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1.
改性纳米羟基磷灰石/PLGA复合材料的制备及生物活性   总被引:2,自引:0,他引:2  
以低聚乳酸接枝改性的羟基磷灰石纳米粒子(op-HA)和聚丙交酯-乙交酯(PLGA)制备的生物可降解纳米复合材料(op-HA/PLGA)为研究对象, 采用FTIR, TGA, ESEM和EDX分析其接枝反应、接枝率、表面形貌和钙磷沉积情况, 通过在材料膜表面接种兔成骨细胞进行体外培养, 采用荧光染色、NIH Image J图像分析和Real-time PCR综合评价细胞在材料表面的形态、黏附面积比、增殖能力和基因表达水平, 以此评价新型骨修复纳米复合材料op-HA/PLGA的表面性质和生物活性. 研究结果表明, op-HA的表面接枝率为8.3%, 掺入至PLGA后可形成富含钙磷的粗糙表面, 促进成骨细胞的黏附、扩展和增殖, 提高Ⅰ型胶原蛋白(Collagen-Ⅰ)、骨形态蛋白-2(BMP-2)和骨连接蛋白(Osteonectin)的基因表达水平, 提高材料的钙磷沉积能力. op-HA/PLGA具有良好的细胞相容性和成骨活性.  相似文献   

2.
以丙交酯开环聚合原位接枝改性的纳米生物玻璃(PLLA-g-BG)与聚丙交酯-乙交酯(PLGA)复合材料为研究对象, 采用TGA, ESEM和EDX分析其接枝率, 粒子分散性和表面元素分布, 通过将兔成骨细胞种植于材料膜表面进行体外培养, 采用荧光染色法、NIH Image J图像分析软件、MTT法和流式细胞术等手段检测细胞在材料表面的平均黏附数量、扩展面积比、增殖能力和细胞周期的变化, 综合评价新型改性纳米复合材料的生物相容性和生物活性. 结果表明, 聚乳酸表面接枝改性可明显改善纳米生物玻璃粒子的团聚; PLGA中掺入一定比例的改性PLLA-g-BG可明显促进兔成骨细胞的黏附、扩展与增殖; 改性纳米生物玻璃的应用可提高生物可降解聚酯材料的生物相容性和生物活性.  相似文献   

3.
将胶原绑定结构域(CBD)多肽序列与骨形态发生蛋白2模拟肽(BMP2-MP)序列连接制备具有胶原绑定能力的CBD-BMP2-MP, 再将CBD-BMP2-MP与聚丙交酯-乙交酯/胶原(PLGA/COL)3D打印支架相结合, 以支架表面的胶原成分为媒介, 将CBD-BMP2-MP更有效地固定于骨修复材料上, 达到对其进行改性的目的. 利用扫描电子显微镜(SEM)、 电子万能试验机和接触角测量仪对复合支架表面形貌、 力学强度和亲水性等材料学性能进行评价. 用荧光成像法评测 CBD-BMP2-MP及BMP2-MP与支架材料的结合能力. 在各组支架材料表面接种MC3T3-E1细胞进行体外培养, 采用CCK-8、 鬼笔环肽荧光染色、 茜素红染色及qPCR综合评价细胞在材料表面的黏附、 增殖和成骨分化等细胞行为, 研究CBD-BMP2-MP修饰的3D多孔PLGA/COL复合支架的生物学性能. 研究结果表明, 利用3D打印技术制备的多孔支架具有形貌可控的孔隙结构, 为细胞生长创造更有利的细胞微环境, 支架表面胶原成分的加入提高了支架材料的亲水性, 同时对支架材料本身的力学性能无任何影响, 提高了复合支架本身的生物相容性. 与普通BMP2-MP相比, CBD-BMP2-MP具有更好的胶原绑定能力, 与复合支架的结合更稳定, 提高了PLGA/COL复合支架对BMP2-MP的负载能力. 支架表面负载CBD-BMP2-MP后具有极强的促细胞成骨分化能力. MC3T3-E1细胞表现出更高的钙沉积能力, 并且成骨分化相关基因Runx2, ALP, COL-I及OPN等水平也有了明显提升. 表明CBD-BMP2-MP多孔复合支架具有良好的生物相容性和成骨诱导活性, 在骨组织修复领域具有良好的应用前景.  相似文献   

