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Numerical Study on Death of Squamous Cell Carcinoma Based on Various Shapes of Gold Nanoparticles Using Photothermal Therapyoa mark
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Publication Year
2022-02-01
Publisher
MDPI
Citation
Sensors, Vol.22
Keyword
ApoptosisContinuous wave laserGold nanoparticlesHeat transferHyperthermiaNumerical analysisPhotothermal therapySquamous cell carcinomaThermal damage
Mesh Keyword
BleedingsConditionContinuous-wave lasersHyperthermiaOutdoor activitiesPhoto-thermalPhotothermal therapySkin cancersSquamous cell carcinomaThermal damageCarcinoma, Squamous CellCell Line, TumorGoldHumansMetal NanoparticlesPhotothermal TherapyUltraviolet Rays
All Science Classification Codes (ASJC)
Analytical ChemistryInformation SystemsAtomic and Molecular Physics, and OpticsBiochemistryInstrumentationElectrical and Electronic Engineering
Abstract
Due to increased exposure to ultraviolet radiation caused by increased outdoor activities, the incidence of skin cancer is increasing. Incision is the most typical method for treating skin cancer, and various treatments that can minimize the risks of incision surgery are being investigated. Among them, photothermal therapy is garnering attention because it does not cause bleeding and affords rapid recovery. In photothermal therapy, tumor death is induced via temperature increase. In this study, a numerical study based on heat transfer theory was conducted to investigate the death of squamous cell carcinoma located in the skin layer based on various shapes of gold nanoparticles (AuNPs) used in photothermal therapy. The quantitative correlation between the conditions of various AuNPs and the laser intensity that yields the optimal photothermal treatment effect was derived using the effective apoptosis ratio. It was confirmed that optimal conditions exist for maximizing apoptosis within a tumor tissue and minimizing the thermal damage to surrounding normal tissues when using AuNPs under various conditions. Furthermore, it is envisioned that research result will be utilized as a standard for photothermal treatment in the future.
ISSN
1424-8220
Language
eng
URI
https://dspace.ajou.ac.kr/dev/handle/2018.oak/32551
DOI
https://doi.org/10.3390/s22041671
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Type
Article
Funding
Funding: This work was supported by a National Research Foundation of Korea (NRF) grant funded by the Korean government (NSIT) (No. NRF-2018R1A2B2001082).
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Kim, Hyun Jung 김현정
Department of Mechanical Engineering
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