首页 | 本学科首页   官方微博 | 高级检索  
相似文献
 共查询到20条相似文献,搜索用时 171 毫秒
1.
一株产纤维素酶菌株的分离、鉴定及产酶特性   总被引:2,自引:0,他引:2  
【目的】筛选并鉴定一株产纤维素酶的菌株,初步探究该菌的产酶特性,为综合利用纤维素筛选菌源。【方法】在常温条件下,采用滤纸培养基对菌种富集,采用CMC-Na初筛纤维素降解菌,采用LB培养基分离纯化菌株,经形态学、生理生化特征试验、16S r RNA基因序列测定等分析筛选菌株的系统分类地位。单因素试验确定培养时间、培养温度、初始p H及Na Cl浓度对筛选菌株产酶活力的影响。【结果】从腐烂的玉米秸秆中分离出一株在常温下产纤维素酶细菌KZ-2,根据菌落形态特征、生理生化特征鉴定以及16S r RNA基因序列分析,初步鉴定KZ-2为肠杆菌(Enterobacter sp.),为潜在新种。产酶条件实验显示:该菌使用产酶发酵培养基120 h产酶量达到最大值,在25–35°C、初始p H 4.5–5.5、Na Cl浓度1.0%–2.0%范围内为最佳产酶条件,在最适条件下酶活可达80.93 U/m L。该菌株所产纤维素酶最适反应p H为7.0,最适反应温度为50°C。【结论】KZ-2是一株具有降解纤维素能力的细菌,在常温下即可分泌纤维素酶,并且该菌株为潜在新种,具有潜在的开发价值。  相似文献   

2.
产蛋白酶细菌Bs3210菌株产酶条件的研究   总被引:1,自引:0,他引:1  
在对我国地带性土壤中产蛋白酶细菌生态分布的研究基础上,获得了一株产酶活力达到1945单位/ml的野生菌株。经鉴定为枯草芽孢杆菌(Bacillus subtnis)、对该菌的产酶条件进行了比较系统的研究。结果表明,王米粉和豆饼粉是该菌良好的碳源和氮源。而有机酸和无机盐对产酶有抑制作用。  相似文献   

3.
目的:从青藏高原冰川雪中筛选出一菌多酶的菌株.方法:对恢复出的4个细菌,通过平板透明法研究其产淀粉酶、脂肪酶和蛋白酶的特性.结果:LHG-C-9为惟一可以产淀粉酶的菌株,所产脂肪酶活性最高.4个菌株均不产蛋白酶.结论:LHG-C-9最适生长温度为15℃,属于耐冷菌.对该菌所产淀粉酶和脂肪酶的性质进行了初步研究,其随产淀粉酶的最适作用温度为50℃;最佳产酶pH值为7.0,该pH值所产酶活为83.9U/mL;在60℃的高温下温浴10min后酶活为0%.该菌株所产脂肪酶的最适作用温度为20℃;最佳产酶pH值为7.0,该pH值所产酶活为9.2U/mL;50℃温浴1h后酶活力不足34%.  相似文献   

4.
木霉LaTr 01菌株产漆酶发酵的条件   总被引:1,自引:1,他引:0  
从华南地区采集土样,采用愈创木酚平板筛选产漆酶菌株,获得了一株短周期产漆酶的小型丝状真菌。通过观察菌落特征、生长情况以及显微镜下菌丝和孢子的形态,初步鉴定该菌株为木霉属的一个种(Trichodermaspp、),命名为木霉LaTr01菌株。通过单因素方法研究该菌产漆酶的发酵条件,结果表明:LaTr01的产酶培养基以麦芽糖为最佳碳源;以酵母提取物为最适氮源;培养24h后加入Cu“比培养开始加入Cu ^2+LaTr01产酶活高出约1倍。采用麦芽糖、酵母提取物、Cu^2+浓度L9(3^3)的正交试验优化漆酶发酵条件,结果表明,氮源是影响该菌产漆酶的最重要因素,碳源次之,Cu^+浓度影响较小;LaTr01菌株产生漆酶的最佳条件为:5g/L酵母提取物、20g/L麦芽糖、1.5mmol/LCu^2+,Cu^2+加入时间为培养24h后。在优化的培养条件下,该菌酶活可达480.556U/L。  相似文献   

