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1.
在成功利用SCB329和SCB110混合培养完成从D-山梨醇转化产生2-酮基-L-古龙酸的基础上。为了消除副产物和获得高的产量,首先对两菌搭配比例,初始pH值、培养基成分等发酵培养条件进行单因子实验,在此基础上采用L9(34)正交实验优化其发酵培养基,其最终的优化培养基的成分为:D-山梨醇9g,玉米浆1.5g,尿素1.5g,磷酸二氢钾0.1g,碳酸钙0.2g。用优化后的培养基发酵,没有检测出副产物2-酮基-D-古龙酸,2-酮基-L-古龙酸产量提高了20%。  相似文献   

2.
氧化葡萄糖酸杆菌(Gluconobacter oxydans)SCB329以D-山梨醇为底物培养时可产生微量2-酮基-L-古龙酸;而葡萄糖酸杆菌(Gluconobacter sp.)SCB110能将D-山梨醇以较高效率转化为L-山梨糖,但不产2-酮基-L-古龙酸。将两种微生物在以山梨醇为底物的培养基中混合培养,其代谢产物经分离提纯后进行熔点测定、元素分析、红外吸收光谱测定等,确定其主要的代谢产物是2-酮基-L-古龙酸。  相似文献   

3.
氧化葡萄糖酸杆菌 (Gluconobacteroxydans)SCB3 2 9以D 山梨醇为底物培养时可产生微量 2 酮基 L 古龙酸 ;而葡萄糖酸杆菌 (Gluconobactersp .)SCB1 1 0能将D 山梨醇以较高效率转化为L 山梨糖 ,但不产 2 酮基 L 古龙酸。将两种微生物在以山梨醇为底物的培养基中混合培养 ,其代谢产物经分离提纯后进行熔点测定、元素分析、红外吸收光谱测定等 ,确定其主要的代谢产物是 2 酮基 L 古龙酸。  相似文献   

4.
棒状杆菌(Corynebactcrium sp.)突变株SCB 3058将2,5-二酮基-D-葡萄糖酸转化为维生素C前体-2-酮基-L-古龙酸。含2,5-二酮基-D-葡萄糖酸的发酵液经表面活性剂SDS处理可直接用作菌株SCB3058的转化底物。D-葡萄糖为最佳碳源,同时作为还原的氢供体。培养基中加入NH.Cl对2-酮基-L-古龙酸的生成有明显的促进作用。转化的最适pH为7.5。摇瓶发酵64小时后,2,5-二酮基-D-葡萄糖酸到2-酮基-L-古龙酸的转化率为50mol%。  相似文献   

5.
研究了在10L发酵罐中D-葡萄糖串联发酵生产维生素C前体——2-酮基-L-古龙酸的发酵工艺条件。第一步发酵采用欧文氏菌(Erwinia sp.)的突变株SCB247,培养36小时,可将D-葡萄糖转化成中间体2,5-二酮基-D-葡萄糖酸,在发酵液中约累积180mg/ml。第二步发酵采用棒状杆菌(Corynebacterium sp.)SCB3058,可将2,5-二酮基-D-葡萄糖酸专一性地还原生成2-酮基-L-古龙酸。在细胞生长进入对数生长期后期时,加入经十二烷基硫酸钠处理的第一  相似文献   

6.
通过在培养基中添加不同量的玉米浆,研究其对氧化葡萄糖酸杆菌(俗称小菌)生产Vc前体2-酮基-L-古龙酸的影响,并研究玉米浆成分中的12种主要氨基酸对小菌产酸的影响。结果表明:每100 mL发酵培养基中添加2.5 g左右过滤除菌玉米浆时,2-酮基-L-古龙酸产量高达26.84 mg/mL,小菌活菌数为不添加玉米浆时小菌单菌发酵下的9.74倍。过量玉米浆抑制小菌产酸。12种氨基酸单独与氧化葡萄糖酸杆菌发酵培养及全部混合后与氧化葡萄糖酸杆菌发酵培养对产酸及菌体生长无影响。  相似文献   

