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Chlorogenic acid- loaded calcium phosphate chitosan nanogel as biofilm degradative materials

机译:作为生物膜降解材料作为生物膜降解材料的绿原酸性钙磷酸钙壳聚糖纳凝胶

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This work describes an effort to develop an antimicrobial agent (chlorogenic acid - CGA) loaded porous nanogel based on calcium phosphate-chitosan (CaPNP@Chi) nanogel with biofilm degradative properties and has potential applications in restorative dentistry. The nanogel was prepared by ionic gelation of calcium phosphate nanoparticles and chitosan in the ratio of 1.25: 1. Chlorogenic acid was loaded to the nanoparticles as an ethanolic solution and the encapsulation efficiency determined by chromatographic techniques. The particle size and morphology of CaPNP@Chi and CaPNP@Chi@CGA was determined by dynamic light scattering and scanning electron microscopic techniques. The minimum inhibitory concentration against S. aureus and K. pneumoniae was determined through the well diffusion method. The biofilm formation and biofilm decay were studied through staining assays. The toxicity, if any of the nanogel was assessed by MTT assay against HaCaT cells. All data were statistically analyzed. The composite had a CGA encapsulation efficiency of 70% and was thermally stable up to 124 degrees C. The zone of inhibition was found to be 18.7 mm +/- 0.6 against S. aureus. CaPNP@Chi@CGA showed a 68% increase in biofilm degradation when compared with the untreated group. Results obtained in this study suggest that the positively charged nanogel interacted with the bacterial cell membrane and brought about the disruption of the cell membrane. Also, CaPNP@Chi@CGA was observed to be nontoxic up to 40 mu g/mL to HaCaT cells. These results support the potential of CaPNP@Chi@CGA nanogel for biofilm degradation and its application as filling material in restorative dentistry.
机译:该工作描述了一种努力,基于磷酸钙 - 壳聚糖(CapNP @ Chi)纳米凝胶具有生物膜降解性能的磷酸钙 - 壳聚糖(CapnP @ Chi)纳米凝胶,具有潜在应用的恢复牙科。通过磷酸钙纳米粒子和壳聚糖的离子凝胶化制备纳池,其比例为1.25:1。作为乙醇溶液将绿原酸加载到纳米颗粒上,并通过色谱技术确定的包封效率。 CAPNP @ CHI和CAPNP @ CHI @ CGA的粒度和形态由动态光散射和扫描电子显微镜技术确定。通过孔的扩散法测定对S.UUREUS和K.肺炎的最小抑制浓度。通过染色测定研究生物膜形成和生物膜衰减。毒性,如果通过MTT测定对HACAT细胞评估了任何纳米凝胶。所有数据都在统计上分析。复合材料的CGA包封效率为70%,最高可达124℃。发现抑制区为18.7mm +/- 0.6针对金黄色葡萄球菌。 CAPNP @ CHI @ CGA在与未处理的群体相比时,生物膜降解的增加了68%。本研究中获得的结果表明,带正电荷的纳米凝胶与细菌细胞膜相互作用并带来了细胞膜的破坏。此外,观察到CAPNP @ CHI @ CGA含有高达40μmg/ ml的HACAT细胞。这些结果支持CAPNP @ CHI @ CGA纳米凝胶的潜力,用于生物膜降解及其作为恢复牙科填充材料的应用。

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