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1.
为了进一步提高极细链格孢菌产蛋白激发子的产量,通过单因子和多因子试验与分析,筛选优化了适于极细链格孢菌产生蛋白激发子的培养基和培养条件,并检测了发酵过程中pH、还原糖、氨基氮和菌丝量变化以及与蛋白激发子产量的关系。结果表明,土豆淀粉和黄豆粉对蛋白激发子产量影响最大,其次是蛋白胨和无机盐。优化的发酵培养基主要成分(g/L):碳源I 15、葡萄糖5、玉米淀粉5、土豆淀粉20、谷氨酸10、氮源I5、黄豆粉10、硫酸铵5。确定了优化的培养条件,调整培养基起始pH为7.0~7.5,将18h菌龄的种子培养液按10%接种量接种到装液量为75mL的500mL摇瓶中,在温度(28±1)℃、摇床转速180r/min下培养可获得理想的蛋白产量。在优化的培养基和培养条件下,发酵12~48h该菌进入对数生长期,48h进入稳定生长期,60h菌丝扣蛋白激发子产量达最高。蛋白产量与菌体生物量呈正相关,当还原糖、总糖量消耗到最低水平时,菌丝产量和蛋白激发子产量达最高。优化的培养基菌丝干重收率迭3.9g/100mL,蛋白激发子产量达到5.17g/L,比普通的土豆液体培养基提高近4倍。  相似文献   

2.
利用重组大肠杆菌生产α-环糊精葡萄糖基转移酶   总被引:2,自引:0,他引:2  
将来源于软化类芽孢杆菌(Paenibacillus macerans)的α-环糊精葡萄糖基转移酶(α-CGT)基因插入含pelB信号肽的质粒pET-20b(+)中,构建了表达载体pET-20b(+)/cgt,并将其转化表达宿主E.coli BL21(DE3)。对重组菌E.coli BL21/pET-cgt进行摇瓶发酵条件的优化,确定了其胞外表达α-CGT酶的最适条件:葡萄糖8g/L,乳糖0.5g/L,蛋白胨12g/L,酵母膏24g/L,K2HPO472mmol/L,KH2PO417mmol/L,CaCl2 2.5mmol/L;初始pH为7.0,诱导温度为25℃。在该条件下培养90h后最终α-CGT酶的胞外比活达到22.1u/mL,与来源菌Pmacerans所产天然酶比活相比提高了42倍,实现了α-CGT酶的高效生产。将基因工程菌在上述条件下于3L发酵罐中发酵,90h后胞外酶比活达到22.6U/mL,证实了工业化放大的可能性。  相似文献   

3.
甲醇营养型毕赤酵母表达外源蛋白是在醇氧化酶(alcohol oxidase,AOX)启动子(PAOXI)严格调控下进行的,然而这种启动子在转录水平受到葡萄糖的阻遏。本文研究了毕赤酵母在葡萄糖替代甘油为生长相碳源时表达重组植酸酶蛋白的发酵特征。结果表明:初始葡萄糖浓度为20dL的细胞得率高,为0.39g[DCW]/g。通过基于实时参数(溶氧和呼吸商)调控的葡萄糖补料策略,生长相40h后细胞密度达到100g[DCW]/L,甲醇诱导100h后植酸酶产量达到2200FTUphytase/mL,甲醇得率系数为0.25FTU phytase/gmethnol。因此,在毕赤酵母高表达重组蛋白培养中葡萄糖能够用作生长相基质,并能实现重组蛋白的高效表达。  相似文献   

4.
为改善乳酸乳球菌的生长性能,以轮枝链霉菌染色体DNA为模板,扩增得到编码谷氨酰胺转胺酶成熟酶的基因mtg,将其克隆到质粒pNZ8148中,电转化乳酸乳球菌NZ9000,获得乳酸乳球菌NZ9000(pFL001)(重组菌)。在不控制pH条件下,重组菌的胞外pH显著高于对照菌NZ9000(pNZ8148);前者的最高生物量可达4.13gL,而后者只有0.34gL。在控制pH为6.5±0.1的条件下,重组菌最高生物量为4.73gL,对葡萄糖的菌体最高平均得率为71.1gmol,而相同条件下对照菌最高生物量为2.6gL,对葡萄糖的菌体最高平均得率为27.3gmol。由此表明,重组菌与对照菌相比,好氧生长性能得到显著改善。可能的原因是mtg的活性表达升高了重组菌的胞内pH,原先用于泵出胞内H 所需的部分能量可能因此得到节省,这样相应增加了用于细胞生长的能量。  相似文献   

