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肠道绒毛启发的基于数学的基础层工程化微针 (IMBEMs) 用于在多样化黏膜中进行生物标志物富集和药物沉积过程中的有效分子交换。

Intestinal Villi-Inspired Mathematically Base-Layer Engineered Microneedles (IMBEMs) for Effective Molecular Exchange during Biomarker Enrichment and Drug Deposition in Diversified Mucosa.

机构信息

Department of Pharmacology, School of Basic Medicine, Tongji Medical College, Huazhong University of Science and Technology, Wuhan 430030, China.

Hubei Key Laboratory of Drug Target Research and Pharmacodynamic Evaluation, Huazhong University of Science and Technology, Wuhan 430030, China.

出版信息

ACS Nano. 2023 Aug 22;17(16):15696-15712. doi: 10.1021/acsnano.3c02944. Epub 2023 Aug 7.

Abstract

The mucosa-interfacing systems based on bioinspired engineering design for sampling/drug delivery have manifested crucial potential for the monitoring of infectious diseases and the treatment of mucosa-related diseases. However, their efficiency and validity are severely restricted by limited contact area for molecular transfer and dissatisfactory capture/detachment capability. Herein, inspired by the multilayer villus structure of the small intestine that enables high nutrient absorption, a trigonometric function-based periodic pattern was fabricated and integrated on the base layer of the microneedle patch, exhibiting a desirable synergistic effect with needle tips for deep sample enrichment and promising molecular transfer, significantly improving the device-mucosa bidirectional interaction. Moreover, mathematical modeling and finite element analysis were adopted to visualize and quantify the microcosmic molecular transmission process, guiding parameter optimization in actual situation. Encouragingly, these intestinal villi-inspired mathematically base-layer engineered microneedles (IMBEMs) have demonstrated distinguished applicability among mucosa tissue with varying surface curvatures, tissue toughness, and local environments, and simultaneously, have gained favorable support from healthy volunteers receiving preliminary test of IMBEMs patches. Overall, validated by numerous and tests, the IMBEMs were confirmed to act as a promising candidate to facilitate mucosa-based sampling and topical drug delivery, indicating highly clinical translation potential.

摘要

基于仿生工程设计的黏膜界面系统在用于采样/药物输送方面表现出了对传染病监测和黏膜相关疾病治疗的重要潜力。然而,其效率和有效性受到分子转移的有限接触面积和不理想的捕获/脱离能力的严重限制。受小肠多层绒毛结构能够实现高营养吸收的启发,在此基础上构建了一种基于三角函数的周期性图案,并将其集成到微针贴片的基底层上,与针尖协同作用,实现了深层样本的有效富集和有前景的分子传递,显著改善了器件与黏膜的双向相互作用。此外,采用数学建模和有限元分析来可视化和量化微观分子传输过程,指导实际情况中的参数优化。令人鼓舞的是,这些受肠道绒毛启发的基于数学的基底层工程化微针(IMBEMs)在具有不同表面曲率、组织韧性和局部环境的黏膜组织中表现出了显著的适用性,同时也得到了接受 IMBEMs 贴片初步测试的健康志愿者的积极支持。总的来说,经过大量的和 测试验证,IMBEMs 被证实是一种有前途的候选方案,可促进基于黏膜的采样和局部药物输送,表明其具有很高的临床转化潜力。

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