5.
通过比较常规灭菌发酵和生料发酵, 研究黑曲霉B0201利用五倍子固体发酵产单宁酶的条件。结果表明, 在生料发酵过程中, 采用20%五倍子并且以(NH4)2SO4为氮源制备单宁酶的最佳条件为: 液固比=1.6:1、温度30°C、初始pH 6.0。在该条件下通过96 h的培养, 单宁酶的活力可达51.2 U/gds, 是常规灭菌发酵的3.6倍。以上结果显示, 生料发酵生产单宁酶是一种高效可行的方法。  相似文献   

6.
粘质沙雷氏菌产几丁质酶发酵条件的研究   总被引:2,自引:0,他引:2  
目的:通过对粘质沙雷氏菌发酵条件的优化,提高其产几丁质酶的能力。方法:以实验室保存菌种粘质沙雷氏菌S418为对象,通过单因素试验和三因素三水平正交试验筛选出了菌株S418产几丁质酶的最佳培养基配方及培养条件。结果:该菌种产酶的最佳发酵条件:0.2%(w/v)胶体几丁质,1%蛋白胨,0.05%KH2PO4,在28℃、pH7.0、接种量6%,培养72h,酶活达到5.49U/mL。结论:优化后菌株S418产几丁质酶的条件。  相似文献   

7.
[目的]为了优化Lj1菌株的培养条件使之产生高活性的胞外褐藻胶裂解酶.[方法]通过富集培养技术从海带筛选到一株褐藻胶裂解酶产生菌Lj1,依据表型特征、脂肪酸组成分析及16S rRNA基因序列分析对该菌株进行鉴定.通过单因子和正交试验对Lj1菌株产胞外褐藻胶裂解酶的培养条件进行了优化.[结果]Lj1菌株属于假交替单胞菌属(Pseudoalteromonas).该菌株产酶的最佳培养基组成为:褐藻胶3g/L、(NH4)2SO43 g/L、NaCl 20 g/L、KH2PO4 0.1 g/L、CaCl2 0.1 g/L;最佳培养条件为:250 mL三角烧瓶中装液量25 mL、接种量3%、摇瓶转速150 r/min、pH7.5、培养温度为28℃、培养时间为24 h.LJl菌株所产褐藻胶裂解酶的最适温度为40℃,最适pH7.6,最适NaCl浓度为0.3 mol/L.1 mol/1.金属离子Mg2+对酶活力有明显的促进作用,而C02+和Zn2+对酶活力有较强的抑制作用.[结论]LJ1菌株是Pseudoalteromonas新的胞外褐藻胶裂解酶产生菌,在最佳培养条件下,该菌株的酶活力提高了66%.  相似文献   

8.
产海因酶的菌种筛选和产酶条件的研究   总被引:1,自引:0,他引:1  
利用5-苄海因作为唯一氮源法筛选高产海因酶的菌种,从本实验室保存的221株菌种中筛选出12株具有不对称水解5-苄海因生成N-氨甲酰基-苯丙氨酸的菌株,其中假单胞菌(Pseudomonassp.)X4-49具有较高的产酶活力,对此菌的产酶条件的研究表明,产酶的最佳碳源为甘油,最佳氮源为蛋白胨,最佳诱导物为苄海因,尿嘧啶,苄海因作为诱导物的有效浓度为0.2%,产酶的最适培养基的初始pH为7.0。培养条件为33℃,13h。  相似文献   

9.
褐藻胶降解菌的筛选、鉴定及产酶条件优化   总被引:1,自引:0,他引:1  
【目的】筛选一株能降解褐藻胶的菌株,并优化产酶条件以提高褐藻胶裂解酶活力。【方法】从漳州海域采集到海水和海泥,以海藻酸钠为唯一碳源,通过富集培养、初筛、复筛筛选到一株能够降解褐藻胶的菌株。依据16S rRNA序列分析、生理生化特征、菌体形态及菌落特征对该菌进行鉴定。通过单因素和正交试验对该菌的产酶条件进行优化。【结果】该菌属于海科贝特氏菌,命名为Cobetiamarina HQZ08。该菌株最佳的产酶培养基组成为:海藻酸钠7.00g/L、蛋白胨3.00g/L、NaCl30.00g/L,K2HPO4·3H2O 1.25 g/L。最佳发酵条件为:接种量2%,接种龄12 h,培养基起始pH为7.0,培养温度25°C,培养时间24 h。优化后褐藻胶裂解酶活力达到68.5 U/mL,TLC法分析酶解产物为褐藻胶寡糖。【结论】HQZ08菌株可以用于降解褐藻胶,产生聚合度为2–6的褐藻胶寡糖。  相似文献   