5.
为提高重组毕赤酵母生产人血清白蛋白-C肽融合蛋白(HSA—CP)的产量和生产强度,在摇瓶条件下考察了甲醇诱导时间和浓度对目的蛋白产量的影响。结果表明,质量浓度10g/L的甲醇诱导72h最适于产物表达。通过对7L发酵罐中各因素的优化,得到最佳条件为:初始甘油质量浓度10g/L,30℃培养,菌体生长期和诱导期的pH及溶氧分别控制在pH5.0、30%溶解O2或pH6.0、15%的溶解O2。10g/L的甲醇诱导72h,最终使干细胞质量浓度达到56.43g/L,目的蛋白产量达368.45mg/L。生产强度为3.920mg/(L·h),目标蛋白的比生产速率为5.12mg/(L·h)。  相似文献   

6.
研究了优化重组大肠杆菌产5-氨基乙酰丙酸(ALA)的条件,提高大肠杆菌发酵生产AL气的产量。在测定重组大肠杆菌GT48的生长曲线的基础上,确定诱导时间,优化摇瓶发酵条件。然后,进一步在5L发酵罐上进行间歇和流加发酵研究。摇瓶实验表明,细胞培养最佳初始pH为6.5,最佳诱导时间为稳定期前期,最佳接种量为2%,过高的葡萄糖浓度对细胞生长和产物合成均有一定的抑制作用。在5L发酵罐间歇发酵中,重组菌产ALA能力达到47.8mg/L。采用流加发酵可以进一步将产物产量提高到63.8mg/L。构建的过量表达自身的hemA基因的大肠杆菌具有较高的产ALA能力,通过发酵条件优化和采用流加发酵可以提高AL气产量。  相似文献   

7.
研究了亚硝基胍(NTG)的诱变剂量、处理时间以及氯化钠浓度对野生型荧光假单胞菌M18存活率的影响,NTG的诱变剂量25~200mg/L,处理时间10~30min范围内,随着诱变剂剂量增加和时间的延长,M18的存活率不断下降。NTG的作用剂量25mg/L,处理时间10min时,细菌存活率为55%左右。利用细菌存活率为55%时的诱变条件,经生物测定,初筛获得20株抑菌效果明显的诱变株。经摇瓶发酵复筛,从这20株诱变株中,获得PCA高产诱变株M18N07。并对此菌株发酵条件进行调整,较理想的培养条件为:蛋白胨18g/L,葡萄糖16g/L,氯化钠1g/L,硝酸钾10g/L。小瓶培养时间17h,大瓶5%接种量,28℃培养54h。  相似文献   

8.
将RDR(ribonucleotide diphosphate reductase)启动子驱动下的透明颤菌(Vitreoscillasp.)血红蛋白(Vitreoscilla hernoglobin,VHb)基因的表达载体pSETRDR-VHb转入铜绿假单胞(Pseudamanas aeruginosa)s301菌株中。并对其中阳性转化子AY26菌株进行了鼠李糖脂表达条件的研究。正交实验k(4。)优化培养基,最佳组分为:硫酸镁0.075%、硝酸钠0.5%、清油3mUL、酒石酸钠0.4%。在限碳培养条件下,转化子SY26鼠李糖脂产量达到12.9dL,比对照菌株S301(8.4g/L)提高150%,5L发酵罐放大实验验证,重组菌AY26的表面活性剂产量达到33.12g/L。  相似文献   

9.
目的:探讨12株重组酵母菌生物合成麻黄碱的特性及L-Phe对麻黄碱生物合成的影响。方法:以葡萄糖为碳源、NaNO3为氮源对重组酵母菌进行培养,在相同条件下,在液体培养基中添加5mg/L的L-Phe,利用反向高压液相色谱(RP-HPLC)测定重组酵母菌培养液中麻黄碱和伪麻黄碱的含量。结果:重组酵母菌培养液中麻黄碱和伪麻黄碱的最高产量分别为18.85mg/L和4.11mg/L;L-Phe对各重组菌株生物合成麻黄碱的调控作用各不相同。结论:通过L-Phe对重组酵母菌生物合成麻黄碱和伪麻黄碱调控作用的探讨,将为研究重组菌株的遗传多样性提供依据。  相似文献   

