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1.
磁性高分子微球是近20年来发展起来的一种新型功能高分子材料,并已在生物化工、细胞学、生物医学工程等领域得到了广泛应用。本文主要介绍磁性高分子微球的制备和性质以及在固定化酶中的应用。  相似文献   

2.
功能化磁性高分子复合微球作为一种新型功能材料,在许多领域具有广阔的应用前景。本文对近年来功能化磁性高分子复合微球的制备方法进行了总结,对当前不同方法的优缺点进行了评价与分析;对功能化磁性高分子复合微球在生物工程领域,医学领域,环境、食品领域和功能材料领域进行了阐述。并综合分析了磁性微球在各个领域的优势及已经取得的成果。最后,展望了功能化磁性高分子复合微球的发展前景,提出自己的观点,并列出亟待解决的四个问题。  相似文献   

3.
磁性高分子微球的制备和应用研究进展   总被引:29,自引:0,他引:29  
磁性高分子微球是近20年来研究的一类新型功能材料,在生物医学,细胞学和生物工程等领域有着广泛的应用前景,本文对磁性高分子微球的性质,制备方法及功能经方法作了详细评述,介绍了磁性高分子微球在细胞分离,固定化酶,免疫测定,生物导弹,DNA分离及核酸杂交等领域的应用。  相似文献   

4.
超顺磁性高分子微球的制备与表征   总被引:20,自引:2,他引:18  
用化学共沉淀方法制备了Fe3O4纳米微粒,并用油酸(十八烯酸)和十二烷基苯磺酸钠为双层表面活性剂进行表面修饰,制备了稳定的水分散性纳米Fe3O4可聚合磁流体.在Fe3O4磁流体存在下,将苯乙烯与甲基丙烯酸通过乳液聚合方法制备了磁性高分子微球.透射电镜研究表明,Fe3O4微粒的平均粒径在10nm左右,乳液聚合形成的磁性高分子微球的粒径平均约为130nm;用超导量子干涉仪对微粒及高分子微球进行了磁性表征,结果表明,合成的Fe3O4纳米微粒以及磁性高分子微球均具有超顺磁性.同时,还用红外光谱及X射线衍射表征了磁性高分子微球的化学成分和晶体结构.用热失重方法测得磁性高分子微球中磁性物质的含量为23.6%.  相似文献   

5.
磁性高分子微球的制备及其应用   总被引:6,自引:0,他引:6  
张珊  游长江  陶潜  莫海 《广州化学》2004,29(2):45-50
对磁性高分子微球的研究现状进行了综述,探讨了目前的各种合成制备方法、结构性能以及影响微球磁性的因素,在此基础上对磁性高分子微球在免疫测定、生物导弹、有机合成、环境/食品微生物检测等领域的最新应用进展以及存在的问题进行了分析,提出了该领域的今后发展方向。  相似文献   

6.
磁性高分子微球用于固定化酶的研究进展   总被引:22,自引:0,他引:22  
磁性高分子微球是近20年来发展起来的一种新型功能高分子材料,并已在生物化工、细胞学、生物医学工程等领域得到了广泛应用.本文主要介绍磁性高分子微球的制备和性质以及在固定化酶中的应用.  相似文献   

7.
磁性树脂基复合材料的研究进展   总被引:7,自引:0,他引:7  
综合磁性树脂基复合材料的研究现状,着重介绍了磁性树脂基复合材料的三大类:粘结磁体、磁性高分子微球和磁性离子交换树脂的最新发展和研究状况。  相似文献   

8.
磁性聚合物微球作为一种新兴起的复合功能材料,由于具有纳米尺寸、超顺磁性、良好的生物相容性、低毒性诸多优点,受到了人们广泛而深入的研究。本文简要介绍了无机磁性粒子的制备方法和磁性聚合物微球的分类,主要对磁性高分子微球的传统制备方法和涌现新方法新技术进行了阐述,并分析了各种制备磁性聚合物微球方法的优缺点及主要影响因素。除此之外,本文也介绍了磁性聚合物微球近年来最新研究成果及应用领域,并对高分子微球未来发展趋势和存在的问题进行了分析。  相似文献   

9.
磁性微球的制备及研究进展   总被引:13,自引:0,他引:13  
磁性微球作为一种新型功能材料,在磁性材料、生物工程等领域有着广泛的应用前景。文章对磁性高分子微球的制备方法、性质作了较详细的综述,着重介绍了磁性微球在细胞分离、蛋白质的提纯、固定化酶、靶向给药及核酸的分离等领域的应用。  相似文献   

