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基于 MoS 的磁驱动生物模板微机器人用于生物医学应用。

MoSBOTs: Magnetically Driven Biotemplated MoS -Based Microrobots for Biomedical Applications.

机构信息

Institute of Robotics and Intelligent Systems, ETH Zurich, Tannenstrasse 3, Zurich, CH 8092, Switzerland.

Department of Analytical Chemistry, Physical Chemistry and Chemical Engineering, Universidad de Alcalá, Alcalá de Henares, Madrid, E-28871, Spain.

出版信息

Small. 2022 Aug;18(33):e2203821. doi: 10.1002/smll.202203821. Epub 2022 Jul 22.

Abstract

2D layered molybdenum disulfide (MoS ) nanomaterials are a promising platform for biomedical applications, particularly due to its high biocompatibility characteristics, mechanical and electrical properties, and flexible functionalization. Additionally, the bandgap of MoS can be engineered to absorb light over a wide range of wavelengths, which can then be transformed into local heat for applications in photothermal tissue ablation and regeneration. However, limitations such as poor stability of aqueous dispersions and low accumulation in affected tissues impair the full realization of MoS for biomedical applications. To overcome such challenges, herein, multifunctional MoS -based magnetic helical microrobots (MoSBOTs) using cyanobacterium Spirulina platensis are proposed as biotemplate for therapeutic and biorecognition applications. The cytocompatible microrobots combine remote magnetic navigation with MoS photothermal activity under near-infrared irradiation. The resulting photoabsorbent features of the MoSBOTs are exploited for targeted photothermal ablation of cancer cells and on-the-fly biorecognition in minimally invasive oncotherapy applications. The proposed multi-therapeutic MoSBOTs hold considerable potential for a myriad of cancer treatment and diagnostic-related applications, circumventing current challenges of ablative procedures.

摘要

二维层状二硫化钼(MoS )纳米材料是生物医学应用的一个有前途的平台,特别是由于其具有高生物相容性、机械和电气性能以及灵活的功能化特性。此外,MoS 的带隙可以被设计成吸收宽波长范围内的光,然后将其转化为局部热量,用于光热组织消融和再生应用。然而,水相分散体稳定性差和在受影响组织中积累低等限制因素,阻碍了 MoS 在生物医学应用中的全面实现。为了克服这些挑战,本文提出了一种使用蓝藻螺旋藻作为治疗和生物识别应用的生物模板的多功能 MoS 基磁性螺旋微机器人(MoSBOTs)。这种细胞相容性的微机器人结合了远程磁场导航和 MoS 光热活性,在近红外光照射下进行。所得到的 MoSBOTs 的光吸收特征被用于靶向光热消融癌细胞和微创肿瘤治疗应用中的实时生物识别。所提出的多治疗性 MoSBOTs 在治疗和诊断相关应用方面具有巨大的潜力,可以避免当前消融程序的挑战。

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