10.
5-氨基乙酰丙酸(5-aminolevulinate,ALA)由5-氨基乙酰丙酸合酶(5-aminolevulinate synthase,ALAS)催化产生。利用重组细菌在大肠杆菌合成ALA已有不少研究。重组真核生物ALAS在大肠杆菌合成ALA的研究没有报道。酿酒酵母ALAS在大肠杆菌重组表达,在摇瓶培养条件下,分析了胞外ALA的产量,重组菌的生长状况和细胞中ALAS的活性,利用两种国产树脂纯化ALA,毛细管电泳分析确定ALA纯度在LB培养基中,初始pH 6.5,含有20mmol/L的酮戊酸、20mmol/L琥珀酸和20mmol/L的甘氨酸,37℃下诱导培养12h,胞外ALA的产量为162mg /L培养基。纯化的ALA纯度达到90%。  相似文献   

11.
Nucleotide sequence analysis of the lactococcal EPS plasmid pNZ4000   总被引:7,自引:0,他引:7  
The complete 42180-bp nucleotide sequence of the mobilization plasmid pNZ4000, coding for exopolysaccharide (EPS) production in Lactococcus lactis, was determined. This plasmid contains a region involved in EPS biosynthesis, four functional replicons, a region containing mobilization genes, and three origin of transfer (oriT) sequences. Sequences identical to these oriT sequences were also found on two other lactococcal plasmids and a plasmid from Lactobacillus helveticus. Several complete and partial IS elements were identified on pNZ4000, including iso-ISS1, iso-IS946, and iso-IS982 sequences. Furthermore, pNZ4000 contains a gene cluster that may encode a cobalt transport system and a gene that encodes a CorA homologue which may function as a magnesium transporter.  相似文献   

12.
AIMS: To determine the role of the EpsA, EpsB, and EpsC proteins encoded at the 5'-end of the exopolysaccharide (EPS) gene cluster in regulation of EPS production in Lactococcus lactis. METHODS AND RESULTS: Deletion and paralog-replacement mutants of epsABCD were used to determine the function of EpsA, EpsB and EpsC in EPS production and polymer chain length determination in L. lactis. EpsA and EpsB appeared to be essential for EPS biosynthesis in L. lactis, while deletion of the phosphatase (EpsC) only had a minor effect on the EPS production level. Determination of the phosphorylation state of EpsB and analysis of a C-terminally truncated EpsB variant indicate that EPS biosynthesis in L. lactis is driven by a nonphosphorylated form of EpsB. CONCLUSIONS: The data presented here show that in L. lactis, EPS production is under control of a phosphoregulatory system and that EPS biosynthesis correlates with an unphosphorylated EpsB. SIGNIFICANCE AND IMPACT OF THE STUDY: This study provides molecular understanding of polysaccharide production in L. lactis that could eventually enable novel approaches to control EPS production by lactic acid bacteria during industrial fermentation processes.  相似文献   

13.
Summary The optimal temperature, pH and incubation time for production of exopolysaccharide (EPS) by Lactobacillus delbruckii subsp. bulgaricus and Streptococcus thermophilus strains in MRS and M17 media, respectively, were determined. In all strains, the temperature and incubation time for EPS production were 45 °C and 18 h, respectively. At 45 °C, L. delbruckiisubsp. bulgaricus B3 and G12 and S. thermophilus W22 strains produced 263, 238 and 127 mg/l, respectively. At 18 h, B3, G12 and W22 strains produced 220, 152 and 120 mg/l, respectively. While the pH for highest EPS production by L. delbruckii subsp. bulgaricus strains was 6.2 (in B3 strain: 211 mg/l, in G12 strain: 175 mg/l), for highest EPS production byS. thermophilus strain it was 6.8 (114 mg/l).  相似文献   

14.
为研究谷胱甘肽(GSH)在乳酸乳球菌NZ9000抗氧胁迫中的生理作用,以能够生物合成GSH的重组菌NZ9000(pNZ3203)为实验菌株进行了研究。结果表明,在较高H2O2胁迫剂量(150mmol/L H2O2,15min)下,前培养3h、5h和7h(即乳酸链球菌素诱导1h、3h和5h)时的重组菌细胞的存活率分别是处于相应生长时期对照菌NZ9000(pNZ8148)的1.8±0.1倍、2.6±0.1倍和2.9±0.3倍。表明GSH可以提高宿主菌NZ9000对H2O2所引发氧胁迫的抗性。GSH还可以提高宿主菌NZ9000对其它化学物质(如超氧阴离子自由基生成剂———甲萘醌)所引发氧胁迫的抗性。这表现在经20mmol/L甲萘醌处理60min后,前培养5h(即乳酸链球菌素诱导3h)时重组菌细胞的存活率是对照菌的6.2±0.1倍。由此表明,通过代谢工程手段在菌株NZ9000中引入GSH合成能力,可以提高宿主菌对氧胁迫的抗性。  相似文献   

