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11.
水痘-带状疱疹病毒(varicella zoster virus,VZV)糖蛋白E(glycoprotein E,gE)是VZV亚单位疫苗的主要候选蛋白,但目前原核表达系统制备的gE蛋白以包涵体形式为主,可溶性差。本研究采用去除第1~30氨基酸序列的VZV gE胞外域基因,将其与原核表达载体pET32a连接,并转化至感受态细胞BL21(DE3)中。使用异丙基-β-D-硫代半乳糖苷(Isopropylβ-D-thiogalactoside,IPTG)诱导表达,His-tag柱纯化重组gE蛋白,蛋白质印迹法(Western blot,WB)检测其特异性。用该重组gE蛋白免疫BALB/c小鼠制备多克隆抗体,酶联免疫吸附试验(enzyme linked immunosorbent assay,ELISA)和间接免疫荧光法检测多克隆抗体效价及特异性。结果显示,BL21/pET32a-VZV gE工程菌可以表达可溶性重组gE蛋白,纯化后纯度约为90%。WB鉴定该重组蛋白具有良好的免疫反应性。ELISA检测显示小鼠抗VZV gE多克隆抗体效价>1∶10 000,间接免疫荧光实验结果显示该抗体特异性较高。结果表明,本研究在原核表达系统中成功表达可溶性重组VZV gE蛋白,同时该蛋白具有较强的免疫原性,这为VZV gE亚单位疫苗的研制和大规模生产奠定了基础。 相似文献
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Nicholas M. Girardi James B. Thoden Hazel M. Holden 《Protein science : a publication of the Protein Society》2020,29(4):930-940
Tens of thousands of bacterial genome sequences are now known due to the development of rapid and inexpensive sequencing technologies. An important key in utilizing these vast amounts of data in a biologically meaningful way is to infer the function of the proteins encoded in the genomes via bioinformatics techniques. Whereas these approaches are absolutely critical to the annotation of gene function, there are still issues of misidentifications, which must be experimentally corrected. For example, many of the bacterial DNA sequences encoding sugar N‐formyltransferases have been annotated as l ‐methionyl‐tRNA transferases in the databases. These mistakes may be due in part to the fact that until recently the structures and functions of these enzymes were not well known. Herein we describe the misannotation of two genes, WP_088211966.1 and WP_096244125.1, from Shewanella spp. and Pseudomonas congelans, respectively. Although the proteins encoded by these genes were originally suggested to function as l ‐methionyl‐tRNA transferases, we demonstrate that they actually catalyze the conversion of dTDP‐4‐amino‐4,6‐dideoxy‐d ‐glucose to dTDP‐4‐formamido‐4,6‐dideoxy‐d ‐glucose utilizing N10‐formyltetrahydrofolate as the carbon source. For this analysis, the genes encoding these enzymes were cloned and the corresponding proteins purified. X‐ray structures of the two proteins were determined to high resolution and kinetic analyses were conducted. Both enzymes display classical Michaelis–Menten kinetics and adopt the characteristic three‐dimensional structural fold previously observed for other sugar N‐formyltransferases. The results presented herein will aid in the future annotation of these fascinating enzymes. 相似文献
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为了解SMT2基因在铁皮石斛(Dendrobium officinale)甾醇代谢过程中的作用,利用RACE技术克隆到1个DoSMT2基因,开放阅读框为1 089 bp,编码362个氨基酸,DoSMT2相对分子量为40.345 kD,理论等电点为8.13,属于稳定的亲水性蛋白。经BLAST P检索,DoSMT2蛋白属于AdoMet-MTases超级家族,含有4个S-腺苷蛋氨酸结合位点、1个甲基转移酶保守结构域和1个甾醇甲基转移酶C末端保守结构域。系统进化分析表明,DoSMT2与深圳拟兰(Apostasia shenzhenica)的SMT2亲缘关系最近,确定其属于SMT2家族。qRT-PCR分析结果表明,DoSMT2基因在茎和叶都能表达,10月份的表达量最高,叶片的表达量显著高于茎,推断叶片的甾醇代谢比茎活跃。构建了pET-29a-DoSMT2原核表达载体,并转化大肠杆菌BL21(DE3),IPTG诱导表达出预期大小的蛋白。这为铁皮石斛DoSMT2的甲基化机制及甾醇化合物代谢研究奠定基础。 相似文献
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目的:通过克隆LC3.I基因,体外原核表达LC3-I蛋白后制备抗LC3单克隆抗体,作为自噬研究中的标记分子检测自噬的发生和发展过程。方法:RT.PCR方法从RAW264.7细胞基因组中克隆LC3基因,亚克隆至pQE80L原核表达载体后转化E.cobDH5a进行诱导表达,SDS—PAGE电泳及Westemblot鉴定表达蛋白。蛋白纯化后免疫BALB/c小鼠。采用淋巴细胞杂交瘤技术,制备分泌抗LC3.I杂交瘤细胞株,体内诱生腹水制备mAb,间接ELISA法测定其效价,辛酸一硫酸铵沉淀法及亲和层析法纯化mAb。结果:成功克隆了LC3一I基因,并对其在E.coilDH5a进行诱导表达,SDS-PAGE分析表明在相对分子量Mr为20×10^3有特异条带,Westernblot验证表达产物具有一定的生物学活性。建立了3株稳定分泌特异性抗LC3-ImAb的杂交瘤细胞株,诱导产生的腹水获得的抗体效价在10^5-10^7之间,结论:在E.coli中对LC3-I进行表达,并制备特异性较强抗LC3-I蛋白的单克隆抗体。为自噬研究提供了良好的标记分子,可对自噬形成和发展进行有效的检测。 相似文献
