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A novel and controllable cell-based microrobot in real vascular network for target tumor therapy

机译:实际血管网络中靶肿瘤疗法的一种新型和可控制的细胞基微孔

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Magnetic microrobots can be propelled precisely and wirelessly in vivo using magnetic field for targeted drug delivery and early detection. They are promising for clinical trials since magnetic fields are capable of penetrating most materials with minimal interaction, and are nearly harmless to human beings. However, challenges like the biocompatibility, biodegradation and therapeutic effects of these robots must be resolved before this technique is allowed for preclinical development. In this study, we proposed a cell-robot based on macrophages for carrying drugs to kill tumors propelled by magnetic gradient-based pulling. A custom-designed system with strong gradient magnetic field system in three-dimensional (3D) space using the minimum number of coils is used for precise control of the cell-based microrobot. The cell-based microrobots were fabricated by assembling magnetic nanoparticles (Fe3O4), anti-cancer drugs (DOX) into macrophages for magnetic actuation and therapeutic effects. Vitro experiments show that cell-based microrobots can be accurately transported to the destination or approaching a targeted cancer cell. The magnetic nanoparticles have negligible effects on the cell-based microrobot and the organism, which makes the cell-based microrobot safe for in vivo experiments. The carried drugs in the cell-based microrobot can be released by the irradiation of the near-field infrared and kill the cancer cells. Further in vivo experiments prove that the cell-based microrobot can be transported to tumor area and release drugs to kill cancer effectively. The research provides biocompatible and biodegradable cell-based microrobots for early tumor prevention and targeted precision therapy.
机译:可以使用磁场精确且无线地通过用于靶向药物递送和早期检测的磁场精确地和无线地推进磁性微型器皿。它们是对临床试验有前途的,因为磁场能够穿透最小的相互作用,并且对人类几乎无害。然而,在允许临床前发育之前必须解决这些机器人的生物相容性,生物分解和治疗效果的挑战。在这项研究中,我们提出了一种基于巨噬细胞的细胞 - 机器人用于携带药物以杀死通过磁性梯度的拉伸推进的肿瘤。使用最小线圈数量的三维(3D)空间中具有强大梯度磁场系统的定制系统,用于精确控制基于电池的微型电磁炉。通过将磁性纳米颗粒(Fe3O4),抗癌药物(DOX)组装成巨噬细胞的磁性驱动和治疗效果来制造基于细胞的微生物。体外实验表明,可以将基于细胞的微生物精确地传送到目的地或接近靶向癌细胞。磁性纳米粒子对细胞基微毒液和生物体具有可忽略的影响,这使得细胞基微毒素在体内实验中进行安全。通过近场红外线照射并杀死癌细胞,可以释放细胞基微毒物中的携带药物。此外,在体内实验证明,可以将细胞的微毒物传送到肿瘤区域并释放药物以有效杀死癌症。该研究提供了用于早期肿瘤预防和靶向精密治疗的生物相容性和生物降解的细胞基微孔。

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