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Functionalized ultrasound-propelled magnetically guided nanomotors: Toward practical biomedical applications

机译:功能化超声驱动的磁导纳米电机:走向实际的生物医学应用

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摘要

Magnetically guided ultrasound-powered nanowire motors, functionalized with bioreceptors and a drug-loaded polymeric segment, are described for "capture and transport" and drug-delivery processes. These high-performance fuel-free motors display advanced capabilities and functionalities, including magnetic guidance, coordinated aligned movement, cargo towing, capture and isolation of biological targets, drug delivery, and operation in real-life biological and environmental media. The template-prepared three-segment Au-Ni-Au nanowire motors are propelled acoustically by mechanical waves produced by a piezoelectric transducer. An embedded nickel segment facilitates a magnetically guided motion as well as transport of large "cargo" along predetermined trajectories. Substantial improvement in the speed and power is realized by the controlled concavity formation at the end of the motor nanowire using a sphere lithography protocol. Functionalization of the Au segments with lectin and antiprotein A antibody bioreceptors allows capture and transport of E coli and S. aureus bacteria, respectively. Potential therapeutic applications are illustrated in connection to the addition of a pH-sensitive drug-loaded polymeric (PPy-PSS) segment. The attractive capabilities of these fuel-free acoustically driven functionalized Au-Ni-Au nanowires, along with the simple preparation procedure and minimal adverse effects of ultrasonic waves, make them highly attractive for diverse in vivo biomedical applications.
机译:描述了用于“捕获和运输”和药物递送过程的,以生物受体和载有药物的聚合物段功能化的,磁导超声驱动的纳米线电机。这些高性能的无燃料电动机具有先进的功能和功能,包括磁性引导,协调一致的运动,货物拖曳,捕获和隔离生物目标,药物输送以及在现实的生物和环境介质中运行。模板准备的三段式Au-Ni-Au纳米线电动机是由压电换能器产生的机械波以声学方式推动的。嵌入的镍段有助于磁性引导的运动以及沿预定轨迹的大“货物”运输。通过使用球形光刻协议在电机纳米线的末端进行受控的凹坑形成,可以显着提高速度和功率。用凝集素和抗蛋白A抗体生物受体对Au区段进行功能化,可以分别捕获和运输大肠杆菌和金黄色葡萄球菌。结合添加对pH敏感的载有药物的聚合物(PPy-PSS)片段说明了潜在的治疗应用。这些无燃料的声学驱动的功能化Au-Ni-Au纳米线具有吸引人的功能,加上简单的制备过程和最小的超声波不利影响,使其对多种体内生物医学应用具有高度的吸引力。

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