El-Ali Jamil, Sorger Peter K, Jensen Klavs F
Department of Chemical Engineering, Center for Cell Decision Processes, Massachusetts Institute of Technology, Cambridge, Massachusetts 02139, USA.
Nature. 2006 Jul 27;442(7101):403-11. doi: 10.1038/nature05063.
Microsystems create new opportunities for the spatial and temporal control of cell growth and stimuli by combining surfaces that mimic complex biochemistries and geometries of the extracellular matrix with microfluidic channels that regulate transport of fluids and soluble factors. Further integration with bioanalytic microsystems results in multifunctional platforms for basic biological insights into cells and tissues, as well as for cell-based sensors with biochemical, biomedical and environmental functions. Highly integrated microdevices show great promise for basic biomedical and pharmaceutical research, and robust and portable point-of-care devices could be used in clinical settings, in both the developed and the developing world.
微系统通过将模拟细胞外基质复杂生物化学和几何结构的表面与调节流体和可溶性因子运输的微流体通道相结合,为细胞生长和刺激的时空控制创造了新机会。与生物分析微系统的进一步整合产生了多功能平台,用于对细胞和组织进行基础生物学洞察,以及用于具有生化、生物医学和环境功能的基于细胞的传感器。高度集成的微型设备在基础生物医学和药物研究方面显示出巨大潜力,坚固且便携的即时检测设备可用于发达国家和发展中国家的临床环境。