4.
利用离子乳化交联法制备了负载肾上腺髓质素的壳聚糖微球,应用热致相分离法制备了乳酸和乙醇酸共聚物/纳米羟基磷灰石(PLGA/nHA)支架材料并在其中包覆载药微球.通过扫描电子显微镜、体外释放行为、材料溶血行为、碱性磷酸酶(ALP)活性的测定、支架材料表面细胞荧光染色和MTT[3-(4,5-二甲基噻唑-2)-2,5-二苯基四氮唑溴盐]比色法等手段综合评价载药支架材料的性能及生物活性.结果表明,微球直径均匀,载药支架孔径大小合适并相互穿通.支架材料的溶血率小于5%,符合医用材料的溶血实验要求.载药支架及支架材料本身对成骨细胞及血管内皮细胞的增殖以及成骨细胞的分化均有一定的促进作用.  相似文献   

5.
以旋涂法制备的聚乳酸(PLA)、聚丙交酯己内酯(PLCL)、聚乳酸-羟基磷灰石(PLA-HA)、聚丙交酯己内酯-羟基磷灰石(PLCL-HA)膜为功能性骨组织工程支架材料引导组织再生膜,用小鼠颅骨前成骨细胞系作为组织工程种子细胞,进行了平面细胞培养,通过四唑类化合物(MTS)比色法细胞活性定量检测、二乙酸荧光素(FDA)膜染色等研究了基材对成骨细胞的黏附、增殖以及矿化的影响;通过光学显微镜和荧光显微镜进行了细胞形态的观察。结果表明:HA对细胞的黏附和增殖有积极的作用,旋涂膜上的细胞进入增殖晚期和矿化期后性质更为稳定。  相似文献   

6.
通过氧等离子体处理,在聚对苯二甲酸乙二酯(PET)表面引入羟基,提高了其表面的亲水性.利用静电吸附等方式在PET材料表面先后载入表没食子儿茶素没食子酸酯(EGCG)、纤维黏连蛋白(Fn)和骨形态发生蛋白-2(rhBMP-2),构建了rhBMP-2/EGCG/Fn有机组装的纳米涂层,改性后的PET表面表现出优异的细胞相容...  相似文献   

7.
壳聚糖修饰PLGA阳离子型纳米微球的制备与表征   总被引:7,自引:1,他引:6  
采用单乳化-溶剂(O/W)挥发技术制备表面带正电荷的壳聚糖(CHS)修饰聚乙/丙交酯(PLGA)纳米微球(PLGA/CHS), 通过正交试验优化了纳米微球的制备条件. 结果表明, 微球粒径可控制在150~200 nm内, 在pH=4时, 纳米微球表面电位最高为55 mV. 影响微球粒径的主要因素是聚合物的浓度, CHS的分子量和浓度以及介质的pH值对微球表面电位也有明显影响. 制备粒径较小而表面电位较高的PLGA/CHS纳米微球条件为: ρ(CHS)=3 mg/mL, ρ(PLGA)=10 mg/mL, Vo/Va=1/4. SEM图像显示经CHS修饰的PLGA的纳米微球形状规整, 荧光显微观察和XPS分析结果证实CHS包覆于微球表面.  相似文献   

8.
利用离子乳化交联法制备了负载肾上腺髓质素的壳聚糖微球,应用热致相分离法制备了乳酸和乙醇酸共聚物/纳米羟基磷灰石(PLGA/nHA)支架材料并在其中包覆载药微球.通过扫描电子显微镜、体外释放行为、材料溶血行为、碱性磷酸酶(ALP)活性的测定、支架材料表面细胞荧光染色和MTT[3-(4,5-二甲基噻唑-2)-2,5-二苯基...  相似文献   

9.
TiO2/SiO2纳米薄膜的光催化活性和亲水性   总被引:17,自引:0,他引:17  
通过sol gel工艺在钠钙玻璃表面制备了均匀透明的TiO2/SiO2复合纳米薄膜.实验结 果表明: 当SiO2添加量较高时, TiO2/SiO2复合纳米薄膜的光催化活性明显降低;当SiO2添加 量较低时,TiO2/SiO2复合薄膜的光催化活性无明显变化.在TiO2薄膜中添加SiO2,可以抑制薄 膜中TiO2晶粒的长大,同时薄膜表面的羟基含量增加, 水在复合薄膜表面的润湿角下降, 亲 水能力增强.当SiO2含量为10%-20%(摩尔分数)时获得了润湿角为0°的超亲水性薄膜.  相似文献   

10.
报道了一种制备具有“核-壳”结构和双重释放过程的可降解抗炎缓释系统(3)的新方法。以聚(乙交酯-丙交酯)(PLGA50)为药物载体,先通过热熔挤出法将绿原酸(CA)与PLGA50共挤出得挤出物(1);利用静电纺丝法在1表面包裹一层“PLGA50+CA”静电纺丝膜(2),制得具备“核-壳”结构的材料(3)。采用SEM, TGA, DSC和LC-MS研究了CA的热稳定性,1的热力学性能,3的微观形态和体外药物释放行为。结果表明:3具有“核-壳”结构;引入CA,降低了PLGA50的玻璃化转变温度;3的药物释放为双重释放过程。  相似文献   

