生物矿化
材料科学
纳米技术
肽
生物加工
组织工程
仿生学
生物高聚物
生物医学工程
化学
化学工程
聚合物
生物化学
医学
工程类
复合材料
作者
Jin Guo,Shengjie Ling,Yuling Li,Ying Chen,Yuling Li,Fiorenzo G. Omenetto,David L. Kaplan
标识
DOI:10.1002/adfm.201800228
摘要
Abstract Well‐designed micropatterns present in native tissues and organs involve changes in extracellular matrix compositions, cell types and mechanical properties to reflect complex biological functions. However, the design and fabrication of these micropatterns in vitro to meet task‐specific biomedical applications remains a challenge. A de novo design strategy to code and synthesize functional micropatterns is presented to engineer cell alignment through the integration of aqueous‐peptide inkjet printing and site‐specific biomineralization. The inkjet printing provides direct writing of macroscopic biosilica selective peptide‐R5 patterns with micrometer‐scale resolution on the surface of a biopolymer (silk) hydrogel. This is combined with in situ biomineralization of the R5 peptide for site‐specific growth of silica nanoparticles on the micropatterns, avoiding the use of harsh chemicals or complex processing. The functional micropatterned systems are used to align human mesenchymal stem cells and bovine serum albumin. This combination of peptide printing and site‐specific biomineralization provides a new route for developing cost‐effective micropatterns, with implications for broader materials designs.
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