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1.
枯草芽孢杆菌产β-1,3-1,4-葡聚糖酶的响应面优化   总被引:2,自引:0,他引:2  
【目的】采用响应面法(RSM)优化枯草芽孢杆菌5 L发酵罐产β-1,3-1,4-葡聚糖酶的发酵条件。【方法】利用Box-Behnken设计和方差分析。【结果】获得最佳发酵条件为:转速、通气量和培养基pH分别为500 r/min、1.05 vvm和5.08,发酵时间仅为22 h产β-1,3-1,4-葡聚糖酶活力达2 294.4 U/mL。【结论】实验结果表明响应面法优化5 L发酵罐发酵产β-1,3-1,4-葡聚糖酶的条件合理可行。  相似文献   

2.
β-1,3-1,4-葡聚糖酶活性检测结果表明,从辣椒根际筛选的拮抗菌枯草芽孢杆菌(Bacillus subtilis)SC2-4-1能产生β-1,3-1,4-葡聚糖酶.以菌株SC2-4-1的基因组DNA为模板,用PCR方法克隆了该菌的葡聚糖酶基因gluB,其开放阅读框为711bp,编码237个氨基酸.Blast分析,该序列与已报道的多粘类芽孢杆菌(Paenibacillus polymyxa)ATCC 842的β-1,3-1,4-葡聚糖酶基因gluB相似性为85%.所得基因序列的系统发育分析显示,该基因属于β-1,3-1,4-葡聚糖酶基因.DNAMAN软件比对,所得葡聚糖酶氨基酸序列具有催化裂解β-1,3-和β-1,4-糖苷键的葡聚糖酶活性位点.  相似文献   

3.
β-1,3.1,4-葡聚糖酶是一类能水解β-1,3.糖苷键和β-1,4-糖苷键的酶,因其主要分解大麦中的β-1,3-1,4-葡聚糖和细菌地衣多糖,所以又称地衣多糖酶。综述了β-1,3.1,4-葡聚糖酶基因的克隆表达及其抗菌活性与机理最新研究进展。  相似文献   

4.
目的:克隆解淀粉芽孢杆菌β-1,3-1,4-葡聚糖酶基因(bglA)使其在解淀粉芽孢杆菌CICIM B4081中高效表达,并对重组酶进行酶学性质研究.方法:以解淀粉芽孢杆菌(CICIM B4801)染色体DNA为模板,经过PCR扩增得到了大小约为0.8kb的β-1,3-1,4-葡聚糖酶基因(bglA),构建了重组表达质粒pQ-bglA,通过电转化的方法将其转化人解淀粉芽孢杆菌(CICIM B4801)中.结果:得到了能高效表达β-1,3-1,4-葡聚糖酶的重组解淀粉芽孢杆菌.在250mL摇瓶条件下,重组菌分解地衣多糖的胞外最高酶活达到了1515.7U/mL,重组酶的最适作用温度为55℃,最适反应pH值为6.5.结论:重组菌的β-1,3-1,4-葡聚糖酶的酶活为原始菌株的11.84倍,实现了bglA基因在解淀粉芽孢杆菌中的高效表达.  相似文献   

5.
产β-1,3-葡聚糖酶植物内生放线菌的筛选及抑菌活性研究   总被引:3,自引:0,他引:3  
本研究采用透明圈法, 对217株植物内生放线菌产β-1,3-葡聚糖酶进行了检测, 结果表明: 45.6%的菌株能够产生β-1,3-葡聚糖酶, 黄瓜内生放线菌中的产酶菌株最多为38个; 不同植物来源的内生放线菌中具有产β-1,3-葡聚糖酶能力的菌株比例不同, 其中黄精中的产酶菌株比例最高, 达到88.9%。产酶菌株粗酶液对油菜菌核病菌的抑菌活性测定结果发现, 36个产酶菌株的粗酶液表现出不同程度的抑制作用, 占总产酶菌株的36.4%, 其中菌株gCLA4的粗酶液能够完全抑制病菌菌丝生长。对gCLA4菌株产酶  相似文献   

6.
将大肠杆菌质粒pFG1中含枯草芽胞杆菌卢β-1,3—1,4-葡聚糖酶基因(bglS)的2.7kb EcoRI片段克隆到大肠杆菌,酵母菌穿梭质粒上组建成杂种质粒YCSH,转化S.cerevisiae并得到表达。两种不同方向的插入子(YCSH 1和YCSH 5)在酵母菌中表达出的β-1,3-1,4葡聚糖酶活性相差2.3倍。根据酶作用底物专一性测定和酶反应的最适pH分析表明:YCSH中bglS基因产物与出发菌株B.Subtilis 1.88的基本酶学特性完全相同,但YCSH中bglS基因在酶母中的表达水平远比大肠杆菌中低  相似文献   

