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Binding Mechanism of the Model Charged Dye Carboxyfluorescein to Hyaluronan/Polylysine Multilayers

机译:带电荷染料羧基荧光素到透明质酸/聚赖氨酸多层的粘合机制

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Biopolymer-based multilayers become more and more attractive due to the vast span of biological application they can be used for, e.g., implant coatings, cell culture supports, scaffolds. Multilayers have demonstrated superior capability to store enormous amounts of small charged molecules, such as drugs, and release them in a controlled manner; however, the binding mechanism for drug loading into the multilayers is still poorly understood. Here we focus on this mechanism using model hyaluronan/polylysine (HA/PLL) multilayers and a model charged dye, carboxyfluorescein (CF). We found that CF reaches a concentration of 13 mM in the multilayers that by far exceeds its solubility in water. The high loading is not related to the aggregation of CF in the multilayers. In the multilayers, CF molecules bind to free amino groups of PLL; however, intermolecular CF-CF interactions also play a role and (i) endow the binding with a cooperative nature and (ii) result in polyadsorption of CF molecules, as proven by fitting of the adsorption isotherm using the BET model. Analysis of CF mobility in the multilayers by fluorescence recovery after photobleaching has revealed that CF diffusion in the multilayers is likely a result of both jumping of CF molecules from one amino group to another and movement, together with a PLL chain being bound to it. We believe that this study may help in the design of tailor-made multilayers that act as advanced drug delivery platforms for a variety of bioapplications where high loading and controlled release are strongly desired.
机译:由于植入物涂层,细胞培养物支持,支架,基于生物聚合物的多层的多层越来越有吸引力地变得越来越有吸引力。多层展示了储存大量小型带电分子,如药物的能力,并以受控的方式释放它们;然而,对多层药物负载的结合机制仍然是较差的。在这里,我们专注于使用型式透明质酸/聚赖氨酸(HA / PLL)多层和带电染料,羧基荧光素(CF)的模型的这种机制。我们发现,在多层的浓度达到13毫米的浓度远远超过其在水中的溶解度。高负载与多层CF的聚集无关。在多层中,CF分子与PLL的游离氨基结合;然而,分子间CF-CF相互作用也发挥作用,并且(i)赋予与合作性质的结合和(ii)导致CF分子的多氢,通过使用BET模型拟合吸附等温线来证明。通过光漂白后通过荧光恢复分析多层荧光回收的CF在多层中的CF扩散可能是CF分子从一个氨基跳到另一个氨基的结果,以及与其结合的PLL链。我们认为这项研究可能有助于设计量身定制的多层,这是针对各种生物缺陷的高级药物递送平台的设计,其中强烈需要高负荷和控制释放。

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