Suppr超能文献

用于激光纹身治疗的双层光学组织模型的3D打印辅助制造。

3D printing-assisted fabrication of double-layered optical tissue phantoms for laser tattoo treatments.

作者信息

Kim Hanna, Hau Nguyen Trung, Chae Yu-Gyeong, Lee Byeong-Il, Kang Hyun Wook

机构信息

Interdisciplinary Program of Marine-Bio, Electrical and Mechanical Engineering, Pukyong National University, Busan, Korea.

Medical Photonics Research Center, Korea Photonics Technology Institute (KOPTI), Gwangju, Korea.

出版信息

Lasers Surg Med. 2016 Apr;48(4):392-9. doi: 10.1002/lsm.22469. Epub 2016 Jan 8.

Abstract

BACKGROUND AND OBJECTIVE

Artificial skin phantoms have been developed as an alternative tissue for human skin experiments due to convenient use and easy storage. However, fabricating both thin (∼100 μm) epidermis and relatively thick dermis is often cumbersome, and most developed phantoms have hardly reflected specific human skin types. The objective of this study was to fabricate skin phantoms with 3D printing technique to emulate various human skin types (I-VI) along with the corresponding optical and mechanical properties for laser tattoo removal.

STUDY DESIGN/MATERIALS AND METHODS: Both gelatin and agar powders were mixed with coffee and TiO2 particles to fabricate skin phantoms with materials properties for various skin types (I-VI). A 3D printer was employed to precisely control the thickness of each phantom for epidermis and dermis layers. A number of concentrations of the coffee and TiO2 particles were used to determine the degree of absorption and scattering effects in various skin types. The optical properties between 500 and 1,000 nm for the fabricated phantoms were measured by double-integrating spheres with an inverse adding-doubling (IAD) algorithm. Optical coherence tomography (OCT) and rheometer were also utilized to evaluate optical (absorption and reduced scattering coefficients) and mechanical properties (compression modulus) of the fabricated phantoms, respectively.

RESULTS

Visible color inspections presented that the skin phantoms for types I, III, and VI similarly emulated the color space of the human skin types. The optical property measurements demonstrated that the absorption (μa) and reduced scattering (μ(s')) coefficients decreased with wavelengths. Compared to the human skin type VI, a dermis phantom represented quite equivalent values of μa and μ(s') whereas an epidermis phantom showed up to 30% lower μa but almost identical μ(s') over the wavelengths. The OCT measurements confirmed that the thicknesses of the epidermis and the dermis phantoms were measured to be 138.50 ± 0.01 μm and 0.81 ± 0.04 mm, respectively. The mechanical properties of the phantoms mixed with the agar volume of 40% yielded a compression modulus of 83.7 ± 14.8 kPa, which well corresponded to that of human forearm skin (50-95 kPa).

CONCLUSION

The 3D printing technique was able to reliably fabricate the double-layered phantoms emulating a variety of skin types (I-VI) along with the comparable optical and mechanical properties. Further investigations will incorporate artificial chromophores into the fabricated skin phantoms to reliably evaluate the new therapeutic wavelengths for laser tattoo removal.

摘要

背景与目的

由于使用方便且易于储存,人工皮肤模型已被开发用作人体皮肤实验的替代组织。然而,制造薄(约100μm)的表皮和相对厚的真皮通常很麻烦,并且大多数已开发的模型几乎没有反映特定的人类皮肤类型。本研究的目的是使用3D打印技术制造皮肤模型,以模拟各种人类皮肤类型(I - VI型)以及用于激光纹身去除的相应光学和机械性能。

研究设计/材料与方法:将明胶和琼脂粉与咖啡和二氧化钛颗粒混合,以制造具有各种皮肤类型(I - VI型)材料特性的皮肤模型。使用3D打印机精确控制每个模型表皮和真皮层的厚度。使用多种浓度的咖啡和二氧化钛颗粒来确定各种皮肤类型中的吸收和散射效果程度。通过具有反向加倍(IAD)算法的双积分球测量所制造模型在500至1000nm之间的光学特性。光学相干断层扫描(OCT)和流变仪也分别用于评估所制造模型的光学(吸收和约化散射系数)和机械性能(压缩模量)。

结果

肉眼颜色检查表明,I型、III型和VI型皮肤模型类似地模拟了人类皮肤类型的颜色空间。光学特性测量表明,吸收系数(μa)和约化散射系数(μ(s'))随波长降低。与人类VI型皮肤相比,真皮模型的μa和μ(s')值相当,而表皮模型在整个波长范围内μa低至30%,但μ(s')几乎相同。OCT测量证实,表皮和真皮模型的厚度分别测量为138.50±0.01μm和0.81±0.04mm。与40%琼脂体积混合的模型的机械性能产生的压缩模量为83.7±14.8kPa,与人类前臂皮肤的压缩模量(50 - 95kPa)非常吻合。

结论

3D打印技术能够可靠地制造双层模型,模拟各种皮肤类型(I - VI型)以及具有可比的光学和机械性能。进一步的研究将把人工发色团纳入所制造的皮肤模型中,以可靠地评估激光纹身去除的新治疗波长。

文献检索

告别复杂PubMed语法,用中文像聊天一样搜索,搜遍4000万医学文献。AI智能推荐,让科研检索更轻松。

立即免费搜索

文件翻译

保留排版,准确专业,支持PDF/Word/PPT等文件格式,支持 12+语言互译。

免费翻译文档

深度研究

AI帮你快速写综述,25分钟生成高质量综述,智能提取关键信息,辅助科研写作。

立即免费体验