7.
本文研究了D-葡萄糖两步串联发酵中前一步菌株的发酵产酸条件。实验结果表明,在含有D-葡萄糖、适量的玉米浆、碳酸钙和磷酸盐的培养基中,摇瓶培养48小时,一株葡萄糖酸杆菌突变株SCB611可产生2,5-二酮基-D-葡萄糖酸25—30mg/ml,克分子转化率为25%左右;另一株欧文氏菌突变株SCB247可产生2,5-二酮基-D-葡萄糖酸45—50mg/ml,克分子转化率为40%。随发酵时间适当延长,2,5-二酮基-D-葡萄糖酸可逐渐增高。温度28℃,种龄15小时,接种量10%及良好的通气条件,有利于菌株产生2,5-二酮基-D-葡萄糖酸。  相似文献   

8.
本文研究了D-葡萄糖两步串联发酵中前一步菌株的发酵产酸条件。实验结果表明,在含有D-葡萄糖、适量的玉米浆、碳酸钙和磷酸盐的培养基中,摇瓶培养48小时,一株葡萄糖酸杆菌突变株SCB611可产生2,5-二酮基-D-葡萄糖酸25—30mg/ml,克分子转化率为25%左右;另一株欧文氏菌突变株SCB247可产生2,5-二酮基-D-葡萄糖酸45—50mg/ml,克分子转化率为40%。随发酵时间适当延长,2,5-二酮基-D-葡萄糖酸可逐渐增高。温度28℃,种龄15小时,接种量10%及良好的通气条件,有利于菌株产生2,  相似文献   

9.
2-酮基-D-葡萄糖酸是重要的抗氧化剂和食品添加剂——D-异抗坏血酸的重要前体。弱氧化葡糖酸杆菌(Gluconobacter suboxydans)具有丰富的周质空间氧化还原酶类,可将葡萄糖氧化为葡萄糖酸再氧化为2-酮基-D-葡萄糖酸。以提高2-酮基-D-葡萄糖酸的产量和减少副产物为目标,采用同源重组染色体修饰策略,将编码甘油脱氢酶的基因gldh置换为编码葡萄糖脱氢酶的基因gdh,将编码山梨醇脱氢酶的基因sdh置换为编码2-酮-D-葡萄糖酸脱氢酶的基因ga-2-dh。经PCR、酶活性显色及发酵产物HPLC检测验证表明:构建的工程菌株gdh和ga-2-dh基因被强化而gldh和sdh被敲除;使用10%的葡萄糖复合培养基,摇瓶发酵72h,工程菌2KGA3发酵液中没有副产物5-酮基-葡萄糖酸,2-酮基-D-葡萄糖酸的含量终浓度达到72.3 g/L,比野生菌株提高42.2g/L,工程菌和野生菌的2-D-KGA质量转化率分别为72.3%和30.1%,工程菌比野生菌提高1.4倍。构建获得的工程菌,不需要外加抗生素,可以保持稳定遗传,对于工业化规模生产具有一定优势,为获得可产业化显示的优势遗传资源打下了基础。  相似文献   

10.
在由氧化葡萄糖酸杆菌和普通生酮古龙酸杆菌构建的维生素C两菌一步发酵体系中,为了强化氧化葡萄糖酸杆菌对普通生酮古龙酸杆菌生长和产酸的促进作用,文中在氧化葡萄糖酸杆菌中构建硫辛酸合成功能模块。由含硫辛酸功能模块的氧化葡萄糖酸杆菌和普通生酮古龙酸杆菌组成的两菌一步体系,能减轻普通生酮古龙酸杆菌单菌培养时的生长抑制,强化两菌的互作关系,使维生素C前体(2-酮基-L-古龙酸,2-KGA)的产量提高到73.34 g/L(对照组为59.09 g/L),醇酸转化率提高到86.0%。研究结果为进一步优化维生素C两菌一步发酵体系提供了新思路。  相似文献   

11.
在分析了新组合菌系SCB329-SCB933发酵过程特征的基础上,对流加发酵工艺中的种子培养、pH、溶氧的控制,以及发酵液初始培养基中的L-山梨糖浓度和流加起始点进行了优化,获得了比分批发酵更为满意的结果:发酵最终总糖达13%(w/v)左右,发酵周期40~50h,产2-酮基-L-古龙酸达115-130mg/ml,克分子转化率达88mol%左右。  相似文献   

