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1.
利用以壳聚糖为唯一碳源的选择性培养基,从自然界中筛选得到一株壳聚糖酶活较高的菌株 ,其壳聚糖酶活为0.59U/mL.经初步鉴定,该菌株为芽孢杆菌属,以A表示.以该芽孢杆菌为出发菌株,经硫酸二乙酯(DES)诱变处理50 min后,筛选得到壳聚糖酶活明显提高的突变株DES-4,其壳聚糖酶活为1.60U/mL,是出发菌株的2.7倍.该突变株经连续传代5次后仍稳定产酶.研究表明,突变株DES-4的壳聚糖酶产生与芽孢形成之间关系密切,当芽孢充分形成后发酵液的壳聚糖酶活力不再增大.  相似文献   

2.
产壳聚糖酶菌株的生物学特性及抑菌性能研究   总被引:2,自引:1,他引:1  
采用透明圈法,通过大量筛选得到8株产壳聚糖酶的野生菌株,对产壳聚糖酶最高的菌株Y8的菌株形态特征和生理生化特征、生长曲线、培养时间、培养起始pH等生物学特性进行了试验并对该菌所产壳聚糖酶进行了抑菌实验比较,Y8菌株产壳聚糖酶酶活力达0.50U/mL,依据《伯杰细菌鉴定手册》(第九版),初步鉴定为似单胞菌(Pseudomonas)属的一个种。菌株Y8的适宜培养pH值为6.0~7.0,最适pH值6.5。适宜养温度为28~32℃,最适值32℃。Y8所产的壳聚糖酶对细菌和真菌都有一定的抑制作用,对细菌的抑制作用要优于真菌。浓度为0.1%的壳聚糖酶抑菌能力高于1%壳聚糖,比0.1%壳低聚糖的抑菌效果略高。  相似文献   

3.
高活性壳聚糖酶制剂的制备及其对壳聚糖降解作用的研究   总被引:3,自引:0,他引:3  
对系列壳聚糖酶高产菌株的产酶性能及产酶发酵液的壳聚糖酶活性进行了比较,从中筛选出一株优良芽孢杆菌菌株,其产酶发酵液的壳聚糖酶活力高达5000U/mL(以单位时间内底物壳聚糖的减少量确定酶活力)。利用此粗制壳聚糖酶制剂对壳聚糖进行酶解产糖的研究表明:壳聚糖的转化率及壳寡糖的产率在适合的酶解条件下,短时间内即可接近100%。  相似文献   

4.
芽孢杆菌Bacillus sp. S-1壳聚糖酶基因的克隆与序列分析   总被引:1,自引:0,他引:1  
从连云港海滩晒虾蟹壳的泥土里筛选出一株产壳聚糖酶能力较高的菌株S-1,根据其形态特征、生理生化以及16S rDNA鉴定,初步认定该菌为芽孢杆菌属(Bacillus)。利用NCBI数据库中已经报道的Bacillus壳聚糖酶序列设计兼并引物,以菌株Bacillus sp. S-1的基因组DNA为模板进行聚合酶链式反应(PCR),克隆到壳聚糖酶基因的部分序列;利用Clontech公司Universal GenomeWalker试剂盒构建该菌株的基因组步移文库,根据已测定的序列信息设计特异性引物,结合两步法PCR技术分别克隆两端未知序列,拼接获得壳聚糖酶基因的全长序列(该基因全长1362 bp编码453个氨基酸,注册号:EU924147),并对该序列进行了生物信息学方面的分析。  相似文献   

5.
土壤中选育产壳聚糖酶菌株的研究   总被引:1,自引:0,他引:1  
采用酶法降解壳聚糖具有反应条件易于控制、产物安全性高和环境污染少等独特的优越性。因此,筛选出高活力产壳聚糖酶菌株有着重要意义。该研究以不同地区采集土样分离出的1株细菌为出发菌株S,采用紫外线诱变(30W,20cm,5min),经初筛和复筛及控温培养处理,获得了一株产壳聚糖酶较好的突变菌株,结果表明:所产酶活力达到3.47U/ml,酶活力提高近2倍,并具有较好的遗传稳定性,明显优于出发菌株,为发酵产壳聚糖酶的进一步研究提供了高产菌株。  相似文献   

