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Ultrastructure of hybrid chitosan-glycerol phosphate blood clots by environmental scanning electron Microscopy

机译:环境扫描电镜观察杂化壳聚糖-磷酸甘油酯血凝块的超微结构

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Chitosan-based polymers have been extensively studied for,biomedical applications. Recently, liquid solutions of chitosan in a glycerol phosphate buffer (chitosan-GP) with physiological pH and osmolality were mixed with autologous blood to form hybrid chitosan-GP/blood implants that improved the repair of articular cartilage lesions in a large animal model. The mixture of chitosan-GP and blood forms a viscous liquid, which solidifies in minutes via normal blood coagulation as well as chitosan-mediated mechanisms. Here we have examined the ultrastructure of these chitosan-GP/blood clots as well as regular blood clots and chitosan-GP gels, the latter produced by heating. Both unfixed and fixed samples of chitosan-GP/blood clots, regular blood clots, and chitosan-GP gels were investigated by environmental scanning electron microscopy (ESEM) in conjunction with energy dispersive X-ray spectrometry (EDS), the former permitting direct observation of the ultrastructure in hydrated conditions simulating the natural state. By examination of unfixed specimens using ESEM we found that chitosan formed a network structure in both chitosan-GP gels and chitosan-GP/blood clots; however this structure was altered by aldehyde fixation to produce artifactual aggregates of chitosan microparticles. We were also able to identify chitosan in chitosan-GP/blood clots by washing samples in low concentration NaCl solutions followed by local EDS analyses to identify excess chloride versus sodium, and thus presence of cationic chitosan in analyzed features. Additional results indicated that the majority of glycerol phosphate diffuses freely from chitosan-GP gels (by EDS of phosphorus) and that hyperosmotic paraformaldehyde-based fixatives (i.e. 4% w/v) significantly disturb erythrocyte morphology in fixed whole blood clots.
机译:基于壳聚糖的聚合物已被广泛研究用于生物医学应用。最近,将具有生理pH和重量摩尔渗透压浓度的磷酸甘油缓冲液(壳聚糖-GP)中的壳聚糖液体溶液与自体血液混合,以形成混合的壳聚糖-GP /血液植入物,从而改善了大型动物模型中关节软骨的修复。壳聚糖-GP和血液的混合物形成粘性液体,通过正常的血液凝结以及壳聚糖介导的机制在几分钟内固化。在这里,我们检查了这些壳聚糖-GP /血凝块,常规血凝块和壳聚糖-GP凝胶的超微结构,后者是通过加热产生的。通过环境扫描电子显微镜(ESEM)结合能量色散X射线能谱(EDS)研究了壳聚糖GP /血凝块,常规血凝块和壳聚糖GP凝胶的未固定和固定样品,前者允许直接观察在水合条件下模拟自然状态的超微结构的变化。通过使用ESEM检查未固定的标本,我们发现壳聚糖在壳聚糖GP凝胶和壳聚糖GP /血凝块中均形成了网络结构。然而,通过醛固定改变了该结构,从而产生了人为的壳聚糖微粒聚集体。我们还能够通过在低浓度NaCl溶液中洗涤样品,然后进行局部EDS分析来鉴定过量的氯化物对钠,从而鉴定出壳聚糖GP /血凝块中的壳聚糖,从而分析出阳离子型壳聚糖。另外的结果表明,大多数磷酸甘油酯可从壳聚糖-GP凝胶中自由扩散(通过磷的EDS),而基于高渗多聚甲醛的固定剂(即4%w / v)会显着干扰固定全血凝块中的红细胞形态。

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