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首页> 外文期刊>Materials science & engineering, C. Materials for Biogical applications >In-situ polymerized polypyrrole nanoparticles immobilized poly(epsilon-caprolactone) electrospun conductive scaffolds for bone tissue engineering
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In-situ polymerized polypyrrole nanoparticles immobilized poly(epsilon-caprolactone) electrospun conductive scaffolds for bone tissue engineering

机译:原位聚合的聚吡咯纳米颗粒固定化聚(ε-己内酯)骨组织工程的电纺导电支架

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摘要

Despite intensive attempts to fabricate polypyrrole nanoparticles (PPy-NPs) incorporated nanofibrous scaffolds, a low-cost facile strategy is still demanded. Herein, we developed a novel strategy- in-situ polymerization of PPy-NPs and immobilized them into the PCL polymeric matrix in a single step. For the in-situ polymerization of PPy-NPs, ferric chloride hexahydrate (FeCl3.6H(2)O) was introduced as an oxidant into the blended solution of PCL and pyrrole monomers. Due to the chemical oxidative polymerization process, the clear solution changed into a black PCL/PPy solution. After electrospinning the solution, PCL/PPy composite nanofibers were fabricated. The immobilization of PPy-NPs into PCL matrix was clearly revealed by Bio-TEM images. The Field emission scanning electron microscopy (FESEM) results exhibited that the PCL/PPy scaffolds showed significantly decreased fiber diameter. The atomic force microscopy (AFM) study showed increased surface roughness in the PCL/PPy scaffolds. The mechanical strength test of PCL/PPy scaffolds showed improved Young's Modulus (YM = 2 to 4-folds) and tensile strength (TS = 3 to 4-folds). As well as the YM and TS were gradually increased with increased concentration of PPy-NPs in composite scaffolds. The conductivity measurement conducted on polymeric solution and electrospun scaffolds showed an increasing trend of conducive property in the PCL/PPy solution and scaffolds too. The surface wettability test exhibited decreased water contact angle measurement from 126 degrees for pure PCL to 93 degrees for the PCL/PPy-200 composite scaffold. The biomineralization test conducted by simulated body fluid (SBF) incubation showed enhanced calcium-phosphate crystal deposition on the PCL/PPy scaffolds. The CCK-8 assay and confocal laser scanning microscopic (CLSM) imaging conducted without and with electrical stimulation (ES) displayed enhanced cell adhesion, growth, and proliferation of MC3T3-E1 cells on the PCL/PPy conducive scaffolds. Furthermore, ALP and ARS staining assays showed significant enhancement of the calcium-phosphate deposition on the PCL/PPy scaffolds after ES treatment. Hence, the current study provides a novel strategy for the fabrication of PCL/PPy conducive scaffolds with enhanced bioactivity, biocompatibility, and osteogenic differentiation under electrical stimulation confirmed its promising application towards bone tissue engineering.
机译:尽管强烈试图制造达吡咯纳米粒子(PPY-NPS)纳入纳米纤维支架,但仍然需要低成本的体策略。在此,我们开发了一种新的PPY-NPS策略聚合,并在单一步骤中将它们固定到PCL聚合物基质中。对于PPY-NPS的原位聚合,将氯化铁六水合物(FECL3.6H(2)O)作为氧化剂引入PCL和吡咯单体的混合溶液中。由于化学氧化聚合过程,澄清溶液变成了黑色PCL / PPY溶液。在静电纺丝后,制造PCL / PPY复合纳米纤维。通过生物TEM图像清楚地揭示了PPY-NPS进入PCL基质中的固定。场发射扫描电子显微镜(FESEM)结果表明,PCL / PPY支架显示出明显降低的纤维直径。原子力显微镜(AFM)的研究表明PCL / PPY支架中的表面粗糙度增加。 PCL / PPY支架的机械强度试验显示出改善的杨氏模量(Ym = 2至4倍)和拉伸强度(Ts = 3至4倍)。除了复合支架中的PPY-NP浓度增加,Ym和Ts逐渐增加。在聚合物溶液和电纺支架上进行的电导率测量表也表明了PCL / PPY溶液和支架中的有限特性的趋势。表面润湿性试验表现出从126度降低的水接触角测量,对于PCL / PPY-200复合支架的纯PCL至93度。通过模拟体液(SBF)孵育进行的生物醛测试显示PCL / PPY支架上增强的钙磷酸盐晶体沉积。 CCK-8测定和共聚焦激光扫描微观(CLSM)成像在没有和电刺激(ES)的情况下显示出PCL / PPY有用支架上MC3T3-E1细胞的增强的细胞粘附,生长和增殖。此外,ALP和ARS染色测定显示在ES治疗后PCL / PPY支架上的钙磷酸钙沉积显着提高。因此,目前的研究提供了一种新的策略,用于制备PCL / PPY有利于增强的生物活性,生物相容性和电刺激的成骨分化,证实了其对骨组织工程的有望应用。

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