Ambre Avinash H, Katti Dinesh R, Katti Kalpana S
Department of Civil and Environmental Engineering, North Dakota State University, Fargo, North Dakota, 58105.
J Biomed Mater Res A. 2015 Jun;103(6):2077-101. doi: 10.1002/jbm.a.35342. Epub 2014 Oct 21.
Nanoclay modified with unnatural amino acid was used to design a nanoclay-hydroxyapatite (HAP) hybrid by mineralizing HAP in the nanoclay galleries mimicking biomineralization. This hybrid (in situ HAPclay) was used to fabricate polycaprolactone (PCL)/in situ HAPclay films and scaffolds for bone regeneration. Cell culture assays and imaging were used to study interactions between human mesenchymal stem cells (hMSCs) and PCL/in situ HAPclay composites (films and scaffolds). SEM imaging indicated MSC attachment, formation of mineralized extracellular (ECM) on PCL/in situ HAPclay films, and infiltration of MSCs to the interior of PCL/in situ HAPclay scaffolds. Mineralized ECM was formed by MSCs without use of osteogenic supplements. AFM imaging performed on this in vitro generated mineralized ECM on PCL/in situ HAPclay films revealed presence of components (collagen and mineral) of hierarchical organization reminiscent of natural bone. Cellular events observed during two-stage seeding experiments on PCL/in situ HAPclay films indicated similarities with events occurring during in vivo bone formation. PCL/in situ HAPclay films showed significantly increased (100-595% increase in elastic moduli) nanomechanical properties and PCL/in situ HAPclay scaffolds showed increased degradation. This work puts forth PCL/in situ HAPclay composites as viable biomaterials for bone tissue engineering.
用非天然氨基酸修饰的纳米黏土通过在纳米黏土层间矿化羟基磷灰石(HAP)来设计纳米黏土 - 羟基磷灰石(HAP)杂化材料,模拟生物矿化过程。这种杂化材料(原位HAP黏土)被用于制备聚己内酯(PCL)/原位HAP黏土薄膜和支架用于骨再生。细胞培养试验和成像用于研究人间充质干细胞(hMSCs)与PCL/原位HAP黏土复合材料(薄膜和支架)之间的相互作用。扫描电子显微镜(SEM)成像表明间充质干细胞附着在PCL/原位HAP黏土薄膜上,在其表面形成矿化细胞外基质(ECM),并且间充质干细胞浸润到PCL/原位HAP黏土支架内部。间充质干细胞在不使用成骨补充剂的情况下形成了矿化ECM。对PCL/原位HAP黏土薄膜上这种体外生成的矿化ECM进行的原子力显微镜(AFM)成像显示存在具有分层结构的成分(胶原蛋白和矿物质),类似于天然骨。在PCL/原位HAP黏土薄膜上进行的两阶段接种实验中观察到的细胞事件表明与体内骨形成过程中发生的事件相似。PCL/原位HAP黏土薄膜显示出显著提高的纳米力学性能(弹性模量增加100 - 595%),并且PCL/原位HAP黏土支架显示出降解增加。这项工作提出PCL/原位HAP黏土复合材料作为骨组织工程的可行生物材料。