10.
链霉菌RX-17产溶细菌酶的研究   总被引:5,自引:0,他引:5  
通过下磁针试验,确定了链霉菌(Streptomyces sp.)RX-17产溶细菌酶的最佳碳氮源比例即蔗糖3%,大豆蛋白胨1.25%。牛肉膏0.25%,最适培养条件的研究表明,通气量对该菌产酶十分关键,对酶的基本性质进行了研究,酶作用的最适温度和最适pH分别是60℃和6.0,在碱性范围内酶的稳定性较好,60℃1h残存酶活36.3%,溶菌活性对离子强度的变化高度敏感,溶菌谱测定显示,该酶对卵清溶菌酶不能作用的变链球菌(Streptococcus mutans),金黄色葡萄球菌(Staphylococcus aureus)有很强的溶解活性。  相似文献   

11.
《Fungal biology》2022,126(8):471-479
The enzyme tannase is of great industrial and biotechnological importance for the hydrolysis of vegetable tannins, reducing their undesirable effects and generating products for a wide range of processes. Thus, the search for new microorganisms that permit more stable tannase production is of considerable importance. A strain of P. mangiferae isolated from cocoa leaves was selected and investigated for its capacity to produce tannase enzymes and gallic acid through submerged fermentation. The assessment of the variables affecting tannase production by P. mangiferae showed that tannic acid, ammonium nitrate and temperature were the most significant (8.4 U/mL). The variables were analyzed using Response Surface Methodology - RSM (Box-Behnken design), with the best conditions for tannase production being: 1.9% carbon source, 1% nitrogen source and temperature of 23 °C. Tannase activity doubled (16.9 U/mL) after the optimization process when compared to the initial fermentation. A pH of 7.0 was optimal for the tannase and it presented stability above 80% with pH between 4.0 and 7.0 after 2h of incubation. The optimal temperature was 30 °C and activity remained at above 80% at 40–60 °C after 1 h. Production of gallic acid was achieved with 1% tannic acid (0.9 mg/mL) and P. mangiferae had not used up the gallic acid produced by tannic acid hydrolysis after 144 h of fermentation. A 5% tannic acid concentration was the best for gallic acid production (1.6 mg/mL). These results demonstrate P. mangiferae’s potential for tannase and gallic acid production for biotechnological applications.  相似文献   

12.
A novel fungal strain, Aspergillus ficuum Gim 3.6, was evaluated for its tannase-producing capability in a wheat bran-based solid-state fermentation. Thin-layer chromatography (TLC) analysis revealed that the strain was able to degrade tannic acid to gallic acid and pyrogallol during the fermentation process. Quantitation of enzyme activity demonstrated that this strain was capable of producing a relatively high yield of extracellular tannase. Single-factor optimization of process parameters resulted in high yield of tannase after 60 hr of incubation at a pH of 5.0 at 30°C, 1 mL of inoculum size, and 1:1 solid–liquid ratio in the presence of 2.0% (w/v) tannic acid as inducer. The potential of aqueous two-phase extraction (ATPE) for the purification of tannase was investigated. Influence of various parameters such as phase-forming salt, molecular weight of polyethylene glycol (PEG), pH, and stability ratio on tannase partition and purification was studied. In all the systems, the target enzyme was observed to preferentially partition to the PEG-rich top phase, and the best result of purification (2.74-fold) with an enzyme activity recovery of 77.17% was obtained in the system containing 17% (w/w) sodium citrate and 18.18% (w/w) PEG1000, at pH 7.0.  相似文献   

