Department of Chemistry, Universidad Nacional del Sur, INQUISUR-CONICET, B8000CPB Bahía Blanca, Argentina.
Soft Matter and Molecular Biophysics Group, Department of Applied Physics, University of Santiago de Compostela, 15782 Santiago de Compostela, Spain.
J Colloid Interface Sci. 2020 Jul 15;572:408-420. doi: 10.1016/j.jcis.2020.03.086. Epub 2020 Mar 25.
Membranes for guided bone regeneration should have a mechanical structure and a chemical composition suitable for mimicking biological structures. In this work, we pursue the development of periosteum-inspired bilayered membranes obtained by crosslinking alginate with different amounts of nanohydroxyapatite.
Alginate-nanohydroxyapatite interaction was studied by rheology and infrared spectroscopy measurements. The membranes were characterized regarding their tensile strength, degradation and surface morphology. Finally, cell cultures were performed on each side of the membranes.
The ionic bonding between alginate polysaccharide networks and nanohydroxyapatite was proven, and had a clear effect in the strength and microstructure of the hydrogels. Distinct surface characteristics were achieved on each side of the membranes, resulting in a highly porous fibrous side and a mineral-rich side with higher roughness and lower porosity. Moreover, the effect of amount of nanohydroxyapatite was reflected in a decrease of the membranes' plasticity and an increment of degradation rate. Finally, it was proved that osteoblast-like cells proliferated and differentiated on the mineral-rich side, specially when a higher amount of nanohydroxyapatite was used, whereas fibroblasts-like cells were able to proliferate on the fibrous side. These periosteum-inspired membranes are promising biomaterials for guided tissue regeneration applications.
引导骨再生膜应具有适合模拟生物结构的机械结构和化学成分。在这项工作中,我们通过交联不同量纳米羟基磷灰石来开发模仿骨膜的双层膜。
通过流变学和红外光谱测量研究藻酸盐-纳米羟基磷灰石的相互作用。对膜的拉伸强度、降解和表面形态进行了表征。最后,在膜的每一侧进行细胞培养。
藻酸盐多糖网络与纳米羟基磷灰石之间的离子键被证明,并且对水凝胶的强度和微观结构有明显的影响。在膜的每一侧都获得了不同的表面特性,导致一侧具有高度多孔的纤维状结构,另一侧具有较高粗糙度和较低孔隙率的富含矿物质的结构。此外,纳米羟基磷灰石的用量对膜的塑性和降解速率的增加有影响。最后,证明成骨细胞样细胞在富含矿物质的一侧增殖和分化,特别是当使用更高量的纳米羟基磷灰石时,而成纤维细胞样细胞能够在纤维状一侧增殖。这些模仿骨膜的双层膜是用于引导组织再生应用的有前途的生物材料。