Cheng Xuanhong, Wang Yanbing, Hanein Yael, Böhringer Karl F, Ratner Buddy D
Bioengineering Department, University of Washington Engineered Biomaterials, Seattle, Washington 98195, USA.
J Biomed Mater Res A. 2004 Aug 1;70(2):159-68. doi: 10.1002/jbm.a.30053.
A novel approach is reported for cell patterning based on addressable microheaters and a poly(N-isopropyl acrylamide) (pNIPAM) themoresponsive coating. This thermoresponsive coating is created by a radio frequency NIPAM plasma and is denoted as plasma polymerized NIPAM (ppNIPAM). Films of ppNIPAM with a good retention of monomer side-chain functionality are produced using low-power continuous plasma deposition. Cell adhesion and cell detachment tests indicate that the surface switches between adhesive and nonadhesive behaviors as a function of temperature. The use of a photolithographically fabricated microheater array allows the ppNIPAM transition to occur spatially under the control of individual heaters. This localized change in the surface adhesive behavior is used to direct site-specific cell attachment. Patterned adhesion of two types of cells has been visualized on the array through fluorescent markers. Applications for diagnostic devices, cell-based sensors, tissue engineering, and cell transfection are envisioned.
报道了一种基于可寻址微加热器和聚(N-异丙基丙烯酰胺)(pNIPAM)热响应涂层的细胞图案化新方法。这种热响应涂层由射频NIPAM等离子体制备,称为等离子体聚合NIPAM(ppNIPAM)。使用低功率连续等离子体沉积制备具有良好单体侧链功能保留的ppNIPAM薄膜。细胞粘附和细胞脱离测试表明,表面随温度变化在粘附和非粘附行为之间切换。使用光刻制造的微加热器阵列可使ppNIPAM转变在各个加热器的控制下在空间上发生。表面粘附行为的这种局部变化用于指导位点特异性细胞附着。通过荧光标记已在阵列上可视化了两种类型细胞的图案化粘附。设想了其在诊断设备、基于细胞的传感器、组织工程和细胞转染方面的应用。