13.
The tannase producing strain Aspergillus heteromorphus MTCC 8818 was used in the present study for the production of tannase under solid state fermentation using Rosewood (Dalbergia sissoo) sawdust—a timber industry waste—as substrate. Various physico-chemical parameters were optimized for extracellular yield of tannase. Maximum tannase (1.84 U/g dry substrate) and gallic acid (5.4 mg/g ds) was observed at 30 °C after 96 h of incubation. Czapek dox medium was found to be the best moistening agent, with pH and relative humidity of 5.5 and 70 %, respectively. The constituents of Czapek dox medium were varied to enhance enzyme production. The optimum concentration of modified Czapek dox constituents contained 0.2 % NaNO3, 0.05 % K2HPO4 and MgSO4, 0.15 % KCl. Among the additional salts supplemented to Czapek dox medium, ZnSO4 and CuSO4 were found to have a stimulating effect, with a relative tannase activity of 116 and 111 %, respectively. Glucose as an external carbon source was found to be a repressor of enzyme production.  相似文献   

14.
A tannase yielding bacterial strain was isolated from soil sample collected from the area situated nearby small-scale tannery. It was identified as Pseudomonas aeruginosa IIIB 8914. The bacterial strain produced extra-cellular tannase under sub-merged fermentation (Smf) using amla (Phyllanthus emblica), keekar (Acacia nilotica), jamoa (Eugenia cuspidate) and jamun (Syzygium cumini) leaves. Among different substrates, amla and keekar leaves resulted in maximal extra-cellular production of tannase. Various process parameters were studied to optimize the extra-cellular yield of tannase under Smf. Maximum yield of tannase i.e., 13.65 and 12.90 U/ml was obtained when Smf was carried out using amla and keekar leaves (2% w/v) respectively in minimal media supplemented with MgSO4·7H2O (amla)/HgCl2 (keekar), NH4NO3 and 0.2% Tween 80; inoculated with 2% cell suspension, and incubated at 37°C for 24 h. The bacterial strain produced about 2 times (13.65 U/ml) higher yield of tannase than the highest reported yield of tannase (6 U/ml). Our finding suggests that agro residues in the form of amla and keekar leaves can be one of the best and cost effective alternatives to the costly pure tannic acid for industrial production of microbial tannase.  相似文献   

15.
Tannase producing fungal strains were isolated from different locations including garbages, forests and orchards, etc. The strain giving maximum enzyme yield was identified to be Aspergillus ruber. Enzyme production was studied under solid state fermentation using different tannin rich substrates like ber leaves (Zyzyphus mauritiana), jamun leaves (Syzygium cumini), amla leaves (Phyllanthus emblica) and jawar leaves (Sorghum vulgaris). Jamun leaves were found to be the best substrate for enzyme production under solid-state fermentation (SSF). In SSF with jamun leaves, the maximum production of tannase was found to be at 30 °C after 96 h of incubation. Tap water was found to be the best moistening agent, with pH 5.5 in ratio of 1:2 (w/v) with substrate. Addition of carbon and nitrogen sources to the medium did not increase tannase production. Under optimum conditions as standardized here, the enzyme production was 69 U/g dry substrate. This is the first report on production of tannase by A. ruber, giving higher yield under SSF with agro-waste as the substrate.  相似文献   

16.
Tannase production by Paecilomyces variotii   总被引:2,自引:0,他引:2  
Surface response methodology was applied to the optimization of the laboratory scale production of tannase using a lineage of Paecilomyces variotii. A preliminary study was conducted to evaluate the effects of variables, including temperature ( degrees C), residue (%) (coffee husk:wheat bran), tannic acid (%) and salt solutions (%) on the production of tannase during 3, 5 and 7 days of fermentation. Among these variables, temperature, residues and tannic acid had significant effects on tannase production. The variables were optimized using surface response methodology. The best conditions for tannase production were: temperature (29-34 degrees C); tannic acid (8.5-14%); % residue (coffee husk:wheat bran 50:50) and incubation time of 5 days. The supplementation of external nitrogen and carbon sources at 0.4%, 0.8% and 1.2% concentration on tannase production were studied in the optimized medium. Three different nitrogen sources included yeast extract, ammonia nitrate and sodium nitrate along with carbon source (starch) were studied. Only ammonia nitrate showed a significant effect on tannase production. After the optimization process, the tannase activity increased 8.6-fold.  相似文献   

