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Nanoparticle-Regulated Semiartificial Magnetotactic Bacteria with Tunable Magnetic Moment and Magnetic Sensitivity

机译:纳米粒子调节的半想半磁体细菌,可调谐磁矩和磁敏度

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摘要

Micro-/nanomotors are widely used in micro-/nanoprocessing, cargo transportation, and other microscale tasks because of their ability to move independently. Many biological hybrid motors based on bacteria have been developed. Magnetotactic bacteria (MTB) have been employed as motors in biological systems because of their good biocompatibility and magnetotactic motion in magnetic fields. However, the magnetotaxis of MTB is difficult to control due to the lack of effective methods. Herein, a strategy that enables control over the motion of MTB is presented. By depositing synthetic Fe_3O_4 magnetic nanoparticles on the surface of MTB, semiartificial magnetotactic bacteria (SAMTB) are produced. The overall magnetic properties of SAMTB, including saturation magnetization, residual magnetization, and blocking temperature, are regulated in a multivariate and multilevel fashion, thus regulating the magnetic sensitivity of SAMTB. This strategy provides a feasible method to manoeuvre MTB for applications in complex fluid environments, such as magnetic drug release systems and real-time tracking systems. Furthermore, this concept and methodology provide a paradigm for controlling the mobility of micro-/nanomotors based on natural small organisms.
机译:微/纳米电机广泛用​​于微/纳米处理,货物运输和其他微尺度任务,因为它们可以独立移动。已经开发出基于细菌的许多生物混合动力车电动机。由于它们在磁场中的良好的生物相容性和磁通运动,因此在生物系统中被用作生物系统中的电动机。然而,由于缺乏有效的方法,MTB的磁电池难以控制。这里,呈现了一种能够控制MTB运动的策略。通过在MTB表面上沉积合成Fe_3O_4磁性纳米颗粒,产生半想磁通细菌(SAMTB)。 SAMTB的整体磁性,包括饱和磁化,剩余磁化和阻塞温度,以多变量和多级方式调节,从而调节SAMTB的磁敏度。该策略为在复杂的流体环境中的应用,例如磁性药物释放系统和实时跟踪系统,提供了一种可行的MTB方法。此外,该概念和方法提供了一种用于控制基于天然小生物的微/纳米运动机的移动性的范例。

著录项

  • 来源
    《Small》 |2019年第15期|共7页
  • 作者单位

    Beijing National Laboratory for Molecular Science Institute of Chemistry Chinese Academy of Sciences North First Street 2 Zhongguancun Beijing 100190 China;

    Beijing Key Laboratory of Bioelectromagnetism Institute of Electrical Engineering Chinese Academy of Sciences Beijing 100190 China;

    Beijing National Laboratory for Molecular Science Institute of Chemistry Chinese Academy of Sciences North First Street 2 Zhongguancun Beijing 100190 China;

    Beijing National Laboratory for Molecular Science Institute of Chemistry Chinese Academy of Sciences North First Street 2 Zhongguancun Beijing 100190 China;

    Beijing National Laboratory for Molecular Science Institute of Chemistry Chinese Academy of Sciences North First Street 2 Zhongguancun Beijing 100190 China;

    Beijing National Laboratory for Molecular Science Institute of Chemistry Chinese Academy of Sciences North First Street 2 Zhongguancun Beijing 100190 China;

    Beijing National Laboratory for Molecular Science Institute of Chemistry Chinese Academy of Sciences North First Street 2 Zhongguancun Beijing 100190 China;

    Beijing Key Laboratory of Bioelectromagnetism Institute of Electrical Engineering Chinese Academy of Sciences Beijing 100190 China;

    Beijing National Laboratory for Molecular Science Institute of Chemistry Chinese Academy of Sciences North First Street 2 Zhongguancun Beijing 100190 China;

    Beijing National Laboratory for Molecular Science Institute of Chemistry Chinese Academy of Sciences North First Street 2 Zhongguancun Beijing 100190 China;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 特种结构材料;
  • 关键词

    magnetic moment; magnetic nanoparticles; magnetosensitivity; micro-/ nanomotors; semiartificial magnetotactic bacteria;

    机译:磁矩;磁性纳米粒子;磁化敏感性;微/纳米热管;半动磁体细菌;

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