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1.
本研究旨在用壳聚糖-聚丙烯酸纳米磁性微球纯化血红细胞超氧化物歧化酶。采用了接枝共聚法,以K2S2O8为引发剂,使壳聚糖(CTS)与聚丙烯酸(PAA)进行自由接枝共聚合成含有两性基团(-NH3,-COOH)的壳聚糖-聚丙烯酸纳米微球。化学共沉淀法制备Fe3O4磁流体,以戊二醛为交联剂,制备壳聚糖-聚丙烯酸纳米磁性微球。用傅里叶变换红外光谱仪对磁性微球结构进行检测。JEM-4000EX电镜技术对微球粒径,形貌进行表征。SOD试剂盒测定各步骤Cu-ZnSOD酶活性。结果表明,壳聚糖-聚丙烯酸纳米磁性微球有较好的粒径分布、磁响应性及蛋白吸附特性。纯化后酶比活性达6 727 U/mg,产品得率21.1%,活性回收85.7%。壳聚糖-聚丙烯酸纳米磁性微球经血液纯化血红细胞SOD具有可再生性、易操作性,其纯化效果取决于金属Cu2+的螯合程度。  相似文献   

2.
目的:改进传统的溶胶-凝胶方法而制备得表面包裹SiOZ的核-壳型磁性纳米微球,然后将表面连有链霉亲和素的磁性纳米微球应用于生物样品中核酸的分离.方法:用透射电子显微镜(TEM)、红外光谱(FTIR),X射线衍射仪(XRD)和磁强计(VSM)对得到的纳米微球进行表征,最后用电泳验证核酸.结果:表明制备得到的磁性纳米微球表面包裹Si02,粒径均匀,分散性良好,并且具有超顺磁性和较大的比饱和磁化强度.电泳结果表明磁性微球可以很好地从细胞悬液、组织、血液等样品中分离得到高质量的核酸.结论:该方法简便快速有效,其过程不需要使用任何有毒溶剂,操作简单.  相似文献   

3.
多聚物制备而成的微球是一种具有佐剂效应的疫苗控释系统,在疫苗研制中得到广泛应用.为改进大肠杆菌疫苗的制备质量,本文以天然高分子聚合物海藻酸钠和壳聚糖为材料,应用了三种不同制备微球的方法来制备大肠杆菌微球,观察微球的形态、粒径和稳定性,并测算其对大肠杆菌的包封率.结果表明,采用乳化-内部凝胶化法制备的大肠杆菌海藻酸钙-壳聚糖微球,圆整规则,粒径较小,包封率达到≈93.1%,具有良好的控释性能和稳定性,适于低温保存.  相似文献   

4.
应用了以硒化镉量子点为荧光探针,具有磁性和抗体双重靶向功能的聚苯乙烯磁微球.设计了基于此种磁微球的新型微悬臂梁式免疫传感器,满足在液相环境中,借助嵌入到聚苯乙烯磁微球的荧光探针及微球表面的特异性抗体探针,达到生物分子的定性检测,借助具有纳米机械响应的微悬臂梁及微平面电感线圈,达到生物分子的定量检测及传感器的复用性,解决传统微悬臂梁式免疫传感器的不足.着重对三种粒径尺寸的硒化镉量子点进行了表征,同时针对片上磁分离的机理,梁上微电感线圈的结构,微磁场对磁微球的吸引进行了研究,设计并优化出满足新型微悬臂梁式免疫传感器所需的蛇形微平面电感线圈.通过生物磁分离实验,验证了设计及优化的结果,实现了用于生物分子分离的片上磁分离技术.  相似文献   

5.
磁性微球是一类新型的功能材料,在生物医学工程、细胞生物学和环境工程具有广泛的应用。本文从磁性微球的结构、特性和制备方法进行了探讨,并详细介绍了磁性微球在细胞分离、蛋白质以及核酸的制备纯化领域中的应用。  相似文献   

6.
磁性微球的制备及在生物分离应用中的研究进展   总被引:11,自引:0,他引:11  
磁性微球是一类新型的功能材料,雀生物医学工程、细胞生物学和环境工程具有广泛的应用。本文从磁性微球的结构、特性和制备方法进行了探讨,并详细介绍了磁性微球在细胞分离、蛋白质以及核酸的制备纯化领域中的应用。  相似文献   