17.
Tannase production by Enterobacter cloacae strain 41 was investigated under submerged fermentation which was optimized at various circumstances such as pH, temperature, substrate, and agitation, carbon, and nitrogen sources. Tannase was purified by a two-step approach comprising of ion exchange and size exclusion chromatography, respectively. The maximum tannase production was achieved at 1.0% tannic acid concentration, incubation temperature of 50 °C, and initial pH 6.0. The molecular weight of purified tannase was 45 kDa on 10% SDS-PAGE, and it was confirmed by matrix-assisted laser desorption ionization-time of flight (MALDI-TOF) mass spectrometry (MS). The enzymatic products of purified tannase were characterized by HPLC, TLC and FT-IR spectroscopy which showed the functional groups such as OH, CO, and CC. The purified tannase retained the activity up to 90% under the condition at 50 °C and pH 6.0 after 1 h incubation. Enzyme kinetics and inhibition studies were also investigated. Cytotoxicity studies showed that the tannase has no cytotoxic effects on Vero cell line. The results indicated the E. cloacae strain 41 would give a potential source for the efficient production of tannase and can be used in tannery effluent degradation, food, and pharmaceutical industrial applications.  相似文献   

18.
黑曲霉单宁酶高活性菌株的诱变选育*   总被引:15,自引:0,他引:15  
郭鲁宏  杨顺楷   《微生物学通报》2000,27(2):105-108
以黑曲霉(Aspergillus nhiger)No.13为出发菌株,经紫外线诱变处理,获得一株制备原生质体的起始菌,该菌株单宁酶活性比No.13提高55%,并对其制备原生质体的条件进行了研究,在优化方案基础上,紫外诱变原生质体,诱变株经筛选,最后得到一株具有稳定遗传性的单宁酶高活性菌株,在摇瓶培养基中进行生物转化实验,连续传代10次,结果显示发酵液中没食子酸浓度始 维持在22.8-23.9mg/  相似文献   

19.
Tannin acyl hydrolase, also known as tannase, is an enzyme with important applications in the food, feed, pharmaceutical, and chemical industries. However, despite a growing interest in the catalytic properties of tannase, its practical use is very limited owing to high production costs. Several studies have already demonstrated the advantages of solid-state fermentation (SSF) for the production of fungal tannase, yet the optimal conditions for enzyme production strongly depend on the microbial strain utilized. Therefore, the aim of this study was to improve the tannase production by a locally isolated A. niger strain in an SSF system. The SSF was carried out in packed-bed bioreactors using polyurethane foam as an inert support impregnated with defined culture media. The process parameters influencing the enzyme production were identified using a Plackett–Burman design, where the substrate concentration, initial pH, and incubation temperature were determined as the most significant. These parameters were then further optimized using a Box-Behnken design. The maximum tannase production was obtained with a high tannic acid concentration (50 g/l), relatively low incubation temperature (30°C), and unique low initial pH (4.0). The statistical strategy aided in increasing the enzyme activity nearly 1.97-fold, from 4,030 to 7,955 U/l. Consequently, these findings can lead to the development of a fermentation system that is able to produce large amounts of tannase in economical, compact, and scalable reactors.  相似文献   

20.
Spores from the co-culture of Aspergillus foetidus and Rhizopus oryzae were subjected to UV, heat and NTG (3-nitro,5-methylguanidine) mutagenesis. A few colonies were screened from the selected media for tannase study. Amongst all, the best mutant isolated from the heat treatment (60 degrees C for 60 min) was SCPR 337. The maximum yield of gallic acid and tannase in case of mutant strain was 95.2% and 53.6 U/ml with an incubation period of 30 h as compared to wild strain where the incubation period was 48 h with an enzyme activity of 44.2 U/ml and gallic acid yield of 94%, respectively. The mutant was sensitive to tetracycline and was also an over-producer of protease and amylase.  相似文献   

设为首页 | 免责声明 | 关于勤云 | 加入收藏

Copyright©北京勤云科技发展有限公司  京ICP备09084417号