11.
Biodegradable poly(lactic-co-glycolic acid) (PLGA)/carboxyl-functionalized multi-walled carbon nanotube (c-MWCNT) nanocomposites were successfully prepared via solvent casting technique. Rat bone marrow-derived mesenchymal stem cells (MSCs) were employed to assess the biocompatibility of the nanocomposites in vitro. Scanning electron microscopy (SEM) observations revealed that c-MWCNTs gave a better dispersion than unmodified MWCNTs in the PLGA matrix. Surface properties were determined by means of static contact angle, X-ray photoelectron spectroscopy (XPS) and atomic force microscopy (AFM) analysis. The presence of c-MWCNTs increased the mechanical properties of the nanocomposites. Seven-week period in vitro degradation test showed the addition of c-MWCNTs accelerated the hydrolytic degradation of PLGA. In addition, SEM proved that the cells could adhere to and spread on films via cytoplasmic processes. Compared with control groups, MSCs cultured onto PLGA/c-MWCNT nanocomposites exhibited better adhesion and viability and also displayed significantly higher production levels of alkaline phosphatase (ALP) over 21 days culture. These results demonstrated that c-MWCNTs modified PLGA films were beneficial for promoting cell growth and inducing MSCs to differentiate into osteoblasts. This work presented here had potential applications in the development of 3-D scaffolds for bone tissue engineering.  相似文献   

12.
Conducting polymers (CPs) is one of intelligent biomaterials with the specific properties of reversible redox states, which have a significant effects on the cell behaviors and nerve tissue regeneration. However, the effects of CPs with different electrical conductivity on the behaviors of nerve cells are rarely reported. Therefore, a kind of Poly(3‐hexylthiophene) (P3HT) with certain molecular weight is synthesized by Kumada catalyst transfer polymerization (KCTP) method and employed to prepare bioabsorbable and electroactive intelligent composites of Poly(3‐hexylthiophene)/Poly(glycolide‐lactide) (P3HT/PLGA). FeCl3 doping electroactive membranes with different electrical conductivities are prepared to investigate the cell behaviors. On the substrate with higher electrical conductivity, the proliferation of rat adrenal pheochromocytoma cells (PC12 cells) is significantly promoted and neurite length is increased obviously. In particular, the most significant improvements are the neuron gene expression of Synapsin 1 and microtubule‐associated protein 2 (MAP2) by the composites with high conductivity. These results suggest that P3HT/PLGA with suitable electrical conductivity have a positive role in promoting neural growth and differentiation, which is promising for advancing potential application of nerve repair and regeneration.  相似文献   

13.
张舵  章培标 《高分子科学》2011,29(2):215-244
Biodegradable porous nanocomposite scaffolds of poly(lactide-co-glycolide)(PLGA) and L-lactic acid(LAc) oligomer surface-grafted hydroxyapatite nanoparticles(op-HA) with a honeycomb monolith structure were fabricated with the single-phase solution freeze-drying method.The effects of different freezing temperatures on the properties of the scaffolds,such as microstructures,compressive strength,cell penetration and cell proliferation were studied.The highly porous and well interconnected scaffolds with a tunable pore structure were obtained.The effect of different freezing temperature(4℃,-20℃,-80℃and -196℃) was investigated in relation to the scaffold morphology,the porosity varied from 91.2%to 83.0%and the average pore diameter varied from(167.2±62.6)μm to(11.9±4.2)μm while theσ10 increased significantly.The cell proliferation were decreased and associated with the above-mentioned properties.Uniform distribution of op-HA particles and homogeneous roughness of pore wall surfaces were found in the 4℃frozen scaffold.The 4℃frozen scaffold exhibited better cell penetration and increased cell proliferation because of its larger pore size,higher porosity and interconnection.The microstructures described here provide a new approach for the design and fabrication of op-HA/PLGA based scaffold materials with potentially broad applicability for replacement of bone defects.  相似文献   

14.
The material-driven differentiation of bone marrow stromal cells (BMSCs) is a critical issue in regeneration medicine. In this study, we showed the differentiation of BMSCs in 3-D scaffolds consisting of collagen, poly(lactide-co-glycolide) (PLGA) and chitosan. The results revealed that the collagen-grafted PLGA/chitosan scaffolds yielded little cytotoxicity to BMSCs. The scaffold containing type I collagen of 640μg/mL was about 1.2 times the cell adhesion efficiency of the corresponding unmodified scaffold. In addition, the modification of type I collagen with the density of 640μg/mL increased about 1.3 times the cell viability and 1.2 times the biodegradation, respectively. The differentiation of BMSCs in PLGA/chitosan scaffolds produced osteoblasts with mineral deposition on the substrate. Moreover, the surface collagen promoted the formation of mineralized tissue and reduced the amount of phenotypic BMSCs in the constructs. However, the induction with neuron growth factor (NGF) inhibited osteogenesis and guided the differentiation of BMSCs towards neurons in the constructs. Therefore, the combination of collagen-functionalized PLGA/chitosan scaffolds, NGF and BMSCs can be promising in neural tissue engineering.  相似文献   