7.
Protein A磁性纳米颗粒载体的制备及应用   总被引:1,自引:0,他引:1  
本研究采用本课题组合成的表面氨基化磁性纳米微球,首先通过化学共价交联制备了葡萄球菌Protein A磁性纳米微球载体(SPA-MP),并探讨了载体制备的优化条件。然后根据生物分子特异性亲合作用原理,在外加磁场的定向控制下,通过亲和吸附、清洗和解吸附等操作,探讨了SPA-MP载体在抗体分离纯化领域的应用可行性。载体制备优化实验结果显示,通过改变蛋白质浓度、交联剂浓度和交联剂活化时间可以制备不同表面密度的SPA-MP载体。300 μg SPA,2.5% (V/V)戊二醛浓度和3小时的活化时间可以获取表面密度高达35 mg SPA/g磁性纳米微球的载体。此外,应用结果显示每克SPA-MP磁性微球载体可以结合高达14 mg 的CD25抗体,同时可有效地分离纯化人抗血清样品中的IgG抗体。  相似文献   

8.
γ-Fe2O3是一种磁性极高的磁氧铁,被广泛用于磁性分离,然而将γ-Fe2O3磁性纳米粒子用于适配子生物传感器来研究微生物细胞中的低相对分子质量产物却鲜有报道.经非水相法合成的γ-Fe2O3磁性粒子成晶效果好,粒径为19 nm,具有良好的磁力.通过正硅酸乙酯:TEOS(ethyl silicate;tetraethyl orthosilicate)进一步处理形成在水相中分散好、粒径均匀、磁性优良的核壳型磁性纳米微球.修饰上链霉亲和素纳米微球与生物素修饰的DNA连接起来,可用于探讨和研究微生物体内的底物AMP(Adenosine Monophosphate).基于适配子与底物结合发生构象转变的原理对该适配子传感器灵敏度、特异性及活体细胞的研究进行了探讨,实验结果表明:这种新型的AMP适配子生物传感器的检测下限达到了纳摩级,且具有非常好的底物特异性,在活体中的检测亦呈现一定趋势.  相似文献   

9.
目的:采用溶剂热方法合成Fe3O4磁性微球,在其表面进行硅包覆,将其应用于蓖麻叶染色体DNA提取.方法:利用透射电子显微镜(TEM),红外光谱仪(FT-IR),振动磁强计(VSM)对合成的磁性微球进行表征,最后用电泳验证核酸.结果:合成的硅包覆的磁性微球粒径均匀、具有超顺磁性和高饱和磁含量.对蓖麻叶染色体DNA提取,A260/A280达到1.83,产率为0.556mg/g.结论:与传统氯仿-异戊醇抽提法相比,基于硅包覆磁微球的磁目相提取DNA方法具有操作简便,周期短,提取率高,产品纯度高等优点.  相似文献   

10.
目的研究属于蜗牛的壳聚糖水解酶的纯化方法,得到壳聚糖水解酶的纯品,从而为氨基酸序列分析、基因克隆及工业菌制备奠定前期基础。方法建立检测蜗牛壳聚糖水解酶活性的手段并考察影响酶活性的各种因素,比较现有层析方法纯化蜗牛壳聚糖水解酶的实际效果,确定纯化的最佳条件,从而设计出最合理的纯化方案。结果经苯基琼脂糖柱层析,DEAE-Sepharose离子交换层析和Sephacryl S-300凝胶过滤分离,得到高纯高活性蛋白质,在SDS-PAGE上用银染的方法呈单一蛋白质条带,比活性提高33.333倍,纯化倍数为18.272,得率为0.15。结论实验建立了1种从蜗牛中分离高效高纯度壳聚糖水解酶的方法,为壳寡糖的酶解工业生产提供了新思路、新方法。  相似文献   

11.
Large-scale separation of magnetic bioaffinity adsorbents   总被引:1,自引:0,他引:1  
Flat magnetic separator was used to separate magnetic bioaffinity adsorbents from litre volumes of suspensions. Both magnetic cross-linked erythrocytes and magnetic chitosan were efficiently separated; at least 95% adsorbent recovery was achieved at maximum flow rate (1680 ml min–1). Using this system low amounts of trypsin were concentrated from large sample volumes using magnetic erythrocytes as affinity adsorbent.  相似文献   