12.
从实验室保藏的菌株中筛选获得Candida sp.PT2A,并通过18S rRNA鉴定为安大略假单胞菌Candida on-tarioensis。对C.ontarioensis不对称还原合成(R)-2-氯-1-(3-氯苯基)乙醇的发酵产酶条件和转化条件进行优化,确定了最适的发酵产酶条件和转化条件:温度30℃,初始pH 6.5,摇床转速180 r/min,菌体质量浓度200 g/L。采用2-氯-1-(3-氯苯基)乙酮质量浓度为10 g/L时,还原反应72 h,(R)-2-氯-1-(3-氯苯基)乙醇的e.e.值为99.9%,产率为99%;底物质量浓度提高至30 g/L时,产率下降为84.3%。采用十六烷基三甲基溴化铵(CTAB)对C.ontarioensis细胞进行通透性处理(CTAB g/L,4℃下处理20 min),在30 g/L底物下反应24 h,产物的e.e.和产率分别达到99.9%和97.5%。  相似文献   

13.
【目的】通过诱变筛选技术选育阿维菌素高产突变株,对其发酵培养基进行响应面优化,提高阿维菌素产量。【方法】采用常压室温等离子体(ARTP)诱变技术,结合链霉抗性和卡那霉素抗性筛选法及96深孔板高通量筛选法,筛选阿维菌素高产株。在单因素实验的基础上,应用响应面分析法对其发酵培养基进行优化,最后确定最佳培养基配方。【结果】获得一株遗传性状稳定的阿维菌素高产株K-1A6,其阿维菌素产量达到4.22 g/L,比出发菌株9-39提高了23.4%,在最佳培养基中阿维菌素产量达到5.36 g/L,较优化前提高了27.01%。【结论】通过对阿维链霉菌9-39菌株进行ARTP诱变筛选及发酵培养基优化研究能显著提高阿维菌素的产量。  相似文献   

14.
In this study, the production of sugar monomers from sugarcane bagasse (SCB) by sono-assisted acid hydrolysis was performed. The SCB was subjected to sono-assisted alkaline pretreatment. The cellulose and hemicellulose recovery observed in the solid content was 99% and 78.95%, respectively and lignin removal observed during the pretreatment was about 75.44%. The solid content obtained was subjected to sono-assisted acid hydrolysis. Under optimized conditions, the maximum hexose and pentose yield observed was 69.06% and 81.35% of theoretical yield, respectively. The hydrolysate obtained was found to contain very less inhibitors, which improved the bioethanol production and the ethanol yield observed was 0.17 g/g of pretreated SCB.  相似文献   

15.

Background

Sugarcane bagasse (SCB) is one of the most promising lignocellulosic biomasses for use in the production of biofuels. However, bioethanol production from pure SCB fermentation is still limited by its high process cost and low fermentation efficiency. Sugarcane molasses, as a carbohydrate-rich biomass, can provide fermentable sugars for ethanol production. Herein, to reduce high processing costs, molasses was integrated into lignocellulosic ethanol production in batch modes to improve the fermentation system and to boost the final ethanol concentration and yield.

Results

The co-fermentation of pretreated SCB and molasses at ratios of 3:1 (mixture A) and 1:1 (mixture B) were conducted at solid loadings of 12% to 32%, and the fermentation of pretreated SCB alone at the same solid loading was also compared. At a solid loading of 32%, the ethanol concentrations of 64.10 g/L, 74.69 g/L, and 75.64 g/L were obtained from pure SCB, mixture A, and mixture B, respectively. To further boost the ethanol concentration, the fermentation of mixture B (1:1), with higher solid loading from 36 to 48%, was also implemented. The highest ethanol concentration of 94.20 g/L was generated at a high solid loading of 44%, with an ethanol yield of 72.37%. In addition, after evaporation, the wastewater could be converted to biogas by anaerobic digestion. The final methane production of 312.14 mL/g volatile solids (VS) was obtained, and the final chemical oxygen demand removal and VS degradation efficiency was 85.9% and 95.9%, respectively.