7.
摘要:【目的】干酪乳杆菌广泛的应用于食品加工和饲料行业,本研究拟构建表达甘露聚糖酶的重组干酪乳杆菌并进行相关评价。【方法】利用干酪乳杆菌表达载体pELX1和pELSH,将短小芽孢杆菌的β-1,4-甘露聚糖酶成熟肽的基因克隆到上述两个载体中,构建的重组质粒电转化到干酪乳杆菌宿主中,分别构建能够胞内表达和分泌表达甘露聚糖酶的重组干酪乳杆菌。【结果】重组干酪乳杆菌菌株经培养后,胞内表达的β-1,4-甘露聚糖酶在重组细胞总蛋白中最高可达23 U/mg,分泌表达培养基上清的β-1,4-甘露聚糖酶最高达到8.8 U/mL。【结论】本研究首次实现了甘露聚糖酶在干酪乳杆菌中的表达,结果表明该重组干酪乳杆菌具有较大的应用前景,值得进一步研究。  相似文献   

8.
1,3-1,4-β-葡聚糖酶(E.C.3.2.1.73)是一种重要的工业用酶,其可以通过特异性切割毗邻β-1,3-糖苷键的β-1,4-糖苷键将β-葡聚糖或地衣多糖降解为纤维三糖和纤维四糖。微生物β-葡聚糖酶属于糖苷水解酶家族16,其三维结构为卷心蛋糕状的逆向β-片层结构。文中综述了近些年来β-葡聚糖酶在工业上的应用情况及酶蛋白质工程改造的研究进展,并对其研究前景进行了展望。  相似文献   

9.
【背景】β-葡聚糖是自然界中广泛存在的非淀粉多糖,是谷类植物细胞壁的主要成分。β-葡聚糖酶能够水解β-葡聚糖生成低聚合度的寡糖,在食品、饲料、造纸等领域发挥着重要的作用。【目的】从海洋细菌沙质微泡菌(Microbulbifer arenaceous)中克隆到一个β-1,3(4)-葡聚糖酶基因,在大肠杆菌中可溶表达,研究其相关酶学性质。【方法】以沙质微泡菌(Microbulbifer arenaceous)基因组DNA为模板,克隆一个β-1,3(4)-葡聚糖酶基因(MaGlu16A),构建重组表达载体p ET-28a-MaGlu16A并在大肠杆菌BL21(DE3)中诱导表达,通过Ni-NTA亲和层析纯化后进行酶学性质研究。【结果】MaGlu16A的最适pH和最适温度分别为pH 6.0和40°C,在pH 5.0-10.5和35°C以下稳定。对EDTA具有较高的抵抗性,在1 mmol/L和10 mmol/L EDTA浓度下仍保持99.3%和82.5%的酶活力。该酶能够有效水解可得然多糖、昆布多糖、大麦葡聚糖、地衣多糖、燕麦葡聚糖和酵母葡聚糖,水解产物主要为葡萄糖、二糖、三糖和四糖。【结论】海洋细菌沙质微泡菌(Microbulbiferarenaceous)来源β-1,3(4)-葡聚糖酶的克隆表达及酶学性质的测定为β-葡聚糖酶的挖掘及β-葡寡糖的制备奠定了基础。  相似文献   

10.
β-1,3-1,4-葡聚糖酶作为一种饲料和食品添加剂有着广泛用途。迄今在杆菌、梭菌、瘤胃细菌、真菌、高等植物中都发现了β-1,3-1,4-葡聚糖酶。综述了细菌来源β-1,3-1,4-葡聚糖酶的性质、结构、分子改造与表达研究进展。  相似文献   

11.
从药用盾叶薯蓣地下茎组织中分离内生菌。选取盾叶薯蓣地下茎核心组织,32℃恒温孵育,分离菌株;依据形态学、分子生物学特征鉴定菌株;通过纸片扩散法检测分离株与同种植物内生Bcillus subtilis SWB8菌株的拮抗作用。结果显示,孵育48 h后,培养基表面呈现扁平、白色或深绿色绒毛状菌落,显微镜下见孢子囊和圆形分生孢子;ITS序列分析显示,分离株ITS基因序列与GenBank数据库中烟曲霉菌同源性为100%,鉴定为烟曲霉菌(A.fumigatus YHY01)。拮抗实验显示,其与B.subtilis SWB8菌没有明显相互抑制现象。首次从盾叶薯蓣植物中分离出A.fumigatus,推测其与B.subtilis SWB8菌株间存在共生关系。  相似文献   

