Alapan Yunus, Icoz Kutay, Gurkan Umut A
Case Biomanufacturing and Microfabrication Laboratory, Mechanical and Aerospace Engineering Department, Case Western Reserve University, Cleveland, OH 44106, USA.
Bio Micro/Nano Devices and Sensors Laboratory, Electrical and Electronics Engineering Department, Abdullah Gul University, Kayseri 38080, Turkey.
Biotechnol Adv. 2015 Dec;33(8):1727-43. doi: 10.1016/j.biotechadv.2015.09.001. Epub 2015 Sep 10.
Understanding how biomolecules, proteins and cells interact with their surroundings and other biological entities has become the fundamental design criterion for most biomedical micro- and nanodevices. Advances in biology, medicine, and nanofabrication technologies complement each other and allow us to engineer new tools based on biomolecules utilized as probes. Engineered micro/nanosystems and biomolecules in nature have remarkably robust compatibility in terms of function, size, and physical properties. This article presents the state of the art in micro- and nanoscale devices designed and fabricated with biomolecular probes as their vital constituents. General design and fabrication concepts are presented and three major platform technologies are highlighted: microcantilevers, micro/nanopillars, and microfluidics. Overview of each technology, typical fabrication details, and application areas are presented by emphasizing significant achievements, current challenges, and future opportunities.
了解生物分子、蛋白质和细胞如何与其周围环境及其他生物实体相互作用,已成为大多数生物医学微纳器件的基本设计标准。生物学、医学和纳米制造技术的进步相互补充,使我们能够基于用作探针的生物分子设计新工具。工程化的微纳系统与自然界中的生物分子在功能、尺寸和物理性质方面具有显著的强兼容性。本文介绍了以生物分子探针作为关键组成部分设计和制造的微纳器件的最新技术水平。阐述了一般的设计和制造概念,并重点介绍了三种主要的平台技术:微悬臂梁、微纳柱和微流体技术。通过强调重大成就、当前挑战和未来机遇,介绍了每种技术的概况、典型制造细节及应用领域。