Choi Jeong-Woo, Oh Byung-Keun, Kim Young-Kee, Min Junhong
Department of Chemical and Biomolecular Engineering, Sogang University, Seoul 121-742, Korea.
J Microbiol Biotechnol. 2007 Jan;17(1):5-14.
Nanotechnology is the creation and utilization of materials, devices, and systems through the control of matter on the nanometer. The technology has been applied to biodevices such as bioelectronics and biochips to improve their performances. Nanoparticles, such as gold (Au) nanoparticles, are the most widely used of the various other nanotechnologies for manipulation at the nanoscale as well as nanobiosensors. The immobilization of biomolecules is playing an increasingly important role in the development of biodevices with high performance. Nanopatterning technology, which is able to increase the density of chip arrays, offers several advantages, including cost lowering, simultaneous multicomponent detection, and the efficiency increase of biochemical reactions. A microfluidic system incorporated with control of nanoliter of fluids is also one of the main applications of nanotechnologies. This can be widely utilized in the various fields because it can reduce detection time due to tiny amounts of fluids, increase signal-to-noise ratio by nanoparticles in channel, and detect multi-targets simultaneously in one chamber. This article reviews nanotechnologies such as the application of nanoparticles for the detection of biomolecules, the immobilization of biomolecules at nanoscale, nanopatterning technologies, and the microfluidic system for molecular diagnosis.
纳米技术是通过对纳米级物质的控制来创造和利用材料、器件及系统。该技术已应用于生物电子学和生物芯片等生物器件,以提高其性能。纳米粒子,如金(Au)纳米粒子,是纳米技术中在纳米尺度操作以及纳米生物传感器方面应用最为广泛的。生物分子的固定化在高性能生物器件的开发中发挥着越来越重要的作用。能够提高芯片阵列密度的纳米图案化技术具有多种优势,包括降低成本、同时进行多组分检测以及提高生化反应效率。结合纳升级流体控制的微流控系统也是纳米技术的主要应用之一。由于其可减少因微量流体导致的检测时间、通过通道中的纳米粒子提高信噪比以及在一个腔室中同时检测多个目标,所以能在各个领域广泛应用。本文综述了纳米技术,如纳米粒子用于生物分子检测、生物分子在纳米尺度的固定化、纳米图案化技术以及用于分子诊断的微流控系统。