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SURFACE TREATMENTS AND PRE-CALCIFICATION ROUTES TO ENHANCE CELL ADHESION AND PROLIFERATION

机译:表面处理和预钙化路线,以增强细胞粘附和增殖

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When coated with a bone-like apatite layer, biodegradable polymers have a great potential to be used as bone-repairing materials, since they can exhibit not only mechanical properties analogous to the natural bone but also a bioactive character. Presently available methods to produce such type of coatings are usually difficult to control on what concerns to the calcium-phosphate (Ca-P) layer composition, resorbability, and ability to generate strong bonds with substrates. On the other hand the presently available methodologies are not so effective on coat ng 3D architectures for being used as tissue engineering scaffolds. These are some cha lenges addressed in our work. In that perspective, our research group is developing several biomimetic coating methodologies, inspired in natural physiological processes, to coat the surface of starch based biodegradable polymers with tailored apatite layers that will be able to bond to living bone. The different biomimetic approaches that are being proposed go from adaptations of the traditional biomimetic methodology (performed for untreated and surface modified materials using chemical and physical means to innovative sodium silicate gel treatments or a novel autocatalytic methodology. To understand the mechanisms of apatite formation, particularly in the earlier stage of nucleation, the atomic force microscopy (AFM) has been used as an extremely powerful tool, since it allows for in-situ studies of the surface, simulating the chemical environments founded in-vivo.
机译:当涂覆有骨状磷灰石层时,可生物降解的聚合物具有很大的潜力被用作骨修复材料,因为它们不仅具有与天然骨类似的机械性能,而且还具有生物活性。目前,生产此类涂料的可用方法通常难以控制与磷酸钙(Ca-P)层组成,可吸收性以及与基材产生牢固键合的能力有关的问题。另一方面,目前可用的方法学在用于组织工程支架的3D架构涂层上效果不佳。这些是我们工作中遇到的挑战。从这个角度出发,我们的研究小组正在开发多种仿生涂层方法,这些方法受到自然生理过程的启发,用定制的磷灰石层涂覆淀粉基可生物降解聚合物的表面,从而能够与活骨结合。提出了不同的仿生方法,包括对传统仿生方法的改编(适用于使用化学和物理手段处理未处理和表面改性的材料,创新的硅酸钠凝胶处理或新颖的自催化方法),以了解磷灰石形成的机理,特别是在成核的早期阶段,原子力显微镜(AFM)已被用作一种非常强大的工具,因为它可以对表面进行原位研究,模拟体内建立的化学环境。

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