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微图形化技术及其在生物医学研究中的应用

Micropatterning and Its Applications in Biomedical Research
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摘要 结合生物物理学与生物化学的微细加工技术已可以获得与生物大分子相近的特征尺寸,推动了微图形化技术在药物筛选与新药开发、组织工程、疾病诊断等领域的应用.综述了微图形化技术在生物医学领域的发展,讨论了光刻、软光刻、模板辅助构图、扫描探针加工、喷墨构图、激光诱导图形化等方法,分析了各种方法的优势、局限性与适用范围,指出分辨力与精度、图形化规模、实验加工条件等是选择不同图形化方法的主要依据.而基于生物物理学和生物化学等对纳米尺度的处理过程进行定量分析、进一步提高其生物兼容性及材料适应性、发展适合图形化芯片的体内微环境模拟技术等是微图形化技术进一步发展的方向. Based on the micro-fabrication techniques combining with biochemistry and biophysics, we can get function structures with feature sizes close to the biomacromolecule scale, which promotes the applications of micropatterning in many research fields such as drug screening and discovery, tissue engineering and disease diagnosis. This review summarizes the development of micropatterning techniques in biomedical field and analyzes the advantages, limitations and application scopes of each micropatterning approach including photolithography, soft lithography, stencil-assisted patterning, scanning-probe lithography, jet patterning and laser guided patterning. Photolithography usually includes several steps such as exposure, development, lift-off and so on. Although it has the advantages of high accuracy, high efficiency and accurate alignment system, it depends on super-clean labs and lift-off processes, which means high cost and unsatisfied bio-compatibility. Soft lithography and stencil-assisted patterning methods avoid exposure and lift-off steps by using elastomeric stamps, which can enhance the bio-compatibility and reduce the cost. However, these two methods have deficiencies in alignment accuracy. Different from above methods, scanning-probe lithography is a kind of direct-writing technique, which sacrifices the advantage of high efficiency to improve its accuracy. Jet patterning is developed from industry with the advantages of low complexity and cost. However, its low accuracy of 10 ixm scale is the limitation. Two novel laser based micropatterning techniques are also discussed. Although laser-induced transfer method solves the problem of jet patterning technique in the patterning thickness control, the low accuracy is still a problem. Optical tweezers technique offers a substitution for the scanning-probe lithography, although it has a long way to go in terms of liquor environment limitation and efficiency. It is indicated that current micropatterning methods already have the ability to make micro devices featured from nanometer scale to millimeter scale on a variety of surface materials different in geometry, stiffness and so on. The resolution and accuracy, the patterning scale and the processing condition are the bases for choosing micropatterning methods. The development of micropatterning techniques provides a rapid, real time, and accurate study tool in biological mechanism, drug action and biochemical reaction research. Micropatterning methods can enhance the sensitivity, the automation degree and the integration scale biosensors, which will further improve the efficiency of drug screening and diseases diagnosis. Also by micropatterning techniques, we can control the cells action easily, accurately and concurrently, which is helpful to shorten the development cycle. The main trends of micropatterning research are the further physicochemical analyses of the particles on nano-scale based on biochemistry and biophysics, the further enhancement of its bio-compatibility and material adaptability, as well as the development of in vivo microenvironment simulations suitable for microoatternin~ chios.
出处 《生物化学与生物物理进展》 SCIE CAS CSCD 北大核心 2012年第10期931-944,共14页 Progress In Biochemistry and Biophysics
基金 国家自然科学基金资助项目(61071002) 国家重大科学仪器设备开发专项项目资助(2011YQ030134) 教育部留学回国人员科研启动基金 国家重点实验室基金资助项目~~
关键词 生物微系统 微图形化 光刻 表面修饰 生物传感器 BioMEMS, micropatteming, photolithograph, surface modification, biosensors
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