12.
磁性细菌胞内可以产生磁性颗粒,因此具有趋磁性,基于这种特性,利用磁分离的原理,本研究开发了一种磁性细菌分离仪,提供了一种分离磁性细菌的新方法。以氧化亚铁硫杆菌为例,使用磁性细菌分离仪进行分离,可以得到强磁菌和弱磁菌。利用透射电镜观察,强磁菌胞内磁性颗粒明显多于弱磁菌;半固体平板磁泳实验也表明强磁菌趋磁性明显强于弱磁菌。各项实验结果表明磁性细菌分离仪可以有效地分离磁性细菌,这是一种分离磁性细菌的新方法,将促进磁性细菌分离培养的研究。  相似文献   

13.
Various bio-medical applications of magnetic nanoparticles have been explored during the past few decades. As tools that hold great potential for advancing biological sciences, magnetic nanoparticles have been used as platform materials for enhanced magnetic resonance imaging (MRI) agents, biological separation and magnetic drug delivery systems, and magnetic hyperthermia treatment. Furthermore, approaches that integrate various imaging and bioactive moieties have been used in the design of multi-modality systems, which possess synergistically enhanced properties such as better imaging resolution and sensitivity, molecular recognition capabilities, stimulus responsive drug delivery with on-demand control, and spatio-temporally controlled cell signal activation. Below, recent studies that focus on the design and synthesis of multi-mode magnetic nanoparticles will be briefly reviewed and their potential applications in the imaging and therapy areas will be also discussed.  相似文献   

14.
The effect of static magnetic fields on the budding of single yeast cells was investigated using a magnetic circuit that was capable of generating a strong magnetic field (2.93 T) and gradient (6100 T2 m?1). Saccharomyces cerevisiae yeast cells were grown in an aqueous YPD agar in a silica capillary under either a homogeneous or inhomogeneous static magnetic field. Although the size of budding yeast cells was only slightly affected by the magnetic fields after 4 h, the budding angle was clearly affected by the direction of the homogeneous and inhomogeneous magnetic fields. In the homogeneous magnetic field, the budding direction of daughter yeast cells was mainly oriented in the direction of magnetic field B. However, when subjected to the inhomogeneous magnetic field, the daughter yeast cells tended to bud along the axis of capillary flow in regions where the magnetic gradient, estimated by B(dB/dx), were high. Based on the present experimental results, the possible mechanism for the magnetic effect on the budding direction of daughter yeast cells is theoretically discussed. Bioelectromagnetics 31:622–629, 2010. © 2010 Wiley‐Liss, Inc.  相似文献   

15.
The majority of algal cells can interact with a wide range of nano- and microparticles. Upon interaction the modified cells usually maintain their viability and the presence of foreign material on their surfaces or in protoplasm can provide additional functionalities. Magnetic modification and labeling of microalgal biomass ensures a wide spectrum of biotechnological, bioanalytical and environmental applications. Different aspects of microalgal cell magnetic modification are covered in the review, followed by successful applications of magnetic algae. Modified cells can be employed during their harvesting and removal, applied in toxicity microscreening devices and also as efficient adsorbents of different types of xenobiotics.  相似文献   

16.
17.
A Davis tube (a matrix-free, flow-through magnetic separator used mainly in mineral processing) has been tested for separation of magnetic affinity biopolymer adsorbents from larger volumes of suspensions. Both magnetic chitosan and magnetic cross-linked erythrocytes could be efficiently separated from litre volumes of suspensions. Up to 90% adsorbent recovery was achieved under optimised separation conditions.  相似文献   

18.
以四氧化三铁为代表的医用磁性纳米材料具有独特的磁学性能、表面易功能化、良好的生物学相容性等特点,在纳米医学相关领域展现出巨大的应用前景,特别是近年来它作为可介导外场的智能材料,在材料设计和生物医学应用方面均取得了突破性的进展.鉴于此,本文围绕磁性氧化铁纳米材料的生物医学应用,着重介绍近年来其在磁共振影像探针、磁热和磁力效应的生物医学应用、诊疗一体化以及纳米酶催化等领域的研究进展,并对磁性纳米材料在生物医学领域未来的发展方向进行了展望.  相似文献   

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