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紫金山铜矿酸性矿山废水微生物群落多样性 总被引:1,自引:0,他引:1
【背景】为避免环境污染,酸性矿山废水需经处理后才能排放,处理后的废水理化性质会发生显著变化,将影响整个微生物群落的结构。【目的】分析处理前后的细菌和真菌群落变化及其与理化参数的关系,为矿山废水的处理提供参考指标,并为矿山污染场地的修复提供理论基础。【方法】采集福建紫金山铜矿的酸性矿山废水并测定其理化性质。采用基于原核微生物16S rRNA基因V4区和真菌18S rRNA基因ITS的高通量测序技术分析水样的微生物群落结构。【结果】经中和处理后的回水与矿坑水和生物浸出液相比,pH升高,重金属离子含量显著降低。原核微生物的多样性高于真菌,回水的物种多样性高于矿坑水和浸出液。回水中变形菌门的丰度最高,矿坑水和浸出液中分别以广古菌门和硝化螺菌门的丰度最高。回水中噬氢菌属为优势类群,矿坑水和浸出液中的优势菌是钩端螺旋菌属,铁质菌属等古菌也有一定的比例。pH、Al、Mn、Zn与回水中相对丰度较高的菌属显著相关,而矿坑水和浸出液中的高丰度类群与环境因子没有显著的相关性。【结论】研究表明酸性废水的中和沉淀处理对微生物群落产生了较大的影响,微生物群落变化可以作为矿山酸性废水污染处理效果的一个参考指标。 相似文献
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Starting in 1991, the advance of Tyr-recombinases Flp and Cre enabled superior strategies for the predictable insertion of transgenes into compatible target sites of mammalian cells. Early approaches suffered from the reversibility of integration routes and the fact that co-introduction of prokaryotic vector parts triggered uncontrolled heterochromatization. Shortcomings of this kind were overcome when Flp-Recombinase Mediated Cassette Exchange entered the field in 1994. RMCE enables enhanced tag-and-exchange strategies by precisely replacing a genomic target cassette by a compatible donor construct. After “gene swapping” the donor cassette is safely locked in, but can nevertheless be re-mobilized in case other compatible donor cassettes are provided (“serial RMCE”). These features considerably expand the options for systematic, stepwise genome modifications. The first decade was dominated by the systematic generation of cell lines for biotechnological purposes. Based on the reproducible expression capacity of the resulting strains, a comprehensive toolbox emerged to serve a multitude of purposes, which constitute the first part of this review. The concept per se did not, however, provide access to high-producer strains able to outcompete industrial multiple-copy cell lines. This fact gave rise to systematic improvements, among these certain accumulative site-specific integration pathways. The exceptional value of RMCE emerged after its entry into the stem cell field, where it started to contribute to the generation of induced pluripotent stem (iPS-) cells and their subsequent differentiation yielding a variety of cell types for diagnostic and therapeutic purposes. This topic firmly relies on the strategies developed in the first decade and can be seen as the major ambition of the present article. In this context an unanticipated, potent property of serial Flp-RMCE setups concerns the potential to re-open loci that have served to establish the iPS status before the site underwent the obligatory silencing process. Other relevant options relate to the introduction of composite Flp-recognition target sites (“heterospecific FRT-doublets”), into the LTRs of lentiviral vectors. These “twin sites” enhance the safety of iPS re-programming and -differentiation as they enable the subsequent quantitative excision of a transgene, leaving behind a single “FRT-twin”. Such a strategy combines the established expression potential of the common retro- and lentiviral systems with options to terminate the process at will. The remaining genomic tag serves to identify and characterize the insertion site with the goal to identify genomic “safe harbors” (GOIs) for re-use. This is enabled by the capacity of “FRT-twins” to accommodate any incoming RMCE-donor cassette with a compatible design. 相似文献