Greiner Alexandra M, Sales Adria, Chen Hao, Biela Sarah A, Kaufmann Dieter, Kemkemer Ralf
Karlsruhe Institute of Technology (KIT), Institute of Zoology, Department of Cell and Neurobiology, Haid-und-Neu-Strasse 9, 76131 Karlsruhe, Germany.
now at: Pforzheim University, School of Engineering, Tiefenbronner Strasse 65, 75175 Pforzheim, Germany.
Beilstein J Nanotechnol. 2016 Nov 8;7:1620-1641. doi: 10.3762/bjnano.7.155. eCollection 2016.
The extracellular environment of vascular cells in vivo is complex in its chemical composition, physical properties, and architecture. Consequently, it has been a great challenge to study vascular cell responses in vitro, either to understand their interaction with their native environment or to investigate their interaction with artificial structures such as implant surfaces. New procedures and techniques from materials science to fabricate bio-scaffolds and surfaces have enabled novel studies of vascular cell responses under well-defined, controllable culture conditions. These advancements are paving the way for a deeper understanding of vascular cell biology and materials-cell interaction. Here, we review previous work focusing on the interaction of vascular smooth muscle cells (SMCs) and endothelial cells (ECs) with materials having micro- and nanostructured surfaces. We summarize fabrication techniques for surface topographies, materials, geometries, biochemical functionalization, and mechanical properties of such materials. Furthermore, various studies on vascular cell behavior and their biological responses to micro- and nanostructured surfaces are reviewed. Emphasis is given to studies of cell morphology and motility, cell proliferation, the cytoskeleton and cell-matrix adhesions, and signal transduction pathways of vascular cells. We finalize with a short outlook on potential interesting future studies.
体内血管细胞的细胞外环境在化学成分、物理性质和结构方面都很复杂。因此,在体外研究血管细胞反应一直是一项巨大的挑战,无论是为了了解它们与天然环境的相互作用,还是为了研究它们与人工结构(如植入物表面)的相互作用。材料科学中用于制造生物支架和表面的新程序和技术,使得在明确可控的培养条件下对血管细胞反应进行新的研究成为可能。这些进展为更深入地理解血管细胞生物学和材料 - 细胞相互作用铺平了道路。在此,我们回顾以往关于血管平滑肌细胞(SMC)和内皮细胞(EC)与具有微纳结构表面的材料相互作用的研究工作。我们总结了此类材料的表面形貌、材料、几何形状、生化功能化及机械性能的制造技术。此外,还综述了关于血管细胞行为及其对微纳结构表面的生物学反应的各种研究。重点是对血管细胞的细胞形态和运动性、细胞增殖、细胞骨架和细胞 - 基质黏附以及信号转导途径的研究。最后,我们对潜在的有趣未来研究进行了简要展望。