6.
产壳聚糖酶菌株的筛选、鉴定及酶学特性分析   总被引:1,自引:0,他引:1  
王艳君  卓少玲  陈盛  杨谦 《微生物学通报》2012,39(12):1734-1745
【目的】利用筛选培养基,从福建沿海潮间带泥样中分离筛选产壳聚糖酶的菌株,并研究菌株的产酶特性。【方法】通过形态学观察,结合26S rDNA序列进行分类鉴定,采用DNS法测定酶活力。【结果】筛选得到产壳聚糖酶的菌株KQ-1002与草酸青霉(Penicillium oxalicum)的同源性为99%,并初步鉴定为青霉属的一种。发酵培养的最适温度为30°C,最适碳源为1.0%水溶性壳聚糖,最适氮源为1.87%(NH4)2SO4,最适pH为6.0。该菌株液体发酵培养72 h产壳聚糖酶活性最高,经优化后最高产酶量为18 U/mL。纯化后的壳聚糖酶经SDS-PAGE分析其分子量约40 kD。酶促反应最适pH为5.0,最适反应温度为55°C,Km值为1.293 g/L。在离子浓度为1.0×10 3mol/L时,金属离子Cu2+、Hg2+、Ag+对酶的活性均有强烈的抑制作用。壳聚糖酶对不同底物及脱乙酰度的壳聚糖具有不同的降解作用。【结论】筛选获得产壳聚糖酶的真菌菌株KQ-1002的壳聚糖酶活力经优化后提高了约7倍,是一株具有研究和应用潜力的产壳聚糖酶菌株。  相似文献   

7.
植物内生真菌是挖掘不同类型壳聚糖酶及发现新酶的资源宝库。该研究从122株柑橘和血散薯内生真菌中筛选能产生壳聚糖酶的菌株,对其进行鉴定,初步研究酶活力影响因素,为后期其酶学性质及产壳聚糖酶内生真菌与宿主植物病害防御互作关系的研究奠定基础。通过透明圈法初筛结合液体发酵法进行复筛,得到2株可产生壳聚糖酶的内生真菌Stdif9和Stdif9-4,并发现Stdif9-4最高酶活力(0.968 U·mL-1)显著高于Stdif9(0.780 U·mL-1)。采用形态学和分子生物学结合的方法将菌株Stdif9-4鉴定为青霉属菌株,即Penicillium sp. Stdif9-4。通过DNS试剂法初步研究影响该菌株产壳聚糖酶活力的因素,发现不同培养时间对菌株壳聚糖酶活力具有显著影响,在培养96 h时,壳聚糖酶活力达到最大值。9种金属离子对菌株的酶活力具有不同影响,其中Mn2+和Ca2+对壳聚糖酶活力具有明显的激活作用; Ag+、Zn2+、Cd2+、Ba2+和Fe3+对壳聚糖酶活力具有不同程度的抑制作用,并且Ag+的抑制作用最为显著; K+和Na+对壳聚糖酶活力无显著影响。不同培养代数菌株产酶活力无显著差异,说明其产酶活力稳定。  相似文献   

