abstract
An experimental model of an infected wound was created in 90 Wistar rats using a mixture of cultures of Staphylococcus aureus, Pseudomonas aeruginosa, Klebsiella pneumoniae, and Candida albicans. The animals are divided into 3 groups of 30 individuals. The first group consisted of animals treated with pulsed high-intensity broadband irradiation using an experimental apparatus with a pulsed xenon lamp operating in a pulsed periodic mode with an average UV-C (200-280 nm) radiation power of 3 W, and a pulsed UV-C power of 24 kW. In the second group, traditional ultraviolet irradiation of wounds with a mercury bactericidal lamp was used for treatment, with an average UV-C (254 nm) radiation power of 1.2 W. The third group received only a local antiseptic treatment. The computer planimetry was used for monitoring the effectiveness of treatment. Parameters such as wound area, rate, and degree of epithelialization were recorded on days 1, 7, 14, and 21 of treatment. The study showed that in the first group of animals, the rate and degree of epithelialization, as well as the reduction in wound area at each control stage, were statistically significantly greater compared to the use of traditional ultraviolet irradiation and local antiseptic monotherapy. This dynamic is associated with the earlier cleansing of wounds from pathogenic microorganisms and the morphological changes that correspond to an earlier transition from the inflammatory phase to the proliferation and regeneration phases. Therefore, the local treatment of infected wounds with antiseptic agents in combination with pulsed high-intensity wideband radiation promotes the earlier epithelialization of the wounds.
About the Authors
S. M. ChudnykhRussian Federation
Moscow
Tver
V. S. Egorov
Russian Federation
Moscow
Kh. A. Abduvosidov
Russian Federation
Moscow
Tver
A. V. Snitsar
Russian Federation
Moscow
I. A. Chekmareva
Russian Federation
Moscow
A. Emaimo John
Russian Federation
Moscow
References
1. Amaral A.L., Aoki A., Andrade S.A. Could light be a broad-spectrum antimicrobial? // Evid Based Dent, 2024, Vol. 25(l4)? pp. 192-193. doi:10.1038/s41432-024-01042-2
2. Alcolea J.M., Hernández E., Martínez-Carpio P.A., et al. Treatment of Chronic Lower Extremity Ulcers with A New Er: Yag Laser Technology. Laser Ther. – 2017. – Vol. 26(3). – P. 211-222. doi:10.5978/islsm.17-OR-17
3. Aleksandrowicz H., Owczarczyk-Saczonek A., Placek W. Venous Leg Ulcers: Advanced Therapies and New Technologies. Biomedicines, 2021, Vol. 9б(11), рр. 1569. doi:10.3390/biomedicines9111569
4. Gupta A., Avci P., Dai T., Huang Y.Y., Hamblin M.R. Ultraviolet Radiation in Wound Care: Sterilization and Stimulation. Adv Wound Care (New Rochelle), 2013, Vol. 2(8). – рр. 422-437. doi:10.1089/wound.2012.0366;
5. Wang D., Kuzma M.L., Tan X., et al. Phototherapy and optical waveguides for the treatment of infection. Adv Drug Deliv Rev, 2021, Vol. 179, рр. 114036. doi:10.1016/j.addr.2021.114036;
6. Chepurnaya J.L., Melkonyan G.G., Gul’muradova N.T., Sorokin A.A. The effect of photodynamic therapy on the wound process dynamics in patients with purulent hand diseases. Biomedical Photonics, 2021, Vol. 10(2), рр. 4-17. https://doi.org/10.24931/2413-9432-2021-10-2-4-17
7. Soltan H.H., Afifi A., Mahmoud A., Refaat M., Al Balah O.F. Влияние наночастиц серебра и низкоинтенсивного лазера на иммунный ответ и заживление кожных ран мышей-альбиносов. Biomedical Photonics, 2024, Vol. 13(1), рр. 16-27.