10.
单分散磁性P(St/BA/MAA)微球的制备   总被引:10,自引:0,他引:10  
在共沉淀法合成超细磁流体的基础上 ,以苯乙烯 (St)、丙烯酸丁酯 (BA)和甲基丙烯酸 (MAA)为共聚单体 ,在不同的介质体系中采用无皂乳液聚合法制备了单分散 ,粒径范围为 80~ 2 30nm的磁性P(St BA MAA)微球 .详细探讨了介质极性、磁流体中表面活性剂含量对磁性高分子微球粒径和单分散性的影响 .实验结果表明 ,在一定范围内随介质极性降低 ,磁性高分子微球的单分散性提高 ,随表面活性剂用量增加 ,单分散性变差 .总体来看 ,磁性高分子微球的单分散性与其表面静电斥力密切相关 ,过大或过小的静电斥力均会导致磁性高分子微球单分散性的降低 .  相似文献   

11.
在内部分散超顺磁性Fe3O4纳米粒子的二乙烯苯交联聚丙烯酸微球表面引入原子转移自由基聚合(ATRP)引发剂,引发聚合向微球表面分别引入P(GMMA-r-DMAEMA-r-GMA)、P(GMMA-r-DMAEMA)和P(GMMA-r-GMA)无规共聚物刷(GMMA为甲基丙烯酸甘油单酯,DMAEMA为甲基丙烯酸-N,N-二甲氨基乙酯,GMA为甲基丙烯酸缩水甘油酯),聚合物刷中GMMA链节的作用是使聚合物刷具有亲水性,DMAEMA引入氨基,GMA引入环氧基.研究了青霉素G酰化酶在这些载体上的固定化和其酶活性.结果表明,同时引入环氧基和氨基的P(GMMA-r-DMAEMA-r-GMA)刷磁性微球固定化青霉素G酰化酶的活性和活性收率都最高,其固定化动力学比只含环氧基P(GMMA-r-GMA)刷磁性微球的好.固定化酶比自由酶更耐热,固定化酶的最佳pH值比自由酶的略高,固定化酶重复使用10次后其活性保留70%.  相似文献   

12.
As a result of their advantages for superparamagnetic properties, good biocompatibility, and high binding capacity, functionalized magnetic materials became widely popular over the past couple of decades, being applied on large scale in various processes of sample preparation for biomedicine. In this work, we perform an in‐depth review on the current progress in the field of magnetic bead separation, discussing in detail the physical basis of this process, various synthesis methods and surface modification strategies. We place special focus of attention as well on the latest applications of magnetic polymer microspheres in cell separation, protein purification, immobilized enzyme, nucleic acid separation, and extraction of bioactive compounds with low molecular weight. Existing problems are highlighted and possible trends of magnetic separation techniques for biomedicine in the future are proposed.  相似文献   

13.
Narrow-disperse magnetic microspheres were prepared by alkaline coprecipitation of Fe2+ and Fe3+ ions within poly(acrylic acid–divinylbenzene) microspheres that were prepared by distillation–precipitation copolymerization. Magnetic microspheres with polymer brushes that contain epoxy groups were prepared by graft copolymerization of glycidyl methacrylate and glycerol monomethacrylate via atom transfer radical polymerization (ATRP) from the magnetic microsphere surfaces. Subsequently, magnetic microspheres with thiol-containing polymer brushes were prepared by treating the epoxy group-containing magnetic microspheres with sodium hydrosulfide. Gold nanoparticles were immobilized in the brush layer of the thiol-containing magnetic microspheres through Au–S coordination. The catalytic activity of the gold nanoparticle-immobilized magnetic microspheres was investigated using the reduction of 4-nitrophenol to 4-aminophenol with sodium borohydride as a model reaction. The catalyst could be reused for over 10 cycles without noticeable loss of catalytic activity.  相似文献   

14.
磁微球及其在生化分离分析中的应用   总被引:8,自引:0,他引:8  
景晓燕  李茹民  王鹏  王君  袁艺  朱果逸 《分析化学》1999,27(12):1462-1467
磁微球是以金属或金属氧化物为核,外面包被带有活性基团物质的一种新型生物分离材料。目前制备磁微球的方法有包埋法、聚合法、浸渍法、挤压法和生物合成法等。这种微球通过其活性基团与化学、生化和生物物质连接后,利用其顺磁性外加一定磁场可实现与介质分离。本文全面地介绍了磁微球的制备,详尽评述了其在免疫分析、核酸杂交分析、基因测序、细胞分离、酶的固定、受体分离等各个领域的应用。  相似文献   