15.
A novel exopolysaccharide (EPS) produced by Lactobacillus sake 0-1 (CBS 532.92) has been isolated and characterized. When the strain was grown on glucose, the produced EPS contained glucose and rhamnose in a molar ratio of 3:2 and the average molecular mass distribution (M(infm)) was determined at 6 x 10(sup6) Da. At a concentration of 1%, the 0-1 EPS had better viscosifying properties than xanthan gum when measured over a range of shear rates from 0 to 300 s(sup-1), while shear-thinning properties were comparable. Rheological data and anion-exchange chromatography suggested the presence of a negatively charged group in the EPS. Physiological parameters for optimal production of EPS were determined in batch fermentation experiments. Maximum EPS production was 1.40 g (middot) liter(sup-1), which was obtained when L. sake 0-1 had been grown anaerobically at 20(deg)C and pH 5.8. When cultured at lower temperatures, the EPS production per gram of biomass increased from 600 mg at 20(deg)C to 700 mg at 10(deg)C but the growth rate in the exponential phase decreased from 0.16 to 0.03 g (middot) liter(sup-1) (middot) h(sup-1). EPS production started in the early growth phase and stopped when the culture reached the stationary phase. Growing the 0-1 strain on different energy sources such as glucose, galactose, mannose, fructose, lactose, and sucrose did not alter the composition of the EPS produced.  相似文献   

16.
Hiracin JM79 (HirJM79), a Sec-dependent bacteriocin produced by Enterococcus hirae DCH5, was cloned and produced in Lactococcus lactis, Lactobacillus sakei, Enterococcus faecium, Enterococcus faecalis, and Pichia pastoris. For heterologous production of HirJM79 in lactic acid bacteria (LAB), the HirJM79 structural gene (hirJM79), with or without the HirJM79 immunity gene (hiriJM79), was cloned into the plasmid pMG36c under the control of the constitutive promoter P(32) and into the plasmid pNZ8048 under the control of the inducible P(NisA) promoter. For the production of HirJM79 in P. pastoris, the gene encoding the mature HirJM79 protein was cloned into the pPICZalphaA expression vector. The recombinant plasmids permitted the production of biologically active HirJM79 in the supernatants of L. lactis IL1403, L. lactis NZ9000, L. sakei Lb790, E. faecalis JH2-2, and P. pastoris X-33, the coproduction of HirJM79 and nisin A in L. lactis DPC5598, and the coproduction of HirJM79 and enterocin P in E. faecium L50/14-2. All recombinant LAB produced larger quantities of HirJM79 than E. hirae DCH5, although the antimicrobial activities of most transformants were lower than that predicted from their production of HirJM79. The synthesis, processing, and secretion of HirJM79 proceed efficiently in recombinant LAB strains and P. pastoris.  相似文献   

17.
The effects of initial glucose concentration and calcium lactate concentration on the lactic acid production by the parent strain, Lactobacillus lactis BME5-18, were studied. The results of the experiments indicated that glucose and lactate repressed the cell growth and the lactic acid production by Lactobacillus lactis BME5-18. A L(+)-lactic acid overproducing strain, Lactobacillus lactis BME5-18M, was screened by mutagenizing the parent strain with ultraviolet (UV) light irradiation and selecting the high glucose and lactate calcium concentration repression resistant mutant. Starting with a concentration of 100g L(-1) glucose, the mutant produced 98.6 g L(-1) lactic acid after 60 h in flasks, 73.9% higher than that of the parent strain. The L(+)-lactic acid purity was 98.1% by weight based on the amount of total lactic acid. The culture of the parent strain could not be analyzed well by conventional metabolic flux analysis techniques, since some pyruvate were accumulated intracellularly. Therefore, a revised flux analysis method was proposed by introducing intracellular pyruvate pool. Further studies demonstrate that there is a high level of NADH oxidase activity (12.11 mmol mg(-1) min(-1)) in the parent strain. The molecular mechanisms of the strain improvement were proposed, i.e., the high level of NADH oxidase activity was eliminated and the uptake rate of glucose was increased from 82.1 C-mmol (g DW h)(-1) to 98.9 C-mmol (g DW h)(-1) by mutagenizing the parent strain with UV, and therefore the mutant strain converts mostly pyruvate to lactic acid with a higher productivity (1.76 g L(-1) h(-1)) than the parent strain (0.95 g L(-1) h(-1)).  相似文献   

