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首页> 外文期刊>Journal of Colloid and Interface Science >Sacrificial template-based synthetic approach of polypyrrole hollow fibers for photothermal therapy
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Sacrificial template-based synthetic approach of polypyrrole hollow fibers for photothermal therapy

机译:基于牺牲模板的聚吡咯中空纤维合成方法,用于光热疗法

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摘要

In the present work, polypyrrole hollow fibers (PPy-HFs) were fabricated by sacrificial removal of soft templates of electrospun polycaprolactone (PCL) fibers with polypyrrole (PPy) coating through chemical polymerization of pyrrole monomer. Different physicochemical properties of as-fabricated PPy-HFs were then studied by Field emission scanning electron microscopy (FE-SEM), X-ray diffraction (XRD), Fourier transform infra-red (FT-IR) spectroscopy, Differential scanning calorimetry/Thermogravimetric analysis (DSC/TGA), and X-ray photoelectron spectroscopy (XPS). The photothermal activity of PPy-HF was studied by irradiating 808-nm near infra-red (NIR) light under different power values with various concentrations of PPy-HFs dispersed in phosphate buffer solution (PBS, pH 7.4). These PPy-HFs exhibited enhanced photothermal performance compared with polypyrrole nanoparticles (PPy-NPs). Furthermore, these PPy-HFs showed photothermal effect that was laser-power- and concentration-dependent. The photothermal toxicity of the resulting nanofiber was evaluated using cell counting kit-8 (CCK-8) and live and dead cell assays. Results showed that these PPy-HFs were more effective in killing cancer cells under NIR irradiation. In contrast, hollow-fiber showed no cytotoxicity without NIR exposure. Among different nanofiber formulations, PPy-160 exhibited the highest photothermal toxicity. It could be explained by its enhanced photothermal performance compared to other specimens. The resulting PPy-HFs showed superior drug loading capacity to PPy-NPs. This might be attributed to adequate binding of the drug into both luminal and abluminal hollow-fiber surfaces. Fabrication of this substrate type opens a promising new avenue for architectural design of biocompatible organic polymer for biomedical field. (C) 2018 Elsevier Inc. All rights reserved.
机译:通过通过吡咯单体的化学聚合,通过吡咯单体的化学聚合来制备通过散罗(PPY)涂层的电纺聚碳酮(PCL)纤维的软模板来制造聚吡咯中空纤维(PPY-HFS)。然后通过现场发射扫描电子显微镜(Fe-SEM),X射线衍射(XRD),傅里叶变换红外(FT-IR)光谱,差示扫描量热/热重度/热升降机(FE-SEM)进行不同的物理化学性质。分析(DSC / TGA)和X射线光电子能谱(XPS)。通过在不同功率值下在不同功率值下辐射808-nm,以各种浓度的PPY-HFS分散在磷酸盐缓冲溶液(PBS,pH7.4)下,通过在磷酸盐缓冲溶液(PBS,pH7.4)中的不同功率值下,进行PPY-HF的光热活性。与聚吡咯纳米粒子(PPY-NPS)相比,这些PPY-HFS表现出增强的光热性能。此外,这些PPY-HFS显示出光热效应,其是激光功率和浓度依赖性的。使用细胞计数试剂盒-8(CCK-8)和活细胞测定来评估所得纳米纤维的光热毒性。结果表明,这些PPY-HFS在NIR辐射下杀死癌细胞更有效。相反,空心纤维没有没有NIR暴露的细胞毒性。在不同的纳米纤维制剂中,PPY-160表现出最高的光热毒性。与其他标本相比,它可以通过其增强的光热性能解释。所得的PPY-HFS显示出优异的药物负载能力至PPY-NPS。这可能归因于药物将药物与腔腔中的空心光纤表面充分结合。该衬底类型的制造为生物医学领域的生物相容性有机聚合物的建筑设计开辟了一个有希望的新途径。 (c)2018 Elsevier Inc.保留所有权利。

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