15.
理想型神经修复材料应具备与正常神经相似的导电性、仿生细胞外基质结构以及释放特定的生长因子等性能。 本研究将不同质量分数(0、3%、5%、10%)的聚(3-己基噻吩)(P3HT)加入到聚(乙交酯-丙交酯)(PLGA)中,采用静电纺丝工艺,制备了具有电活性和仿生结构的复合纤维。 利用酪氨酸羟化酶,将不同质量浓度(10、50、100 ng/mL)的含多巴接头的胰岛素样生长因子-1(DOPA-IGF-1)绑定在纤维表面,实现生长因子长效稳定的作用。 通过扫描电子显微镜、接触角表征了纤维直径、分布以及表面亲疏水性。 利用细胞培养、荧光染色实验评估了纤维在体外的生物相容性和生物活性。 结果表明,该电活性纤维能有效促进大鼠肾上腺嗜铬细胞瘤细胞(PC12)增殖,其中,PLGA/P3HT-5%纤维表现出更好的细胞响应性。 结合DOPA-IGF-1质量浓度为10 ng/mL的纤维更利于PC12细胞的黏附、生长。 兼具电活性和生物活性的纳米纤维DOPA-IGF-1@PLGA/P3HT在神经组织修复领域具有潜在的应用价值。  相似文献   

16.
表面活性剂碳化法合成Fe3O4/C复合物及其电化学性能   总被引:1,自引:0,他引:1  
以水热法合成的包覆油酸的α-Fe2O3粒子为前驱体, 在氩气下500 °C煅烧1 h, 得到Fe3O4/C纳米复合物. 用傅里叶变换红外(FTIR)光谱, X射线衍射(XRD), 扫描电镜(SEM), X射线能量散射(EDX)谱, 高分辨透射电镜(HRTEM), 元素分析, 循环伏安(CV)和恒流充放电测试等方法对材料的结构、形貌、成分及电化学性能进行了表征. 结果表明: 所制备的Fe3O4/C复合物呈长约200 nm, 粗约100 nm的纺锤形, 表面碳层厚约1-2 nm, 碳含量为1.956%(质量分数); 这种复合物作为锂离子电池负极材料具有很好的循环稳定性(在0.2C (1C=928 mA·g-1)循环80次后具有691.7 mAh·g-1比容量)和倍率性能(在2C循环20次后依然有520 mAh·g-1比容量). 相对于未包覆的商业Fe3O4粒子, 复合物显著提高的电化学性能是由于碳包覆能防止粒子聚集, 提高导电性以及稳定固体电解质界面(SEI)膜.  相似文献   

17.
采用简单的水热法制备出功能化石墨烯与CoOOH的复合物,再通过低温热处理得到功能化石墨烯-Co3O4复合材料;采用扫描电子显微镜分析了样品的形貌;测定了其电化学性能和氮气吸脱附行为.结果表明,Co3O4粒子很好地负载在石墨烯片层之间和表面;形成的复合物具有纳米孔道结构,这些纳米孔道结构有利于电解液离子的传输;而石墨烯良好的导电性有利于电子传递和提高Co3O4粒子的电容贡献值.与此同时,复合物在充放电电流密度为1A/g时的电容达320F/g,表现出优异的超电容性能.  相似文献   

18.
Copper–cobalt bimetal nanoparticles (Cu?Co) have been electrochemically prepared on glassy carbon electrodes (GCEs), which were electrodeposited with conducting polymer nanocomposites of poly(3,4‐ethylenedioxythiophene) (PEDOT) doped with carbon nanotubes (CNTs). Owing to their good conductivity, high mechanical strength, and large surface area, the PEDOT/CNTs composites offered excellent substrates for the electrochemical deposition of Cu?Co nanoparticles. As a result of their nanostructure and the synergic effect between Cu and Co, the Cu?Co/PEDOT/CNTs composites exhibited significantly enhanced catalytic activity towards the electrochemical oxidation of nitrite. Under optimized conditions, the nanocomposite‐modified electrodes had a fast response time within 2 s and a linear range from 0.5 to 430 μm for the detection of nitrite, with a detection limit of 60 nm . Moreover, the Cu?Co/PEDOT/CNTs composites were highly stable, and the prepared nitrite sensors could retain more than 96 % of their initial response after 30 days.  相似文献   

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