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中空微针皮内注射时皮肤组织的液体吸收。

Fluid absorption by skin tissue during intradermal injections through hollow microneedles.

机构信息

Department of Mechanical Engineering, The University of British Columbia, 2054-6250 Applied Science Lane, Vancouver, British Columbia, V6T 1Z4, Canada.

Department of Electrical and Computer Engineering, The University of British Columbia, 2332 Main Mall, Vancouver, British Columbia, V6T 1Z4, Canada.

出版信息

Sci Rep. 2018 Sep 13;8(1):13749. doi: 10.1038/s41598-018-32026-9.

Abstract

Hollow microneedles are an emerging technology for delivering drugs and therapeutics, such as vaccines and insulin, into the skin. Although the benefits of intradermal drug delivery have been known for decades, our understanding of fluid absorption by skin tissue has been limited due to the difficulties in imaging a highly scattering biological material such as skin. Here, we report the first real-time imaging of skin tissue at the microscale during intradermal injections through hollow microneedles, using optical coherence tomography. We show that skin tissue behaves like a deformable porous medium and absorbs fluid by locally expanding rather than rupturing to form a single fluid filled cavity. We measure the strain distribution in a cross section of the tissue to quantify local tissue deformation, and find that the amount of volumetric expansion of the tissue corresponds closely to the volume of fluid injected. Mechanically restricting tissue expansion limits fluid absorption into the tissue. Our experimental findings can provide insights to optimize the delivery of drugs into skin for different therapeutic applications, and to better model fluid flow into biological tissue.

摘要

中空微针是一种将药物和治疗剂(如疫苗和胰岛素)递送至皮肤的新兴技术。尽管几十年来人们已经了解到经皮给药的好处,但由于皮肤等高度散射生物材料的成像困难,我们对皮肤组织的流体吸收的理解一直受到限制。在这里,我们通过中空微针报告了首次在微尺度实时观察到的经皮注射过程中的皮肤组织,使用的是光相干断层扫描技术。我们表明,皮肤组织的行为类似于可变形多孔介质,通过局部膨胀而不是破裂来吸收流体,从而形成单个充满流体的腔。我们测量组织横截面中的应变分布以量化局部组织变形,并发现组织的体积膨胀量与注入的流体量密切相关。机械限制组织膨胀会限制流体被吸收到组织中。我们的实验结果可以为不同治疗应用的药物递送至皮肤提供优化见解,并更好地模拟流体流入生物组织的情况。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a895/6137045/692f7b2bbe8a/41598_2018_32026_Fig1_HTML.jpg

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