» Articles » PMID: 35547482

Penetrating Effect of High-intensity Infrared Laser Pulses Through Body Tissue

Overview
Journal RSC Adv
Specialty Chemistry
Date 2022 May 13
PMID 35547482
Authors
Affiliations
Soon will be listed here.
Abstract

Researchers have utilized infrared (IR) lasers as energy sources in laser therapy for curing skin diseases and skin injuries with remarkable effects. Preliminary experiments have also shown that high-intensity IR laser pulses could penetrate thick body tissues, resulting in remarkable effects for recovery from injuries in deep muscles and cartilage tissues. However, for deep-level IR laser therapy, it is unclear how much of the laser power density penetrates the body tissues at certain depths and which of the three major effects of laser irradiation, namely, laser-induced photo-chemical effect, photo-thermal effect and mechanical dragging effect, play a key role in the curing process. Thus, in this study, we developed micro-sized thin-film thermocouple (TFTC) arrays on freestanding SiN thin-film windows as sensors for laser power density and local temperature. These devices showed excellent linear responses in output voltage to laser power density with wavelengths in the range of 325-1064 nm, and also indicated the local temperature at the laser spot. We systematically measured the penetrating effect and thermal effect through thick porcine tissues for high-intensity IR pulses with a laser system used in clinical treatment and subtracted the attenuation parameters for the porcine skin, fat and muscle tissue from the experimental data. The results offered reliable quantitative references for safe irradiation doses of high-intensity IR laser pulses in practical laser therapy.

Citing Articles

High-intensity versus low-level laser therapy in treatment of patients with subacromial impingement syndrome: a randomized, double-blind, controlled trial.

Saleh M, Galal D, Ali M, Ibrahim D Lasers Med Sci. 2025; 40(1):8.

PMID: 39757334 DOI: 10.1007/s10103-024-04262-1.


A Preliminary Study on Quantitative Analysis of Collagen and Apoptosis Related Protein on 1064 nm Laser-Induced Skin Injury.

Ma Q, Fan Y, Cui Y, Luo Z, Kang H Biology (Basel). 2024; 13(4).

PMID: 38666829 PMC: 11048553. DOI: 10.3390/biology13040217.


Gold Nanoparticles: Construction for Drug Delivery and Application in Cancer Immunotherapy.

Huang H, Liu R, Yang J, Dai J, Fan S, Pi J Pharmaceutics. 2023; 15(7).

PMID: 37514054 PMC: 10383270. DOI: 10.3390/pharmaceutics15071868.


Comparison of the Penetration Depth of 905 nm and 1064 nm Laser Light in Surface Layers of Biological Tissue Ex Vivo.

Kaub L, Schmitz C Biomedicines. 2023; 11(5).

PMID: 37239026 PMC: 10216207. DOI: 10.3390/biomedicines11051355.


Effects of radial extracorporeal shockwave therapy versus high intensity laser therapy in individuals with plantar fasciitis: A randomised clinical trial.

Thammajaree C, Theapthong M, Palee P, Pakpakorn P, Sitti T, Sakulsriprasert P Lasers Med Sci. 2023; 38(1):127.

PMID: 37219650 DOI: 10.1007/s10103-023-03791-5.


References
1.
Caterina M . Transient receptor potential ion channels as participants in thermosensation and thermoregulation. Am J Physiol Regul Integr Comp Physiol. 2006; 292(1):R64-76. DOI: 10.1152/ajpregu.00446.2006. View

2.
Tanaka Y, Matsuo K, Yuzuriha S . Long-term histological comparison between near-infrared irradiated skin and scar tissues. Clin Cosmet Investig Dermatol. 2011; 3:143-9. PMC: 3047939. DOI: 10.2147/CCID.S15729. View

3.
Garavello I, Baranauskas V, da Cruz-Hofling M . The effects of low laser irradiation on angiogenesis in injured rat tibiae. Histol Histopathol. 2004; 19(1):43-8. DOI: 10.14670/HH-19.43. View

4.
Vladimirov Y, Osipov A, Klebanov G . Photobiological principles of therapeutic applications of laser radiation. Biochemistry (Mosc). 2004; 69(1):81-90. DOI: 10.1023/b:biry.0000016356.93968.7e. View

5.
MESTER E, Mester A, Mester A . The biomedical effects of laser application. Lasers Surg Med. 1985; 5(1):31-9. DOI: 10.1002/lsm.1900050105. View