生物医用聚合物材料表面功能化构建及抗蛋白吸附研究
本文选题:丙烯酸酯 切入点:聚对苯二甲酸乙二醇酯 出处:《华南理工大学》2013年博士论文
【摘要】:生物聚合物材料以其良好的机械性能、耐磨性和加工性能而被广泛应用于与体液或血液接触的材料。但与生物环境接触时都是以外源性物质的状态存在,不同程度地引起生物体的不良反应(异物反应)。这些反应都与非特异性蛋白质迅速吸附在无保护的材料表面有关,而非特异性蛋白的吸附又严重影响材料的表面物理化学特性。因此,材料表面的功能化构建及对非特异性蛋白吸附的抑制,是聚合物材料生物相容性的重要研究内容。 蛋白质主要是靠疏水作用吸附在材料表面。对于生物医用聚合物材料,材料表面亲/疏水性是影响蛋白质吸附的首要因素。同时,由于蛋白质是带有两性电荷的聚电解质,若材料表面也带有两亲性离子结构或亲水基团,通过富集水化层或空间排斥也可以削弱材料与蛋白的相互作用,抑制非特异性蛋白的吸附。因此,针对表面非特异性蛋白吸附引起的异物反应问题,本论文利用氨等离子体表面改性和活性生物分子接枝技术,在聚合物材料表面引入两亲性离子或亲水的功能化基团,研究表面抗非特异性蛋白吸附的机理,为其在后期临床的广泛应用提供重要理论依据。 采用低温氨等离子体改性技术,将亲水性基团引入疏水性丙烯酸酯和聚甲基丙烯酸甲酯(PMMA)材料表面。表面元素组成及接触角分析表明氨等离子体处理后,材料表面引入含氮的-NH2、-NH3+等极性基团,成功构建了氨基化的材料表面。同时表面也伴随着-COO-的产生,形成两亲性离子结构,亲水性改善。一定程度的等离子体刻蚀对后续研究影响不大,且透光率基本保持不变,优异的光学性能得到保留。但该技术处理的时效性较差。蛋白吸附实验表明,疏水性丙烯酸酯氨基化后的表面蛋白吸附减少,而氨基化的PMMA表面吸附增多,仍需要进一步接枝提高PMMA材料的表面抗蛋白吸附能力。 为了进一步增强表面抗蛋白吸附能力及长效性,首次利用酰胺键将水蛭素多肽结合在氨基化的丙烯酸酯系材料表面。紫外分光光度分析显示在静态吸附下,氨基化处理后的PMMA浸泡在500μg/ml的水蛭素溶液中4h时,吸光值最高,效果最好;表面形貌为规整有序;水蛭素接枝后表面亲水性单纯氨基化的表面要差,这是水蛭素分子中的负电荷中和了材料表面的正电荷导致的,这个推论也与表面能结果一致;表面-NH3+键含量下降而N-C=O键含量增加,证明水蛭素在材料表面接枝成功,表面也形成两性离子结构。通过石英晶体微天平动态吸附模型测试,接枝水蛭素后Fn的吸附迅速减少,且形成的吸附层最为疏松,容易被洗脱,,实现了表面抗蛋白吸附功能,性能稳定。 为了验证氨基化改善亲水性技术的普适性,采用氨等离子体表面改性处理PET膜,构建亲水性表面。氨基化后表面亲水性大幅改善,并引入较多的含N基团(-NH2/-NH3+)和-COO-官能团,膜表面形貌没有变化。氨基化的PET表面蛋白吸附明显偏少,说明氨基化技术对于表面疏水的聚合物材料具有普遍适用性。通过氨基化构建的机理分析,表面基团的形成也为后续进一步接枝单体奠定基础。 采用2-甲基丙烯酰氧乙基磷酰胆碱(MPC)在氨基化的PET膜表面构建亲水性生物磷脂层。MPC分子的两亲性离子结构进一步改善了PET表面的亲水性和抗蛋白吸附能力。高分辨XPS图谱和FTIR光谱证明MPC接枝后,亲水性基团如-COOH,-N-C=O、-P-OH及-N+(CH3)3成功接入到材料表面。在接枝10mg/ml MPC时蛋白吸附量最低,表面平整、均一。通过MPC功能化表面作用机理进一步分析,磷脂基团构建的PET表面通过水化层和空间排斥共同作用,减少蛋白质的非特异性吸附。由于MPC接枝稳定,所以MPC构建的PET表面也具有抗非特异性蛋白吸附的长效性。 根据生物医用聚合物材料与表面抗非特异性蛋白、细胞的吸附关系,构建了功能化表面生成模型。并以上述三种聚合物材料为基底进行细胞相容性和动物体内实验研究。几种功能化的表面均不同程度地促进细胞增殖。水蛭素或MPC接枝的材料表面比单纯氨基化的表面抗细胞黏附能力大大提高。动物体内实验结果显示,接枝水蛭素的人工晶状体能够始终保持很好的透明度。对生物医用聚合物材料表面功能化构建及抗蛋白吸附机理进行研究,表明疏水材料表面亲水性和抗蛋白吸附功能化的构建是由于两亲性离子及水化层的存在,能够对也带两性离子的蛋白质起到排斥作用,从而减少非特异性蛋白吸附引起的不良反应,为今后材料在临床植入领域的更广泛应用奠定理论基础。
[Abstract]:Biological polymer materials are widely used in contact with body fluids or blood based on their good mechanical properties , wear resistance and processing properties . However , when contacted with biological environment , there are adverse reactions ( foreign body reactions ) caused by exogenous substances . These reactions are related to the rapid adsorption of non - specific proteins on the surface of unprotected material , but the adsorption of non - specific proteins seriously affects the surface physicochemical properties of the material . Therefore , the functionalization of the surface of the material and the inhibition of nonspecific protein adsorption are important research contents in the biocompatibility of polymer materials .
