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1.
构建p ET-28a(+)-ERG-11重组质粒,表达6×His-ERG-11融合蛋白,制备ERG-11多克隆抗体。采用PCR技术扩增目的片段,插入p ET-28a(+)原核表达载体,并转入E.coli BL21(DE3)感受态表达融合蛋白,融合蛋白经亲和纯化及分子筛纯化后免疫新西兰大白兔制备多克隆抗体,取血清后,采用间接ELISA法和Western blot法检测多克隆抗体的效价及特异性。成功构建了p ET-28a(+)-ERG-11表达载体,SDS-PAGE电泳显示成功诱导出以包涵体形式存在的6×His-ERG-11融合蛋白,两步纯化后得到纯度较高的抗原,间接ELISA法显示制备的多克隆抗体效价达到1∶512 000,Western blot显示具有较高特异性。成功实现了粗超脉孢菌ERG-11蛋白的原核表达,制备出一支兔抗粗超脉孢菌ERG-11的多克隆抗体。  相似文献   

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目的对拟态弧菌安徽分离株HX4(V.mimicusHX4株)的全长溶血素基因(vmh)进行克隆测序和生物信息学分析,为表达溶血素蛋白(VMH)奠定基础。方法采用PCR法扩增V.mimicusHX4菌株全长vmh基因,将其克隆至pMD18-Tvector并进行测序,应用生物信息学软件分析vmh基因的同源性及其编码蛋白的分子特征。结果V.mimicusHX4菌株vmh基因全长序列2235 bp,编码由744个氨基酸组成的分子量约为82.85 kDa的VMH蛋白。V.mimicusHX4菌株vmh基因的核苷酸序列和氨基酸序列与参考株相应序列的同源性分别介于98.9%~99.1%和96.6%~97.3%。VMH蛋白N端前25个氨基酸组成信号肽,7~27位氨基酸之间存在一个跨膜区域,蛋白二级结构中无规卷曲含量最高,达39.52%,其次为α-螺旋和β-折叠,分别占25.81%和26.75%,β转角含量最低,仅占7.93%。VMH蛋白含有多个T细胞和B细胞抗原表位,同时存在T、B细胞抗原表位的区域最有可能位于肽链第86~95、193~211、419~440和459~501位区段。结论拟态弧菌VMH蛋白是一种高度保守的毒素蛋白,对HX4菌株vmh基因及其编码蛋白信息特征的了解,有助于进一步表达VMH蛋白。  相似文献   

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旨在制备猪圆环病毒2型(PCV2)Cap蛋白的多克隆抗体。以PCV2毒株(CAU0673)DNA为模板进行PCR,扩增目的片段大小约为702 bp,构建pET30a-PCV2-Cap重组质粒,转入大肠杆菌BL21(DE3),IPTG诱导表达;对目的蛋白进行NiNTA树脂亲和层析纯化、复性,并进行SDS-PAGE和Western blot鉴定;将纯化后的重组Cap蛋白与弗氏佐剂混匀乳化,经背部皮下多点注射4次,免疫新西兰大耳白兔,制备成兔抗Cap蛋白多克隆抗体,采用Western blot和间接免疫荧光试验(IFA)验证兔抗血清特异性,并用间接ELISA测定抗血清抗体效价。PCR、双酶切和测序鉴定结果表明,重组质粒pET30a-PCV2-Cap构建正确;重组Cap蛋白以包涵体的形式表达,大小约为34 kD,复性后重组Cap蛋白可与PCV2阳性猪血清发生特异性反应;制备的多克隆抗体与PCV2重组Cap蛋白和全病毒抗原均可发生反应,ELISA抗体效价 1∶12 800,显著高于商品化疫苗组。  相似文献   

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目的:获得Scytovirin(SVN)蛋白及其多克隆抗体.方法:按照NCBI上公布的SVN基因序列设计合成引物,合成SVN基因,构建pET32c-SVN原核表达重组质粒,经限制性酶切分析、DNA序列测定插入片段正确;将该重组质粒转化大肠杆菌BL21(DE3),IPTG诱导重组蛋白表达;用离子交换层析法及金属亲合层析法纯化蛋白,采用Tris-Tricine系统分析;以经过纯化的蛋白为抗原免疫白兔,制备SVN多克隆抗体.结果:对表达产物进行了分离纯化,SVN纯度达到91%;用纯化的样品制备了多克隆抗体,抗血清效价为1∶102 400.结论:SVN在大肠杆菌表达系统中获得了高效可溶表达,并制备了其多克隆抗体,为进一步深入研究SVN提供了材料.  相似文献   

