Biomaterials, Biomechanics and Tissue Engineering Group, Department of Materials Science and Metallurgical Engineering, Technical University of Catalonia (UPC), Barcelona, 08019, Spain.
Barcelona Research Center in Multiscale Science and Engineering, UPC, Barcelona, 08019, Spain.
Sci Rep. 2017 Nov 27;7(1):16363. doi: 10.1038/s41598-017-16385-3.
Engineering the interface between biomaterials and tissues is important to increase implant lifetime and avoid failures and revision surgeries. Permanent devices should enhance attachment and differentiation of stem cells, responsible for injured tissue repair, and simultaneously discourage bacterial colonization; this represents a major challenge. To take first steps towards such a multifunctional surface we propose merging topographical and biochemical cues on the surface of a clinically relevant material such as titanium. In detail, our strategy combines antibacterial nanotopographical features with integrin selective synthetic ligands that can rescue the adhesive capacity of the surfaces and instruct mesenchymal stem cell (MSC) response. To this end, a smooth substrate and two different high aspect ratio topographies have been produced and coated either with an αvβ3-selective peptidomimetic, an α5β1-selective peptidomimetic, or an RGD/PHSRN peptidic molecule. Results showed that antibacterial effects of the substrates could be maintained when tested on pathogenic Pseudomonas aeruginosa. Further, functionalization increased MSC adhesion to the surfaces and the αvβ3-selective peptidomimetic-coated nanotopographies promoted osteogenesis. Such a dual physicochemical approach to achieve multifunctional surfaces represents a first step in the design of novel cell-instructive biomaterial surfaces.
工程生物材料和组织之间的界面对于提高植入物的寿命和避免失效及修复手术至关重要。永久性装置应增强负责损伤组织修复的干细胞的附着和分化,同时抑制细菌定植;这是一个主要挑战。为了朝着这种多功能表面迈出第一步,我们建议在钛等临床相关材料的表面上融合拓扑和生化线索。具体而言,我们的策略将具有抗菌纳米形貌的特征与整合素选择性合成配体相结合,这些配体可以恢复表面的粘附能力,并指导间充质干细胞(MSC)的反应。为此,制备了光滑的基底和两种不同的高纵横比形貌,并将其分别用αvβ3 选择性肽模拟物、α5β1 选择性肽模拟物或 RGD/PHSRN 肽分子进行了涂层。结果表明,当在致病性铜绿假单胞菌上进行测试时,基底的抗菌效果可以得到保持。此外,功能化增加了 MSC 对表面的附着,并且αvβ3 选择性肽模拟物涂层的纳米形貌促进了成骨作用。这种实现多功能表面的双重物理化学方法代表了设计新型细胞指导生物材料表面的第一步。