For biomedical polymer materials , the hydrophilicity / hydrophobicity of the material is the primary factor affecting protein adsorption . At the same time , because the protein is a polyelectrolyte with ampholytic charge , it can weaken the interaction of the material with the protein and inhibit the adsorption of nonspecific protein .
Surface element composition and contact angle analysis indicate that after ammonia plasma treatment , the surface of the material introduces nitrogen - containing - NH2 , - NH3 + and other polar groups . The surface of the material has been successfully constructed .
In order to further enhance the ability of surface anti - protein adsorption and its long - acting property , it is the first time to use the amide bond to bind the leeches polypeptide to the surface of the amino acrylic ester material . The UV spectrophotometric analysis shows that , under static adsorption , the PMMA after amination treatment is soaked in 500 渭g / ml leech solution for 4 hours , the light absorption value is the highest , and the effect is best ;
the surface appearance is regular and orderly ;
The surface hydrophilicity is poor , which is caused by the negative charge and the positive charge on the surface of the material , which is also consistent with the surface energy results .
The surface - NH _ 3 + bond content decreased and the N - C = O bond content increased . It was shown that the surface grafting was successful and the surface formed a zwitterionic structure . The adsorption of Fn decreased rapidly through the dynamic adsorption model test of quartz crystal microbalance , and the formed adsorption layer was the most loose and easily eluted , thus the surface anti - protein adsorption function was realized , and the performance was stable .
In order to verify the universality of the hydrophilic technology , the hydrophilic surface was constructed by modifying the PET film with ammonia plasma surface modification . The hydrophilicity of the surface was greatly improved after amination , and the surface morphology of the membrane was not changed .
A hydrophilic biophospholipid layer was constructed on the surface of amino PET film by using 2 - methacryloyloxyethyl phosphorylcholine ( MPC ) . The amphiphilic ionic structure of MPC molecule further improved the hydrophilicity and anti - protein adsorption ability of PET surface . After grafting 10mg / ml MPC , the hydrophilic groups such as - COOH , - N - C = O , - P - OH and - N + ( CH3 ) 3 were successfully applied to the surface of the material .
A functional surface - generating model is constructed based on the relationship between the biological medical polymer material and the surface anti - nonspecific protein and the cell , and the cell compatibility and the in vivo experiment are carried out on the basis of the three polymer materials .
【学位授予单位】:华南理工大学
【学位级别】:博士
【学位授予年份】:2013
【分类号】:R318.08
【参考文献】
相关期刊论文 前10条
1 汪锰;安全福;吴礼光;莫剑雄;高从X&;;膜Zeta电位测试技术研究进展[J];分析化学;2007年04期
2 魏雨;纪璎;肖琳琳;计剑;;具有内皮细胞选择性的细胞膜仿生支架材料的研究[J];高分子学报;2010年12期
3 叶鹏;万容兵;王新平;;载体材料与蛋白质的相互作用及对其构象的影响[J];高分子通报;2010年11期
4 王春仁;生物材料表面血浆蛋白的吸附[J];国外医学.生物医学工程分册;1995年06期
5 ;Study on the surface properties of surface modified silicone intraocular lenses[J];International Journal of Ophthalmology(English Edition);2012年01期
6 于谦;张燕霞;徐亚骏;陈红;;接枝层厚度对聚(N-异丙基丙烯酰胺)改性表面与蛋白质相互作用的影响[J];材料导报;2010年22期
7 肖锡峰;江小群;周雷激;;聚乙二醇表面改性抑制蛋白质非特异性吸附[J];分析化学;2013年03期
8 刘荷英;何淑漫;陈楚敏;周健;;阻抗蛋白质吸附材料研究进展[J];化工进展;2009年03期
9 王瑶;刘振梅;徐志康;姚克;;聚丙烯酸酯人工晶状体的表面改性研究:常压介质阻挡放电等离子体处理[J];中国科学(B辑:化学);2009年02期
10 肖振宇,原续波,盛京;聚乳酸膜表面氨等离子体改性[J];天津大学学报;2004年07期
本文编号:1712001
本文链接:https://www.wllwen.com/yixuelunwen/swyx/1712001.html