8.
【目的】筛选性能良好的产碱性甘露聚糖酶的菌株,对菌株进行多项分类鉴定,分离纯化所产甘露聚糖酶并进行性质研究。【方法】利用碱性魔芋粉培养基分离纯化产甘露聚糖酶的嗜碱菌,通过形态特征观察、生理生化测定、16S rRNA序列分析等实验确定菌株的分类地位。利用硫酸铵沉淀、阴离子交换层析和分子筛层析得到电泳纯的酶,分析了酶的最适温度、最适pH、温度和pH稳定性、NaCl以及金属离子等的耐受性。【结果】从我国内蒙古碱湖样品中分离得到一株产碱性甘露聚糖酶的菌株HMTS15,经过多项分类鉴定显示其是与Bacillus agaradhaerens DSM 8721不同的新菌株。菌株HMTS15所产的甘露聚糖酶反应的最适pH为10.0,最适温度75℃。【结论】多项分类结果鉴定菌株为Bacillus agaradhaerens HMTS15。该菌株产生的碱性甘露聚糖酶与同类其他来源的酶相比具有更好的热稳定性和pH适应性,有进一步的研究价值。  相似文献   

9.
高产壳聚糖酶菌株的筛选及分类鉴定   总被引:2,自引:0,他引:2  
黄益  吕淑霞  马镝  林英  黄艳 《生物学通报》2007,42(11):52-54
目的在于筛选一株高产壳聚糖酶的菌株,通过形态学、生理生化及16SrDNA序列测定,对菌株进行分类鉴定。对长白山天池边的土样进行筛选,获得一株产壳聚糖酶活力较高的菌株,最大酶活力达0.325U/mL。经16SrDNA序列比对,该菌株与Beta proteobacterium的同源性高达99%。结合《伯杰细菌鉴定手册》(第9版),将该菌株鉴定为Beta proteobacterium属的一个种,定名为Betaproteobac-tenure sp.T1。  相似文献   

10.
目的:筛选鉴定一株产耐高温β-甘露聚糖酶的天然菌株。方法:通过形态、生理生化特征及16S rDNA比对,对从水温高于68℃的热泉中分离出的一株产β-甘露聚糖酶细菌进行鉴定。结果:该菌株的最适生长温度为50℃,可在35~80℃条件下生长,确定为一种极端嗜热枯草芽胞杆菌;该菌所产的β-甘露聚糖酶可耐受90℃高温处理。结论:产耐高温β-甘露聚糖酶极端嗜热枯草芽胞杆菌的筛选鉴定,为后续重组耐高温β-甘露聚糖酶的开发奠定了基础。  相似文献   

11.
壳聚糖酶产生菌的筛选及固定化细胞产酶   总被引:6,自引:2,他引:4  
旨在筛选得到一株壳聚糖酶产生菌,并研究固定化细胞产酶的条件。在培养基中以壳聚糖为唯一碳源,对土壤样品进行筛选,获得一株无花果沙雷氏菌(Serratia ficaria CH-0203),该菌可被壳聚糖诱导产生壳聚糖酶。固定化细胞产酶的研究结果表明,多孔玻璃可以有效吸附CH—0203菌细胞。在最适发酵条件下(pH6.5,培养基与载体的总体积48ml,载体与培养基的比例为1.5g/4.0ml,吸附时间是20h-26h),发酵液酶活达到4.5U/ml,比游离细胞发酵提高了16%。采用半连续发酵的方式,固定化的细胞可以稳定发酵产酶120h左右。固定化细胞产酶的效率大大高于游离细胞。  相似文献   

