Office of Science and Engineering Laboratories, Center for Devices and Radiological Health, U.S. Food and Drug Administration, Silver Spring, MD, United States; Joint Department of Biomedical Engineering, University of North Carolina and North Carolina State University, Raleigh, NC, United States.
Office of Science and Engineering Laboratories, Center for Devices and Radiological Health, U.S. Food and Drug Administration, Silver Spring, MD, United States.
Pharmacol Ther. 2018 Feb;182:33-55. doi: 10.1016/j.pharmthera.2017.07.009. Epub 2017 Jul 16.
Cellular responses are highly influenced by biochemical and biomechanical interactions with the extracellular matrix (ECM). Due to the impact of ECM architecture on cellular responses, significant research has been dedicated towards developing biomaterials that mimic the physiological environment for design of improved medical devices and tissue engineering scaffolds. Surface topographies with microscale and nanoscale features have demonstrated an effect on numerous cellular responses, including cell adhesion, migration, proliferation, gene expression, protein production, and differentiation; however, relationships between biological responses and surface topographies are difficult to establish due to differences in cell types and biomaterial surface properties. Therefore, it is important to optimize implant surface feature characteristics to elicit desirable biological responses for specific applications. The goal of this work was to review studies investigating the effects of microstructured and nanostructured biomaterials on in vitro biological responses through fabrication of microscale and nanoscale surface topographies, physico-chemical characterization of material surface properties, investigation of protein adsorption dynamics, and evaluation of cellular responses in specific biomedical applications.
细胞反应受到与细胞外基质(ECM)的生化和生物力学相互作用的高度影响。由于 ECM 结构对细胞反应的影响,大量的研究致力于开发模仿生理环境的生物材料,以设计改进的医疗设备和组织工程支架。具有微尺度和纳米尺度特征的表面形貌对许多细胞反应都有影响,包括细胞黏附、迁移、增殖、基因表达、蛋白质产生和分化;然而,由于细胞类型和生物材料表面性质的差异,生物反应和表面形貌之间的关系难以建立。因此,优化植入物表面特征以产生特定应用所需的理想生物反应非常重要。这项工作的目的是通过制造微尺度和纳米尺度的表面形貌、材料表面特性的理化特性表征、蛋白质吸附动力学的研究以及在特定生物医学应用中评估细胞反应,来综述研究微结构和纳米结构生物材料对体外生物反应影响的研究。