Literature DB >> 27231605

Quantitative monitoring of laser-treated engineered skin using optical coherence tomography.

Yujin Ahn1, Chan-Young Lee1, Songyee Baek1, Taeho Kim2, Pilun Kim3, Sunghoon Lee4, Daejin Min4, Haekwang Lee4, Jeehyun Kim5, Woonggyu Jung6.   

Abstract

Nowadays, laser therapy is a common method for treating various dermatological troubles such as acne and wrinkles because of its efficient and immediate skin enhancement. Although laser treatment has become a routine procedure in medical and cosmetic fields, the prevention of side-effects, such as hyperpigmentation, redness and burning, still remains a critical issue that needs to be addressed. In order to reduce the side-effects while attaining efficient therapeutic outcomes, it is essential to understand the light-skin interaction through evaluation of physiological changes before and after laser therapy. In this study, we introduce a quantitative tissue monitoring method based on optical coherence tomography (OCT) for the evaluation of tissue regeneration after laser irradiation. To create a skin injury model, we applied a fractional CO2 laser on a customized engineered skin model, which is analogous to human skin in terms of its basic biological function and morphology. The irradiated region in the skin was then imaged by a high-speed OCT system, and its morphologic changes were analyzed by automatic segmentation software. Volumetric OCT images in the laser treated area clearly visualized the wound healing progress at different time points and provided comprehensive information which cannot be acquired through conventional monitoring methods. The results showed that the laser wound in engineered skins was mostly recovered from within 1~2 days with a fast recovery time in the vertical direction. However, the entire recovery period varied widely depending on laser doses and skin type. Our results also indicated that OCT-guided laser therapy would be a very promising protocol for optimizing laser treatment for skin therapy.

Entities:  

Keywords:  (100.6890) Three-dimensional image processing; (110.4500) Optical coherence tomography; (140.3330) Laser damage; (170.6935) Tissue characterization

Year:  2016        PMID: 27231605      PMCID: PMC4866446          DOI: 10.1364/BOE.7.001030

Source DB:  PubMed          Journal:  Biomed Opt Express        ISSN: 2156-7085            Impact factor:   3.732


  22 in total

1.  Imaging wound healing using optical coherence tomography and multiphoton microscopy in an in vitro skin-equivalent tissue model.

Authors:  Alvin T Yeh; Bunsho Kao; Woong Gyu Jung; Zhongping Chen; J Stuart Nelson; Bruce J Tromberg
Journal:  J Biomed Opt       Date:  2004 Mar-Apr       Impact factor: 3.170

2.  Spatiotemporal closure of fractional laser-ablated channels imaged by optical coherence tomography and reflectance confocal microscopy.

Authors:  Christina A Banzhaf; Bas S Wind; Mette Mogensen; Arne A Meesters; Uwe Paasch; Albert Wolkerstorfer; Merete Haedersdal
Journal:  Lasers Surg Med       Date:  2015-08-12       Impact factor: 4.025

3.  Evaluating cutaneous photoaging by use of multiphoton fluorescence and second-harmonic generation microscopy.

Authors:  Sung-Jan Lin; Ruei- Wu; Hsin-Yuan Tan; Wen Lo; Wei-Chou Lin; Tai-Horng Young; Chih-Jung Hsu; Jau-Shiuh Chen; Shiou-Hwa Jee; Chen-Yuan Dong
Journal:  Opt Lett       Date:  2005-09-01       Impact factor: 3.776

4.  Confocal laser scanning microscopy and optical coherence tomography for the evaluation of the kinetics and quantification of wound healing after fractional laser therapy.

Authors:  Elke Christina Erika Sattler; Katharina Poloczek; Raphaela Kästle; Julia Welzel
Journal:  J Am Acad Dermatol       Date:  2013-06-19       Impact factor: 11.527

5.  Optical coherence tomography.

Authors:  D Huang; E A Swanson; C P Lin; J S Schuman; W G Stinson; W Chang; M R Hee; T Flotte; K Gregory; C A Puliafito
Journal:  Science       Date:  1991-11-22       Impact factor: 47.728

6.  GPU-accelerated non-uniform fast Fourier transform-based compressive sensing spectral domain optical coherence tomography.

Authors:  Daguang Xu; Yong Huang; Jin U Kang
Journal:  Opt Express       Date:  2014-06-16       Impact factor: 3.894

7.  3D bioprinting of tissues and organs.

Authors:  Sean V Murphy; Anthony Atala
Journal:  Nat Biotechnol       Date:  2014-08       Impact factor: 54.908

8.  Monitoring of wound healing process of human skin after fractional laser treatments with optical coherence tomography.

Authors:  Meng-Tsan Tsai; Chih-Hsun Yang; Su-Chin Shen; Ya-Ju Lee; Feng-Yu Chang; Cheng-Shin Feng
Journal:  Biomed Opt Express       Date:  2013-10-07       Impact factor: 3.732

9.  A novel cell-printing method and its application to hepatogenic differentiation of human adipose stem cell-embedded mesh structures.

Authors:  Seung Hyun Ahn; Hyeong Jin Lee; Ji-Seon Lee; Hyeon Yoon; Wook Chun; Geun Hyung Kim
Journal:  Sci Rep       Date:  2015-08-21       Impact factor: 4.379

10.  Quantitative micro-elastography: imaging of tissue elasticity using compression optical coherence elastography.

Authors:  Kelsey M Kennedy; Lixin Chin; Robert A McLaughlin; Bruce Latham; Christobel M Saunders; David D Sampson; Brendan F Kennedy
Journal:  Sci Rep       Date:  2015-10-27       Impact factor: 4.379

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  2 in total

1.  Synthetic Retinoid Seletinoid G Improves Skin Barrier Function through Wound Healing and Collagen Realignment in Human Skin Equivalents.

Authors:  Eun-Soo Lee; Yujin Ahn; Il-Hong Bae; Daejin Min; Nok Hyun Park; Woonggyu Jung; Se-Hwa Kim; Yong Deog Hong; Won Seok Park; Chang Seok Lee
Journal:  Int J Mol Sci       Date:  2020-04-30       Impact factor: 5.923

2.  Automatic Segmentation of Laser-Induced Injury OCT Images Based on a Deep Neural Network Model.

Authors:  Tianxin Gao; Shuai Liu; Enze Gao; Ancong Wang; Xiaoying Tang; Yingwei Fan
Journal:  Int J Mol Sci       Date:  2022-09-21       Impact factor: 6.208

  2 in total

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