材料科学
微尺度化学
金属
表面能
纳米技术
脐静脉
接触角
表面光洁度
表征(材料科学)
表面粗糙度
生物物理学
体外
化学
复合材料
冶金
生物
数学教育
生物化学
数学
作者
Indong Jun,Yong‐Woo Chung,Jimin Park,Hyung‐Seop Han,Jaeho Park,Saeromi Kim,Hyunjung Lee,Sang Hoon Kim,Jun Hyun Han,Hyun‐Jung Kim,Hyun‐Kwang Seok,Yu‐Chan Kim,Hojeong Jeon
标识
DOI:10.1002/adhm.201600333
摘要
Implanted material surfaces make direct contact with body tissues to work on its own purpose. Therefore, studies of the surface properties of implantable materials that determine cell fate are very important for successful implantation. Although numerous studies have addressed the relationship between cells and material surfaces, nonmetallic surfaces and metallic surfaces likely produce different cellular responses because of their intrinsic differences in surface energy, roughness, and chemical composition. Moreover, given the nontransparent property of metal materials, which hampers the real‐time imaging of cellular behavior, a detailed cellular‐level analysis at the metal‐tissue interface has not been performed. In this study, metal‐based cell culture platforms (MCPs) with defined microscale topographical patterns are developed using a combination of photolithography and direct current magnetron sputtering techniques. The MCPs allow to observe vascular cells on metals in real time and identify the selective regulation of human aortic smooth muscle cells and Human umbilical vein endothelial cells (HUVECs) by metallic surface topography. Additionally, atomic force microscopy, contact angles, and energy‐dispersive X‐ray spectroscopy analyses show that the MCPs exhibit nearly identical chemical properties with their bulk counterparts, demonstrating that MCPs can be utilized as an in vitro cell culture platform system for understanding the cellular behavior on metal substrates.
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