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载有溶瘤腺病毒的磁驱 Janus 细胞机器人用于膀胱癌的主动靶向病毒治疗

Magnetic-Powered Janus Cell Robots Loaded with Oncolytic Adenovirus for Active and Targeted Virotherapy of Bladder Cancer.

机构信息

Institute of Urology, The Third Affiliated Hospital of Shenzhen University, Shenzhen, 518000, P. R. China.

Shenzhen Following Precision Medical Research Institute, Luohu Hospital Group, Shenzhen, 518000, P. R. China.

出版信息

Adv Mater. 2022 Jul;34(26):e2201042. doi: 10.1002/adma.202201042. Epub 2022 May 27.

Abstract

A unique robotic medical platform is designed by utilizing cell robots as the active "Trojan horse" of oncolytic adenovirus (OA), capable of tumor-selective binding and killing. The OA-loaded cell robots are fabricated by entirely modifying OA-infected 293T cells with cyclic arginine-glycine-aspartic acid tripeptide (cRGD) to specifically bind with bladder cancer cells, followed by asymmetric immobilization of Fe O nanoparticles (NPs) on the cell surface. OA can replicate in host cells and induce cytolysis to release the virus progeny to the surrounding tumor sites for sustainable infection and oncolysis. The asymmetric coating of magnetic NPs bestows the cell robots with effective movement in various media and wireless manipulation with directional migration in a microfluidic device and bladder mold under magnetic control, further enabling steerable movement and prolonged retention of cell robots in the mouse bladder. The biorecognition of cRGD and robust, controllable propulsion of cell robots work synergistically to greatly enhance their tissue penetration and anticancer efficacy in the 3D cancer spheroid and orthotopic mouse bladder tumor model. Overall, this study integrates cell-based microrobots with virotherapy to generate an attractive robotic system with tumor specificity, expanding the operation scope of cell robots in biomedical community.

摘要

一种独特的机器人医疗平台是利用细胞机器人作为溶瘤腺病毒(OA)的活性“特洛伊木马”设计的,能够进行肿瘤选择性结合和杀伤。载 OA 的细胞机器人是通过完全修饰 OA 感染的 293T 细胞来制造的,用环精氨酸-甘氨酸-天冬氨酸三肽(cRGD)进行修饰,使其能够特异性结合膀胱癌细胞,然后在细胞表面不对称固定 Fe O 纳米颗粒(NPs)。OA 可以在宿主细胞中复制,并诱导细胞溶解,将病毒后代释放到周围肿瘤部位,以实现持续感染和溶瘤作用。磁性 NPs 的不对称涂层使细胞机器人能够在各种介质中有效运动,并在微流控装置和磁控膀胱模具中进行定向迁移的无线操纵,从而进一步实现细胞机器人的可控运动和在小鼠膀胱中的长时间保留。cRGD 的生物识别和细胞机器人的稳健、可控推进协同作用,大大增强了它们在 3D 癌症球体和原位小鼠膀胱癌模型中的组织穿透和抗癌功效。总的来说,本研究将基于细胞的微机器人与病毒疗法相结合,产生了一种具有肿瘤特异性的有吸引力的机器人系统,扩大了细胞机器人在生物医学领域的操作范围。

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