8. https://doi.org/10.24931/2413-9432-2023-13-1-16-27;
9. Arkhipov V.P., Bagrov V.V., Byalovsky Yu.Y. and others. Organization of preclinical studies of the bactericidal and wound-healing effects of the Zarya pulsed phototherapeutic apparatus. Problems of social hygiene, public health and the history of medicine, 2021, Vol. 29(5), pp.1156-1162. DOI 10.32687/0869-866X-2021-29-5-1156-1162.
10. Davydov A.I., Lipatov D.V., Kamrukov A.S. and others. The use of pulsed high-intensity optical irradiation and exogenous nitrogen monoxide in the complex treatment of patients with purulent inflammation of the uterine appendages. Issues of gynecology, obstetrics and perinatology, 2007, Vol. 6(1), pp. 14-17.
11. Ashja Zadeh M.A., Ebrahimi M., Salarian A.A., Abtahi S.R., Jahandideh A. Evaluation of Beneficial Influence of Local Appli cation of Crocus Pallasii Subsp. Haussknechtii Boiss. Extract on Healing of Full Thickness Excisional Infected Wounds in Diabetic Rats. Bull Emerg Trauma, 2020, Vol. 8(3), рр. 169-178. doi:10.30476/BEAT.2020.82567
12. Zaitsev A.E., Asanov O.N., Chekmareva I.A. Analysis of the effectiveness of an erbium laser in the treatment of trophic purulent wounds in an experiment. Medical Bulletin of the North Caucasus, 2023, Vol. 18(4), pp. 394-397. DOI – https://doi.org/10.14300/mnnc.2023.18093
13. Pavlov A.V., Maskin S.S., Igolkina L.A. Acceleration of heal ing of experimentally modeled purulent wounds under local cryotherapy. Science of the young (Eruditio Juvenium), 2022, Vol. 10(4), pp. 391-400. https://doi.org/10.23888/HMJ2022104391-400 .
14. Bokov D.A., Mikhailov N.O., Laptieva A.Yu., Goryushkina E.S. Modern methods of measuring the area of the wound surface and their comparison with each other. Youth Innovation Bulletin, 2023, Vol. 12(2), рp. 14-16.
15. Ivanov G.G., Yarosh V.N., Balashov I.A. Determination of the size and structural elements of the RAS based on computer planimetry. Photoprotocol in assessing the course of the wound process. Wounds and wound infections. B.M. Kostyuchenko Journal, 2023, Vol. 10(1), pp. 38-44. https://doi.org/10.25199/2408-9613-2023-10-1-38-44
16. Abduvosidov Kh.A., Chudnykh S.M., Egorov V.S., Filimonov A.Yu., Korolyova I.A., Kamrukov A.S., Bagrov V.V., Kondrat’ev A.V. Bactericidal effectiveness of high-intensity pulsed broadband irradiation in treating infected wounds. Biomedical Photonics, 2024, Vol.13(2), рр. 26-33. https://doi.org/10.24931/2413-9432-2023-13-2-26-33
17. Egorov V.S., Filimonov A.Yu., Chudnykh S.M., Abduvosidov Kh.A., Chekmareva I.A., Paklina O.V., Baranchugova L.M., Kondrat’ev A.V. Morphological evaluation of the effectiveness of treating infected wounds with high-intensity pulsed broad band irradiation. Biomedical Photonics, 2024, Vol. 13(3), рр. 31-41. https://doi.org/10.24931/2413-9432-2024-13-3-31-41
18. Egorov V.S., Filimonov A.Yu., Chudnykh S.M., Spiryakina E.V., Abduvosidov Kh.A. Experimental substantiation of the use of high–intensity pulsed broadband radiation in the treatment of infected wounds. Kazan Medical Journal, 2025, Vol. 106(1), pp.79-87. doi:https://doi.org/10.17816/KMJ634565
Review
For citations:
Chudnykh S.M., Egorov V.S., Abduvosidov Kh.A., Snitsar A.V., Chekmareva I.A., Emaimo John A. A planimetric study of experimentally modeled infected wounds exposed to high-intensity pulsed broadband radiation. Biomedical Photonics. 2025;14(1):29-35. https://doi.org/10.24931/2413-9432-2025-14-1-29-35