12.
β-1,3-1,4-葡聚糖酶是一类专一降解β-葡聚糖的内切水解酶。高效β-葡聚糖酶在啤酒酿造工业上具有十分重要的应用价值。目前,研究较多的β-1,3-1,4-葡聚糖酶主要来源于细菌。文中概述了细菌编码β-1,3-1,4-葡聚糖酶的分子生物学性质,并且从蛋白分子改造、表达调控和发酵条件优化三方面阐述了其催化活性提高的方法和成果。  相似文献   

13.
A facile synthesis of model 4-oxopyrido[3',2':4,5]thieno[3,2-b]indole-3-carboxylic acids 9a-e was achieved via Stille arylation of 2-chloro-3-nitro-4-oxothieno[2,3-b]pyridine-5-carboxylate and a subsequent microwave-assisted phosphite-mediated Cadogan reaction. The new compounds were tested for their in vitro antimicrobial and antiproliferative activity. Compounds 9a-c and 9e exhibited very high potency against Gram positive Bacillus subtilis and Bacillus megaterium at concentrations 0.000015-0.007 μg/mL. They also displayed excellent activity towards other Gram positive bacilli and staphylococci and Gram negative Haemophilus influenzae, being in most cases superior or equal to commercial fluoroquinolones. Both 9a and 9c were inhibitors of the DNA gyrase activity. As concerns antitumor properties, compounds 9b-e showed growth inhibition of MCF-7 breast tumor and A549 non-small cell lung cancer cells with IC(50) 1.6-2.8 μM and 2.6-6.9 μM, respectively, coupled with absence of cytotoxicity towards normal cells. These compounds are promising as dual acting chemotherapeutics.  相似文献   

14.
【目的】在毕赤酵母中表达特异腐质霉Humicola insolens的中性内切葡聚糖酶Ⅱ,并对其性质加以研究。【方法】利用RT-PCR的方法,以特异腐质霉(Humicola insolens)NC3总RNA为模板,克隆到中性内切葡聚糖酶Ⅱ基因(egⅡ)的cDNA。将其插入表达载体pPIC9K,重组质粒经线性化后电击转化毕赤酵母(Pichia pastoris)菌株GS115。【结果】SDS-PAGE和酶活的检测结果均表明:egⅡ基因在毕赤酵母中成功表达。重组酶的部分酶学性质研究表明,该酶的最适反应温度为70°C,且在65°C以下具有较好的热稳定性。最适反应pH为6.5,在pH 6.0?7.0之间有较好的稳定性。【结论】用重组毕赤酵母可高效表达外源中性内切葡聚糖酶,为其今后在工业应用奠定了基础。  相似文献   

15.
Four antagonists bacteria namely, Bacillus megaterium MB3, B. subtilis MB14, B. subtilis MB99 and B. amyloliquefaciens MB101 were able to produce chitinase, β-1,3-glucanase and protease in different range with the presence of Rhizoctonia solani cell wall as a carbon source. Amplification of chitinase (chiA) gene of 270 bp and β-1, 3-glucanase gene of 415 bp was given supportive evidence at molecular level of antibiosis. After in vitro screening, all antagonists were tested against R. solani under greenhouse conditions. Root treatment of Bacillus strains showed superior defense during pathogen suppression in terms of chitinase, glucanase, peroxidase, poly phenol oxidase, phenylalanine ammonia-lyase activity and total phenolic content in leaves of tomato. All these enzymes accumulated high in tomato leaves as compared to roots. Pathogenesis-related proteins and defense-related enzymes accumulation was directly correlated with plant protection and greenhouse results indicated that B. amyloliquefaciens MB101- and B. subtilis MB14-treated plants offered 69.76 and 61.51 % disease reductions, respectively, over the infected control. These results established that these organisms have the potential to act as biocontrol agents. This study could be highlighted a mutual importance of liquid formulation of antagonistic Bacillus spp. against root associated sclerotia former pathogen R. solani.  相似文献   

16.
Abstract An integrating plasmid has been used to mutagenise the gene coding for endo-β-1,3-1,4-glucanase of Bacillus subtilis . The gene, named bgl , has been mapped by PBS-1 transduction to the sacA-pureA region of the B. subtilis chromosome and is closely linked to the hutP 1 locus. The order of markers in this region is sacA 321- thiC 5- bgl - hutP 1- purA 16.  相似文献   