12.
For the enzymatic production of chitosan oligosaccharides from chitosan, a chitosanase-producing bacterium, Bacillus sp. strain KCTC 0377BP, was isolated from soil. The bacterium constitutively produced chitosanase in a culture medium without chitosan as an inducer. The production of chitosanase was increased from 1.2 U/ml in a minimal chitosan medium to 100 U/ml by optimizing the culture conditions. The chitosanase was purified from a culture supernatant by using CM-Toyopearl column chromatography and a Superose 12HR column for fast-performance liquid chromatography and was characterized according to its enzyme properties. The molecular mass of the enzyme was estimated to be 45 kDa by means of sodium dodecyl sulfate-polyacrylamide gel electrophoresis. The enzyme demonstrated bifunctional chitosanase-glucanase activities, although it showed very low glucanase activity, with less than 3% of the chitosanase activity. Activity of the enzyme increased with an increase of the degrees of deacetylation (DDA) of the chitosan substrate. However, the enzyme still retained 72% of its relative activity toward the 39% DDA of chitosan, compared with the activity of the 94% DDA of chitosan. The enzyme produced chitosan oligosaccharides from chitosan, ranging mainly from chitotriose to chitooctaose. By controlling the reaction time and by monitoring the reaction products with gel filtration high-performance liquid chromatography, chitosan oligosaccharides with a desired oligosaccharide content and composition were obtained. In addition, the enzyme was efficiently used for the production of low-molecular-weight chitosan and highly acetylated chitosan oligosaccharides. A gene (csn45) encoding chitosanase was cloned, sequenced, and compared with other functionally related genes. The deduced amino acid sequence of csn45 was dissimilar to those of the classical chitosanase belonging to glycoside hydrolase family 46 but was similar to glucanases classified with glycoside hydrolase family 8.  相似文献   

13.
A species of bacterium with high chitosanase activity was isolated from soil samples in Haiyan City, China, and identified as an Acinetobacter species. This strain, named Acinetobacter sp. strain C-17, produced a chitosanase that was inducible and secreted into the medium. The optimal conditions for enzyme production were cells used to inoculate a medium containing 1% chitosan (pH 7.0) followed by culture at 30 degrees C. The chitosanase activity reached 1.7 U/ml when strain C-17 was incubated in a 250-ml flask under the optimal conditions for 24 h, and reached 2.8 U/ml when cells were incubated in a 3-l fermentor. The optimal pH and temperature for hydrolysis of chitosanase were 7.0 and 36 degrees C, respectively. The chitosanase activity was stable in the pH range of 5-8 and temperature range of 30-40 degrees C. The chitosanase of the strain was extracted by zinc acetate and ammonium sulfate precipitation. The molecular mass was estimated to be 35.4 kDa by SDS-PAGE.  相似文献   

14.
The advantages of the organismStreptomyces griseus HUT 6037 is that the chitinase and chitosanase using chitinaceouse substrate are capable of hydrolyzing both amorphous and crystalline chitin and chitosan. We attempted to investigate the optimization of induction protocol for high-level production and secretion of chitosanase and the influence of chitin and partially deacetylated chitosan sources (75–99% deactylation). The maximum specific activity of chitinase has been found at 5 days cultivation with the 48 hours induction time using colloidal chitin as a carbon source. To investigate characteristic of chitosan activity according to substrate, we used chitosan with various degree of deacetylation as a carbon source and found that this strain accumulates chitosanase in the culture medium using chitosanaceous substrates rather than chitinaceous substrates. The highest chitosanase activity was also presented on 4 days with 99% deacetylated chitosan. The partially 53% deacetylated chitosan can secrete both chitinase and chitosanase which was defined as a soluble chitosan. The specific activities of chitinase and chitosanase were 0.89 at 3 days and 1.33 U/mg protein at 5 days, respectively. It indicate that chitosanase obtained fromS. griseus HUT 6037 can hydrolyze GlcNAc-GlcN and GlcN-GlcN linkages by exo-splitting manner. This activity increased with increasing degree of deacetylation of chitosan. It is the first attempt to investigate the effects of chitosanase on various degrees of deacetylations of chitosan byS. griseus HUT 6037. The highest specific activity of chitosanase was obtained with 99% deacetylated chitosan.  相似文献   