15.
Poly[(glycidyl methacrylate)-co-(glycerol monomethacrylate)]-grafted magnetic microspheres were prepared by graft random copolymerization via ATRP from polymer microspheres with dispersed Fe(3)O(4) nanoparticles. Penicillin G acylase (PGA) was immobilized onto the polymer brush-grafted magnetic microspheres. The immobilized PGA prepared with initial glycidyl methacrylate/glycerol monomethacrylate ratios of 40/60 to 60/40 possessed higher catalytic activity than that prepared with higher proportions of glycidyl methacrylate in the initial monomer mixture. The immobilized PGA showed high thermal stability and enhanced tolerability to the pH variance.  相似文献   

16.
磁性高分子微球   总被引:25,自引:0,他引:25  
对磁性高分子微球的研究现状进行了综述,详细探讨了目前常用的各种合成制备方法,并对各种方法的优缺点进行了分析。在此基础上,对磁性高分子微球在细胞分离、有机合成、环境/食品微生物检测等领域的最新应用进展及存在的问题进行了分析,指出了该领域今后的研究方向。  相似文献   

17.
<正>Penicillin G acylase(PGA) was immobilized on the magnetic hydrophilic polymer microspheres with average pore size of 17.1 nm,specific surface area of 128.2 m~2/g and saturate magnetization of 6.4 emu/g.The 96.7%ampicillin yield with 1.60 of the synthesis/hydrolysis(S/H) ratio from 6-aminopenicillanic acid(6-APA) and D-(-)-alpha-phenylglycine methyl ester(D-PGME) can be achieved using the resultant magnetic biocatalyst in ethylene glycol,where only 82.1%yield with 1.40 of the S/H ratio was obtained using the free PGA under the identical reaction conditions.The immobilized PGA can be separated magnetically and recycled for five times without obvious loss of its catalytic activity.  相似文献   

18.
In this study, a novel technique for screening inhibitors by electrospray mass spectrometry (ESI-MS) with immobilized enzyme on magnetic microspheres has been demonstrated. First, the model enzyme acetylcholinesterase (AChE) is immobilized onto the 3-glycidoxypropyltrimethoxysilane (GLYMO)-modified magnetic silica microspheres. AChE activity was monitored by biochemical assay that is based on mixing of AChE immobilized microspheres and model substrate acetylcholine, separating and detecting the product through ESI-MS. Stability of the enzyme-immobilized microspheres was investigated. No apparent loss of enzyme activity was observed after fivefold reuse of AChE-immobilized microspheres. The enzyme-immobilized bioassay was used to effectively identify AChE inhibitors among two standard samples, huperzine A and huperzine B, and their source herbal Huperzia serrata, all of which were spiked into the substrate. The inhibition was determined by measuring a decrease of product formation using ESI-MS.  相似文献   

19.
用原硅酸乙酯对Fe3O4纳米粒子进行表面改性得到Fe3O4/SiO2磁流体.在Fe3O4/SiO2磁流体存在下,以1,1-二苯基乙烯(DPE)为自由基聚合控制剂,利用乳液聚合法制备了Fe3O4/SiO2/P(AA-MMA-St)核-壳磁性复合微球.用红外光谱(FTIR)、振动样品磁强计(VSM)、透射电镜(TEM)、X光电子能谱(XPS)、热重分析(TGA)、示差扫描量热仪(DSC)对所制备的磁流体、磁性高分子复合微球的结构、形态、性能进行了表征.研究发现,原硅酸乙酯水解后能在Fe3O4表面形成硅膜保护层从而避免Fe3O4的酸蚀,使Fe3O4/SiO2/P(AA-MMA-St)复合微球的比饱和磁化强度比同样条件下制备的Fe3O4/P(AA-MMA-St)微球提高了28%;DPE能有效控制自由基在Fe3O4/SiO2磁流体表面均匀地引发单体聚合,得到平均粒径为422 nm,无机粒子含量为40%,比饱和磁化强度为34.850 emu/g,表面羧基含量为0.176 mmol/g的磁性复合微球.  相似文献   

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