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3D-Printed Biodegradable Microswimmer for Theranostic Cargo Delivery and Release

机译:用于Theranostic货物交付和释放的3D印刷生物降解的MicroWimmer

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摘要

Untethered mobile microrobots have the potential to leverage minimally invasive theranostic functions precisely and efficiently in hard-to-reach, confined, and delicate inner body sites. However, such a complex task requires an integrated design and engineering, where powering, control, environmental sensing, medical functionality, and biodegradability need to be considered altogether. The present study reports a hydrogel-based, magnetically powered and controlled, enzymatically degradable microswimmer, which is responsive to the pathological markers in its microenvironment for theranostic cargo delivery and release tasks. We design a double-helical architecture enabling volumetric cargo loading and swimming capabilities under rotational magnetic fields and a 3D-printed optimized 3D microswimmer (length = 20 mu m and diameter = 6 mu m) using two-photon polymerization from a magnetic precursor suspension composed from gelatin methacryloyl and biofunctionalized superparamagnetic iron oxide nanoparticles. At normal physiological concentrations, we show that matrix metalloproteinase-2 (MMP-2) enzyme could entirely degrade the microswimmer in 118 h to solubilized nontoxic products. The microswimmer rapidly responds to the pathological concentrations of MMP-2 by swelling and thereby boosting the release of the embedded cargo molecules. In addition to delivery of the drug type of therapeutic cargo molecules completely to the given microenvironment after full degradation, microswimmers can also release other functional cargos. As an example demonstration, anti-ErbB 2 antibody-tagged magnetic nanoparticles are released from the fully degraded microswimmers for targeted labeling of SKBR3 breast cancer cells in vitro toward a potential future scenario of medical imaging of remaining cancer tissue sites after a microswimmer-based therapeutic delivery operation.
机译:不受限化的移动微米有可能在难以触及,限制和精细的内身部位中精确且有效地利用微创的治疗功能。然而,这种复杂的任务需要一个集成的设计和工程,其中需要完全考虑供电,控制,环境感测,医疗功能和生物降解性。本研究报告了一种基于水凝胶的磁力和控制的酶促可降解的微粒,其对其微环境中的病理标志物响应于其用于治疗货物输送和释放任务。我们设计了一种双螺旋架构,可在旋转磁场下实现体积货物负载和游泳能力,以及使用从组成的磁性前体悬架的双光子聚合的3D印刷优化的3D微粒(长度=20μm和直径=6μm)从明胶甲基丙烯酰基和生物官能化超顺磁性氧化铁纳米粒子。在正常的生理浓度下,我们表明基质金属蛋白酶-2(MMP-2)酶可以在118小时内完全降解至溶解的无毒产物。微粒通过溶胀迅速响应MMP-2的病理浓度,从而提高嵌入式货物分子的释放。除了完全降解后完全向给定的微环境的药物类型的治疗性货物分子外,还可以释放其他功能性尸体。作为示例演示,抗ERBB 2抗体标记的磁性纳米颗粒被释放出来,从完全降解的微量威尔威尔斯在体外逐渐降解SKBR3乳腺癌细胞的靶向标记,朝着微宽的治疗后剩余癌组织部位的潜在未来的医学成像场景交付操作。

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