18.
【目的】实现鼠灰链霉菌来源经密码子优化后的腺苷酸脱氨酶基因在乳酸克鲁维酵母(Kluyveromyces lactis GG799)中组成型表达。【方法】以鼠灰链霉菌(Streptomyces murinus)来源的腺苷酸脱氨酶(AMP)基因经密码子优化后作为模板,设计特异性引物,PCR扩增AMP脱氨酶基因opt-AMPD,以p KLAC1为载体构建重组表达质粒p KLAC1-opt-AMPD,经Sac II线性化后电转化法转入K.lactis GG799,筛选得到重组菌株,测定酶活,经His TrapTM HP纯化后得到AMP脱氨酶,并优化重组菌的发酵培养基。【结果】对AMP脱氨酶基因进行了密码子优化后,构建了重组K.lactis GG799/p KLAC1-opt-AMPD,实现组成型表达,密码子优化后AMP脱氨酶酶活提高到586±50 U/m L。SDS-PAGE结果显示,纯化后的AMP脱氨酶为单一条带,蛋白大小约为60 k D。优化的发酵培养基为(g/L):葡萄糖40、蛋白胨20、酵母粉15、Na Cl 8、KCl 10、Mg SO4 2,30°C、200 r/min发酵120 h,酶活达到2 100±60 U/m L。【结论】实现了密码子优化后的腺苷酸脱氨酶基因在乳酸克鲁维酵母GG799内的组成型表达,为实现腺苷酸脱氨酶的重组高效表达和发酵生产进行了有益探索。  相似文献   

19.
We studied the UDP-glucose pyrophosphorylase (galU) and UDP-galactose epimerase (galE) genes of Lactococcus lactis MG1363 to investigate their involvement in biosynthesis of UDP-glucose and UDP-galactose, which are precursors of glucose- and galactose-containing exopolysaccharides (EPS) in L. lactis. The lactococcal galU gene was identified by a PCR approach using degenerate primers and was found by Northern blot analysis to be transcribed in a monocistronic RNA. The L. lactis galU gene could complement an Escherichia coli galU mutant, and overexpression of this gene in L. lactis under control of the inducible nisA promoter resulted in a 20-fold increase in GalU activity. Remarkably, this resulted in approximately eightfold increases in the levels of both UDP-glucose and UDP-galactose. This indicated that the endogenous GalE activity is not limiting and that the GalU activity level in wild-type cells controls the biosynthesis of intracellular UDP-glucose and UDP-galactose. The increased GalU activity did not significantly increase NIZO B40 EPS production. Disruption of the galE gene resulted in poor growth, undetectable intracellular levels of UDP-galactose, and elimination of EPS production in strain NIZO B40 when cells were grown in media with glucose as the sole carbon source. Addition of galactose restored wild-type growth in the galE disruption mutant, while the level of EPS production was approximately one-half the wild-type level.  相似文献   

20.
Sixteen exopolysaccharide (EPS)-producing Lactococcus lactis strains were analyzed for the chemical compositions of their EPSs and the locations, sequences, and organization of the eps genes involved in EPS biosynthesis. This allowed the grouping of these strains into three major groups, representatives of which were studied in detail. Previously, we have characterized the eps gene cluster of strain NIZO B40 (group I) and determined the function of three of its glycosyltransferase (GTF) genes. Fragments of the eps gene clusters of strains NIZO B35 (group II) and NIZO B891 (group III) were cloned, and these encoded the NIZO B35 priming galactosyltransferase, the NIZO B891 priming glucosyltransferase, and the NIZO B891 galactosyltransferase involved in the second step of repeating-unit synthesis. The NIZO B40 priming glucosyltransferase gene epsD was replaced with an erythromycin resistance gene, and this resulted in loss of EPS production. This epsD deletion was complemented with priming GTF genes from gram-positive organisms with known function and substrate specificity. Although no EPS production was found with priming galactosyltransferase genes from L. lactis or Streptococcus thermophilus, complementation with priming glucosyltransferase genes involved in L. lactis EPS and Streptococcus pneumoniae capsule biosynthesis could completely restore or even increase EPS production in L. lactis.  相似文献   

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