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用于体内和体外生物医学应用的伪造微纳器件。

Fabricated micro-nano devices for in vivo and in vitro biomedical applications.

机构信息

Advanced Materials Processing and Analysis Center, Nanoscience Technology Center, Materials Science and Engineering, University of Central Florida, Orlando, FL, USA.

出版信息

Wiley Interdiscip Rev Nanomed Nanobiotechnol. 2013 Nov-Dec;5(6):544-68. doi: 10.1002/wnan.1236. Epub 2013 Jul 26.

Abstract

In recent years, the innovative use of microelectromechanical systems (MEMSs) and nanoelectromechanical systems (NEMSs) in biomedical applications has opened wide opportunities for precise and accurate human diagnostics and therapeutics. The introduction of nanotechnology in biomedical applications has facilitated the exact control and regulation of biological environments. This ability is derived from the small size of the devices and their multifunctional capabilities to operate at specific sites for selected durations of time. Researchers have developed wide varieties of unique and multifunctional MEMS/NEMS devices with micro and nano features for biomedical applications (BioMEMS/NEMS) using the state of the art microfabrication techniques and biocompatible materials. However, the integration of devices with the biological milieu is still a fundamental issue to be addressed. Devices often fail to operate due to loss of functionality, or generate adverse toxic effects inside the body. The in vitro and in vivo performance of implantable BioMEMS such as biosensors, smart stents, drug delivery systems, and actuation systems are researched extensively to understand the interaction of the BioMEMS devices with physiological environments. BioMEMS developed for drug delivery applications include microneedles, microreservoirs, and micropumps to achieve targeted drug delivery. The biocompatibility of BioMEMS is further enhanced through the application of tissue and smart surface engineering. This involves the application of nanotechnology, which includes the modification of surfaces with polymers or the self-assembly of monolayers of molecules. Thereby, the adverse effects of biofouling can be reduced and the performance of devices can be improved in in vivo and in vitro conditions.

摘要

近年来,微机电系统(MEMS)和纳机电系统(NEMS)在生物医学应用中的创新使用为精确和准确的人体诊断和治疗开辟了广泛的机会。纳米技术在生物医学应用中的引入促进了对生物环境的精确控制和调节。这种能力源自器件的小尺寸及其在特定位置操作的多功能性,持续时间为选定的时间段。研究人员使用最先进的微制造技术和生物相容性材料开发了广泛的独特的和多功能的 MEMS/NEMS 设备,具有微纳特征,用于生物医学应用(BioMEMS/NEMS)。然而,将设备与生物环境集成仍然是一个需要解决的基本问题。由于功能丧失,设备经常无法运行,或者在体内产生不良的毒性作用。植入式 BioMEMS 的体外和体内性能,如生物传感器、智能支架、药物输送系统和致动系统,正在进行广泛研究,以了解 BioMEMS 设备与生理环境的相互作用。用于药物输送应用的 BioMEMS 包括微针、微储器和微泵,以实现靶向药物输送。通过应用组织和智能表面工程进一步提高 BioMEMS 的生物相容性。这涉及到纳米技术的应用,包括用聚合物修饰表面或分子的单层自组装。从而可以减少生物污垢的不良影响,并提高设备在体内和体外条件下的性能。

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