arXiv:2411.07177cs.ROphysics.bio-ph2024-11

用水母刺囊和磁控微粒造出能深入组织的生物机器人。

Biohybrid Microrobots Based on Jellyfish Stinging Capsules and Janus Particles for In Vitro Deep-Tissue Drug Penetration

  • 将水母刺囊与磁性微粒结合,实现定向导航与深层穿透。
  • 在体外成功注入癌细胞球和线虫体内,释放预载药物。
  • 适合研究深部组织药物递送,或为未来体内应用奠基。

基于自推进活性粒子的微机器人已扩展至亚毫米尺度,适用于微纳米级载具操控及靶向药物递送等任务。然而,实现深部组织穿透与药物递送仍是挑战。本研究开发了一种新型生物杂化微机器人,由水母刺囊(作为天然纳米注射器)与活性Janus微粒(JP)组装而成。微机器人的运动与导航通过磁场诱导滚动实现,而刺囊在JP表面的装载则由电场控制。当生物杂化微机器人精确导航至靶组织附近后,通过溶液中特定酶激活刺囊,触发管状结构射出并释放预载分子。该方法在体外成功实现对癌细胞球及活秀丽隐杆线虫的渗透与药物/毒素递送。研究结果为未来仿生微机器人实现深层穿透与药物递送提供了新思路。未来可探索不同胶囊类型封装多种药物以增强通用性,亦有望推动体内应用发展。

原文摘要 · Abstract (English)

Microrobots engineered from self-propelling active particles, extend the reach of robotic operations to submillimeter dimensions and are becoming increasingly relevant for various tasks, such as manipulation of micro/nanoscale cargo, particularly targeted drug delivery. However, achieving deep-tissue penetration and drug delivery remain a challenge. This work developed a novel biohybrid microrobot consisting of jellyfish stinging capsules, which act as natural nanoinjectors for efficient penetration and delivery, assembled onto an active Janus particle (JP). While microrobot transport and navigation was externally controlled by magnetic field-induced rolling, capsule loading onto the JP surface was controlled by electric field. Following precise navigation of the biohybrid microrobots to the vicinity of target tissues, the capsules were activated by a specific enzyme introduced to the solution, which then triggered tubule ejection and release of the preloaded molecules. Use of such microrobots for penetration of and delivery of the preloaded drug/toxin to targeted cancer spheroids and live Caenorhabditis elegans was demonstrated in-vitro. The findings offer insights for future development of bio-inspired microrobots capable of deep penetration and drug delivery. Future directions may involve encapsulation of various drugs within different capsule types for enhanced versatility. This study may also inspire in-vivo applications involving deep tissue drug delivery.

微机器人靶向递送生物杂化药物渗透

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