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4D Printing of a Bioinspired Microneedle Array with Backward-Facing Barbs for Enhanced Tissue Adhesion

机译:具有后向倒刺的生物启发式微针阵列的4D打印,可增强组织粘附力

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摘要

Microneedle (MN), a miniaturized needle with a length-scale of hundreds of micrometers, has received a great deal of attention because of its minimally invasive, pain-free, and easy-to-use nature. However, a major challenge for controlled long-term drug delivery or biosensing using MN is its low tissue adhesion. Although microscopic structures with high tissue adhesion are found from living creatures in nature (e.g., microhooks of parasites, barbed stingers of honeybees, quills of porcupines), creating MNs with such complex microscopic features is still challenging with traditional fabrication methods. Here, a MN with bioinspired backward-facing curved barbs for enhanced tissue adhesion, manufactured by a digital light processing 3D printing technique, is presented. Backward-facing barbs on a MN are created by desolvation-induced deformation utilizing cross-linking density gradient in a photocurable polymer. Barb thickness and bending curvature are controlled by printing parameters and material composition. It is demonstrated that tissue adhesion of a backward-facing barbed MN is 18 times stronger than that of barbless MN. Also demonstrated is sustained drug release with barbed MNs in tissue. Improved tissue adhesion of the bioinspired MN allows for more stable and robust performance for drug delivery, biofluid collection, and biosensing.
机译:微针(MN)是一种长度为数百微米的微型针,由于其微创,无痛且易于使用的特性而受到了广泛的关注。但是,使用MN控制长期药物输送或生物传感的主要挑战是其低组织粘附力。尽管从自然界中的生物中发现了具有高组织粘附力的微观结构(例如,寄生虫的微钩,蜜蜂的带刺的刺,豪猪的羽毛),但是使用传统的制造方法来制造具有如此复杂的微观特征的MN仍然是一项挑战。在这里,提出了一种通过数字光处理3D打印技术制造的,具有生物启发性,用于增强组织附着力的向后弯曲倒钩的MN。通过在光固化聚合物中利用交联密度梯度通过去溶剂化引起的变形来创建MN上的向后倒钩。倒钩厚度和弯曲曲率由印刷参数和材料成分控制。已经证明,倒刺的MN的组织粘附力是无倒刺的MN的组织粘附力的18倍。还证明了在组织中带有倒刺的MN的药物持续释放。受到生物启发的MN改善了组织的附着力,从而使药物输送,生物流体收集和生物传感性能更加稳定和强大。

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