15.
A chitosanase-producing Bacillus sp. DAU101 was isolated from Korean traditional food. This strain was identified on the basis of phylogenetic analysis of the 16S rDNA sequence, gyrA gene, and phenotypic analysis. The gene encoding chitosanase (csn) was cloned and sequenced. The csn gene consisted of an open reading frame of 837 nucleotides and encodes 279 amino acids with a deduced molecular weight of 31,420 Da. The deduced amino acid sequence of the chitosanase from Bacillus sp. DAU101 exhibits 88 and 30 % similarity to those from Bacillus subtilis and Pseudomonas sp., respectively. The chitosanase was purified by glutathione S-transferase fusion purification system. The molecular weight of purified enzyme was about 27 kDa, which suggests the deletion of a signal peptide by sodium dodecyl sulfate–polyacrylamide gel electrophoresis. The pH and temperature optima of the enzyme were 7.5 and 50 °C, respectively. The enzyme activity was increased by about 1.6-fold by the addition of 5 or 10 mM Ca2+. However, Hg2+ and Ni+ ions strongly inhibited the enzyme. The enzyme produced, GlcN2–4, were the major products from a soluble chitosan.  相似文献   

16.
A novel high-throughput method was established for rapid screening of a large numbers of Aspergillus fumigatus (A. fumigatus) mutants with high chitosanase production under acidic culture condition by exploiting the fact that iodine can be used as the indicator to stain chitosan but is ineffective for chitooligosaccharides. The mutant population was generated by irradiating A. fumigatus CICC 2434 with Co60-γ rays. Mutants were cultured on acidic plates containing colloidal chitosan and preliminary screened according to diameter of haloes formed around colonies. Then, chitosanase production of the isolates were verified by dinitrosalicylic acid assay. Lastly, molecular masses on enzymolysis products of isolated mutants were rapidly compared by aniline blue plate assay. Using this method, the mutant strain Co-8 was selected, which had chitosanase activity of 24.87 U/mL (increased by 369.2 % as compared to that of its parental strain).Taking together, the method is easy, efficient and particularly suited to rapid screen acidophilic fungal strains with high chitosanase-production.  相似文献   

17.
The extracellular chitosanase (34,000 M(r)) produced by a novel gram-negative bacterium Matsuebacter chitosanotabidus 3001 was purified. The optimal pH of this chitosanase was 4.0, and the optimal temperature was between 30 and 40 degrees C. The purified chitosanase was most active on 90% deacetylated colloidal chitosan and glycol chitosan, both of which were hydrolyzed in an endosplitting manner, but this did not hydrolyze chitin, cellulose, or their derivatives. Among potential inhibitors, the purified chitosanase was only inhibited by Ag(+). Internal amino acid sequences of the purified chitosanase were obtained. A PCR fragment corresponding to one of these amino acid sequences was then used to screen a genomic library for the entire choA gene encoding chitosanase. Sequencing of the choA gene revealed an open reading frame encoding a 391-amino-acid protein. The N-terminal amino acid sequence had an excretion signal, but the sequence did not show any significant homology to other proteins, including known chitosanases. The 80-amino-acid excretion signal of ChoA fused to green fluorescent protein was functional in Escherichia coli. Taken together, these results suggest that we have identified a novel, previously unreported chitosanase.  相似文献   

18.
球孢白僵菌Beauveria bassiana 1316-V1的培养上清液经硫酸铵分级沉淀,Sephadex G-75凝胶过滤,Chitosan-bead亲和层析,第二次Sephadex G-75凝胶过滤, 得到电泳纯的一种胞外壳聚糖酶,比活力达到45u/mg 。此酶的分子量为36 kD; 最适酶反应温度为60℃;最适pH为4.0;最适离子强度为 0.25mol/L NaCl; 37℃以下,pH 2.0~5.0之间稳定性好; Cu2+、Hg2+、Pb2+、Ni2+ 对该酶有强烈抑制作用;Ag+、Mn2+也有较强抑制作用;Fe2+有轻微激活作用。该壳聚糖酶是一种糖蛋白,含糖约为12.6%。酶的最适底物为脱乙酰度为90%的胶体壳聚糖;也能轻微水解CMC、DEAE-Cellulose和胶体几丁质;但不能水解片状的壳聚糖和几丁质。  相似文献   

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