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果蝇CG8419基因与脊椎动物中TRIM45基因为同源基因.以果蝇cDNA为模板通过PCR扩增出亲水性和特异性好的果蝇CG8419基因片段,将其克隆入表达载体PET-28a,构建出重组表达质粒PET-28a-CG8419.将重组质粒转化大肠杆茵Rosetta,经IPTG诱导出带His标签的重组融合蛋白.通过尿素洗涤包涵体并切胶回收纯化融合蛋白,然后再免疫新西兰大白兔制备多克隆抗体.Western blot实验分别验证抗体的效价和特异性.果蝇胚胎抗体染色显示该基因在果蝇唾液腺中表达.  相似文献   

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目的:在大肠杆菌中表达沙门菌外膜蛋白(OMP)D,纯化后制备兔抗OMPD抗体。方法:用PCR方法从鼠伤寒沙门菌中扩增出ompD基因,并插入融合表达载体pET-28a(+)的多克隆位点,构建重组表达质粒pET28a(+)-ompD;以重组质粒转化大肠杆菌BL21(DE3),筛选阳性重组菌株,经IPTG诱导目的蛋白表达,在变性条件下对目的蛋白进行亲和层析纯化;以表达的OMPD蛋白免疫家兔,制备抗OMPD的多克隆抗体并进行鉴定。结果:扩增了ompD基因,测序证实正确后亚克隆于表达载体pET-28a(+)中,经PCR筛选和酶切鉴定获得阳性克隆,经诱导在大肠杆菌中表达出相对分子质量为40×103的目的蛋白并进行纯化;纯化的OMPD免疫家兔后,能有效地刺激特异性抗体的产生,抗血清的效价达到1∶10000以上,且具有良好的特异性。结论:构建ompD基因的原核表达载体,并在大肠杆菌中获得高效表达;制备出兔抗OMPD抗体,效价及特异性均良好,为进一步制备肠黏膜高亲和力疫苗奠定了基础。  相似文献   

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目的:原核表达并纯化、鉴定人生长分化因子15(GDF-15),制备其多克隆抗体。方法:从人结肠癌细胞系HT29的cDNA扩增出GDF-15基因片段并插入pET-32a(+)原核表达载体,转化大肠杆菌BL21,IPTG诱导表达重组GDF-15,用镍亲和柱纯化,SDS-PAGE、Western印迹鉴定重组蛋白。用纯化的重组GDF-15免疫BALB/c小鼠制备多克隆抗体,鉴定并检测其效价。结果:制备了pET-32a(+)-GDF-15表达载体;经IPTG诱导重组蛋白表达后,采用Ni亲和柱纯化蛋白,并经SDS-PAGE和免疫印迹鉴定;免疫BALB/c小鼠后获得了GDF-15多克隆抗体,ELISA检测抗体效价为1∶100000,并应用于肿瘤细胞的GDF-15检测中。结论:用基因工程和免疫学方法制备了重组人GDF-15及其多克隆抗体,为后续的分子机制和靶向治疗研究奠定了基础。  相似文献   

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[目的]克隆表达羊口疮病毒ORFV119蛋白,以纯化重组蛋白为免疫原制备鼠多克隆抗体,并鉴定抗体的特性。[方法]PCR扩增ORFV119基因,克隆入原核表达载体p ET-28a(+)中构建重组质粒p ET28a-119。经双酶切和测序正确后,转化感受态大肠杆菌BL21,IPTG诱导表达,SDS-PAGE鉴定融合蛋白表达情况。表达产物进行超声破碎和Ni柱纯化,之后目的蛋白免疫BALB/c小鼠,制备ORFV119多克隆抗体并对其通过中和实验进行鉴定。[结果]成功构建重组质粒p ET28a-119,在大肠杆菌BL21中ORFV119融合蛋白以部分可溶形式表达。可溶性目的蛋白纯化后作为免疫原制备鼠多克隆抗体,抗体效价达1∶12 800,中和实验显示该多抗具有保护作用,可减轻宿主细胞在病毒感染时的病变效应(中和效价66 ND50/m L)。[结论]成功诱导表达、纯化ORFV119蛋白并制备其多克隆抗体,为深入研究ORFV感染、发病机理及羊口疮疾病的临床诊断奠定基础。  相似文献   