17.
In this work, we identified a gene from Theobroma cacao L. genome and cDNA libraries, named TcGlu2, that encodes a β-1,3-1,4-glucanase. The TcGlu2 ORF was 720 bp in length and encoded a polypeptide of 239 amino acids with a molecular mass of 25.58 kDa. TcGlu2 contains a conserved domain characteristic of β-1,3-1,4-glucanases and presented high protein identity with β-1,3-1,4-glucanases from other plant species. Molecular modeling of TcGlu2 showed an active site of 13 amino acids typical of glucanase with β-1,3 and 1,4 action mode. The recombinant cDNA TcGlu2 obtained by heterologous expression in Escherichia coli and whose sequence was confirmed by mass spectrometry, has a molecular mass of about 22 kDa (with His-Tag) and showed antifungal activity against the fungus Moniliophthora perniciosa, causal agent of the witches’ broom disease in cacao. The integrity of the hyphae membranes of M. perniciosa, incubated with protein TcGlu2, was analyzed with propidium iodide. After 1 h of incubation, a strong fluorescence emitted by the hyphae indicating the hydrolysis of the membrane by TcGlu2, was observed. To our knowledge, this is the first study of a cacao β-1,3-1,4-glucanase expression in heterologous system and the first analysis showing the antifungal activity of a β-1,3-1,4-glucanase, in particular against M. perniciosa.  相似文献   

18.
Family 16 carbohydrate active enzyme members Bacillus licheniformis 1,3-1,4-β-glucanase and Populus tremula x tremuloides xyloglucan endotransglycosylase (XET16-34) are highly structurally related but display different substrate specificities. Although the first binds linear gluco-oligosaccharides, the second binds branched xylogluco-oligosaccharides. Prior engineered nucleophile mutants of both enzymes are glycosynthases that catalyze the condensation between a glycosyl fluoride donor and a glycoside acceptor. With the aim of expanding the glycosynthase technology to produce designer oligosaccharides consisting of hybrids between branched xylogluco- and linear gluco-oligosaccharides, enzyme engineering on the negative subsites of 1,3-1,4-β-glucanase to accept branched substrates has been undertaken. Removal of the 1,3-1,4-β-glucanase major loop and replacement with that of XET16-34 to open the binding cleft resulted in a folded protein, which still maintained some β-glucan hydrolase activity, but the corresponding nucleophile mutant did not display glycosynthase activity with either linear or branched glycosyl donors. Next, point mutations of the 1,3-1,4-β-glucanase β-sheets forming the binding site cleft were mutated to resemble XET16-34 residues. The final chimeric protein acquired binding affinity for xyloglucan and did not bind β-glucan. Therefore, binding specificity has been re-engineered, but affinity was low and the nucleophile mutant of the chimeric enzyme did not show glycosynthase activity to produce the target hybrid oligosaccharides. Structural analysis by X-ray crystallography explains these results in terms of changes in the protein structure and highlights further engineering approaches toward introducing the desired activity.  相似文献   

19.
B.A. Cantwell  D.J. McConnell 《Gene》1983,23(2):211-219
A Bacillus subtilis gene coding for an endo-β-1,3-1,4-glucanase has been transferred to Escherichia coli by molecular cloning using bacteriophage λ and plasmid vectors. The gene is contained within a 1.6-kb EcoRI-PvuI DNA fragment and directs the synthesis in E. coli of a β-glucanase which specifically degrades barley glucan and lichenan. A novel dye-staining method has been developed to detect β-glucanase activity in colonies on agar plates.  相似文献   

20.
Trichoderma species have become the important means of biological control for fungal diseases. This research was carried on to access the high β-1,3-glucanase and β-1,4-glucanase enzyme producer of Trichoderma species isolates using two different carbon sources for finding a method to obtain more concentrate culture filtrates. Therefore, 14 Trichoderma isolates belonging to species: Trichoderma ceramicum, T. virens, T. pseudokoningii, T. koningii, T. koningiosis, T. atroviridae, T. viridescens, T. asperellum, T. harzianum1, T. orientalis, T. harzianum2, T. brevicompactum, T. viride and T. spirale were cultured in Wiendling’s liquid medium plus 0.5% glycerol or 0.5% Phytophthora sojae-hyphe as the carbon source in shaking and non-shaking (stagnant) statuses. Enzyme activity rate and total protein were evaluated in raw, acetony and lyophilized concentrated culture filtrates and the specific enzyme activity of β-1,3-glucanase and β-1,4-glucanase were measured by milligramme glucose equivalent released per minute per milligramme total protein in culture filtrates. The results showed that using Phytophthora – hyphe in medium increased the enzyme activities as compared to glycerol at all Trichoderma species which suggested that these substrates can also act as inducer for synthesis of lytic enzymes, in addition the most enzymes activity was observed in the lyophilised concentrated culture filtrate. The most successful species in β-1,3-glucanase and β-1,4-glucanase enzymes activities were T. brevicompactum and T. virens and these species can be used for mass production of these enzymes which are supposed to be used in commercial formulation and also will be able to control P. sojae directly.  相似文献   

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