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用于无创拉曼光谱的工程化血管化皮肤模拟体模

Engineering vascularized skin-mimetic phantom for non-invasive Raman spectroscopy.

作者信息

Raj Piyush, Wu Lintong, Arora Saransh, Bhatt Raj, Zuo Yi, Fang Zhiwei, Verdoold Remco, Koch Tanja, Gu Luo, Barman Ishan

机构信息

Department of Mechanical Engineering, Johns Hopkins University, Baltimore, MD 21218, USA.

Department of Biology, Johns Hopkins University, Baltimore, MD 21218, USA.

出版信息

Sens Actuators B Chem. 2024 Apr 1;404. doi: 10.1016/j.snb.2023.135240. Epub 2023 Dec 28.

Abstract

Recent advances in Raman spectroscopy have shown great potential for non-invasive analyte sensing, but the lack of a standardized optical phantom for these measurements has hindered further progress. While many research groups have developed optical phantoms that mimic bulk optical absorption and scattering, these materials typically have strong Raman scattering, making it difficult to distinguish metabolite signals. As a result, solid tissue phantoms for spectroscopy have been limited to highly scattering tissues such as bones and calcifications, and metabolite sensing has been primarily performed using liquid tissue phantoms. To address this issue, we have developed a layered skin-mimetic phantom that can support metabolite sensing through Raman spectroscopy. Our approach incorporates millifluidic vasculature that mimics blood vessels to allow for diffusion akin to metabolite diffusion in the skin. Furthermore, our skin phantoms are mechanically mimetic, providing an ideal model for development of minimally invasive optical techniques. By providing a standardized platform for measuring metabolites, our approach has the potential to facilitate critical developments in spectroscopic techniques and improve our understanding of metabolite dynamics .

摘要

拉曼光谱学的最新进展已显示出在无创分析物传感方面的巨大潜力,但缺乏用于这些测量的标准化光学体模阻碍了进一步的发展。虽然许多研究小组已开发出模拟整体光吸收和散射的光学体模,但这些材料通常具有很强的拉曼散射,使得难以区分代谢物信号。因此,用于光谱学的固体组织体模仅限于诸如骨骼和钙化等高度散射的组织,并且代谢物传感主要使用液体组织体模来进行。为了解决这个问题,我们开发了一种分层的仿皮肤体模,其能够通过拉曼光谱学支持代谢物传感。我们的方法纳入了模拟血管的微流体脉管系统,以允许类似于皮肤中代谢物扩散的扩散。此外,我们的皮肤体模在力学上具有模拟性,为微创光学技术的发展提供了理想模型。通过提供用于测量代谢物的标准化平台,我们的方法有潜力促进光谱技术的关键发展,并增进我们对代谢物动力学的理解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a354/10956615/4b15efaa7e44/nihms-1958101-f0001.jpg

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