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克隆表达羊口疮病毒蛋白ORFV035,并制备其多克隆抗体,为后续对病毒复制、装配、形态发生和成熟过程的研究奠定基础。PCR扩增羊口疮病毒ORFV035基因,将其与质粒pET-30a(+)经Bam HⅠ和HindⅢ双酶切后连接,构建重组质粒pET30a-035。重组质粒经双酶切和测序鉴定,转化感受态大肠杆菌BL21,IPTG诱导表达,SDS-PAGE鉴定蛋白表达情况。表达产物进行超声破碎和Ni柱纯化,纯化后目的蛋白免疫小鼠,制备多克隆抗体并对其进行鉴定。成功构建了重组质粒pET30a-035,在大肠杆菌BL21中以包涵体形式高效表达。包涵体洗涤、溶解后进行Ni柱纯化,得到纯度较高的ORFV035-his融合蛋白。以纯化蛋白免疫小鼠获得多克隆抗体。Western blot检测显示该多抗可以识别天然ORFV035蛋白。成功诱导表达、纯化ORFV035蛋白并制备ORFV035多克隆抗体。  相似文献   

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旨在表达和纯化猪δ冠状病毒(PDCoV)N蛋白并制备该蛋白的多克隆抗体。以RT-PCR扩增PDCoV N基因并与表达载体pET-28a构建重组质粒,转化Transetta(DE3)菌株诱导表达,SDS-PAGE鉴定融合蛋白表达,以纯化的N蛋白免疫家兔制备多克隆抗体,Western blot验证兔抗血清特异性,间接ELISA测定抗血清效价。利用间接免疫荧光试验(IFA)、免疫荧光试验(IF)、流式细胞术(FCM)鉴定其诊断应用价值。重组N蛋白为可溶性表达,大小约为44 kD,制备的兔抗N蛋白抗体效价可达1∶204 800。IFA与FCM试验证实该抗体能与PDCoV特异性结合,与PEDV及TGEV无交叉反应,IF试验表明该抗体可用于检测小肠组织中的PDCoV。  相似文献   

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In experiments on Black Sea skates (Raja clavata), the potential of the receptor epithelium of the ampullae of Lorenzini and spike activity of single nerve fibers connected to them were investigated during electrical and temperature stimulation. Usually the potential within the canal was between 0 and –2 mV, and the input resistance of the ampulla 250–400 k. Heating of the region of the receptor epithelium was accompanied by a negative wave of potential, an increase in input resistance, and inhibition of spike activity. With worsening of the animal's condition the transepithelial potential became positive (up to +10 mV) but the input resistance of the ampulla during stimulation with a positive current was nonlinear in some cases: a regenerative spike of positive polarity appeared in the channel. During heating, the spike response was sometimes reversed in sign. It is suggested that fluctuations of the transepithelial potential and spike responses to temperature stimulation reflect changes in the potential difference on the basal membrane of the receptor cells, which is described by a relationship of the Nernst's or Goldman's equation type.I. P. Pavlov Institute of Physiology, Academy of Sciences of the USSR, Leningrad. I. M. Sechenov, Institute of Evolutionary Physiology and Biochemistry, Academy of Sciences of the USSR, Leningrad. Pacific Institute of Oceanology, Far Eastern Scientific Center, Academy of Sciences of the USSR, Vladivostok. Translated from Neirofiziologiya, Vol. 12, No. 1, pp. 67–74, January–February, 1980.  相似文献   

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Evolution of living organisms is closely connected with evolution of structure of the system of regulations and its mechanisms. The functional ground of regulations is chemical signalization. As early as in unicellular organisms there is a set of signal mechanisms providing their life activity and orientation in space and time. Subsequent evolution of ways of chemical signalization followed the way of development of delivery pathways of chemical signal and development of mechanisms of its regulation. The mechanism of chemical regulation of the signal interaction is discussed by the example of the specialized system of transduction of signal from neuron to neuron, of effect of hormone on the epithelial cell and modulation of this effect. These mechanisms are considered as the most important ways of the fine and precise adaptation of chemical signalization underlying functioning of physiological systems and organs of the living organism  相似文献   

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