Conclusions

Molasses could provide a good environment for the growth of yeast and inoculum. Integrating sugarcane molasses into sequential cellulosic biofuel production could improve the utilization of biomass resources.
  相似文献   

16.
为提升苦参资源的利用效率,本研究以苦参种子提取生物碱过程中产生的副产物油脂类物质为研究对象,筛选可利用苦参种子废弃油脂生产灵菌红素的菌株并优化其发酵工艺。利用UPLC-Q-TOF-MS /MS对纯化后的发酵产物进行分析,并通过单因素考察和响应面优化获得菌株利用苦参种子油发酵产灵菌红素的最佳工艺参数。筛选到的菌株经形态和16S rDNA测序鉴定为粘质沙雷氏菌,并命名为粘质沙雷氏菌L9。优化的最佳发酵工艺条件为:苦参种子油、牛肉膏和氯化钙的最佳浓度分别为13 g/L、9.5 g/L及0.3 g/L,温度30℃;在最佳发酵工艺条件下,灵菌红素最高产量约为317.21 mg/L,产率提高约3.2倍。本研究以苦参种子深加工过程产生的副产物为研究对象,对其油脂类成分进行资源化利用研究,在有效处置苦参种子固废物的同时产生灵菌红素高附加值产品,为以种子类药材深加工过程固废物的资源化利用提供了借鉴。  相似文献   

17.
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   

18.
吸水链霉菌ATCC 29253产Hygrocin A发酵条件的优化   总被引:2,自引:0,他引:2  
【背景】Hygrocins是一种萘安莎抗生素,具有良好的新药开发潜能。但在常见培养基及发酵条件下菌体内Hygrocin A含量一般很低,甚至难以直接进行准确检测。【目的】提高吸水链霉菌ATCC 29253发酵物中Hygrocin A的产量。【方法】采用单因素与正交试验设计优化相结合的方法系统考察碳源、氮源、磷酸盐、MgCl_2浓度、NaCl浓度、种子菌龄等因素对吸水链霉菌ATCC 29253产Hygrocin A能力的影响。【结果】最佳发酵条件为(g/L):葡萄糖4.0,黄豆饼粉8.0,麦芽提取物10.0,K_2HPO_4 1.5,KH_2PO_4 1.5,NaCl 1.5,Mg Cl2 1.0;种子最佳活化时间为48 h;培养参数:摇床转速200 r/min,初始pH为6.8-7.0,瓶装量50 m L/250 m L,接种量5%,30°C培养10 d。在优化条件下,Hygrocin A产量与其原始培养基M10相比提高了500%,Rapamycin产量同时下降了95%。【结论】通过培养基优化,可显著提高吸水链霉菌ATCC 29253中Hygrocin A产量,为Hygrocin A合成应用研究奠定基础,同时可使Rapamycin产量明显下降。这说明可通过选择培养条件有目的地调节两种抗生素的代谢通量,进而开展多种抗生素同时表达的代谢调控研究。  相似文献   

19.
In this study, we investigated the production of bioethanol from sugarcane bagasse (SCB) using an NH4OH-H2O2 pretreatment and simultaneous saccharification and co-fermentation (SScF). Response surface methodology and a 23 Box-Behnken design were used to evaluate the effect of different liquid mixture concentrations, liquid-to-solid ratios (LSRs) and pretreatment temperatures on the production of ethanol. The liquid mixture concentration and LSR significantly influenced the fermentation efficiency. Based on ridge max analysis, the following pretreatment conditions resulted in a fermentation efficiency of 95.79 ± 0.01%: liquid mixture concentration 53%, LSR 28, and a temperature of 63°C. A morphological analysis performed using scanning electron microscopy (SEM) and chemical characterization revealed that these pretreatment conditions were effective in disrupting the sugarcane fibers and removing lignin. Ethanol fermentation with the pretreated SCB using SScF in yeast SHY 07-1 resulted in an ethanol concentration of 14.65 ± 0.17 g/L, an ethanol yield of 0.48 ± 0.01 g/g, and an ethanol productivity of 0.12 ± 0.01 g/(L/h), which represents increases of 106.02, 89.98, and 107.02%, respectively, over the values obtained from SScF with untreated SCB.  相似文献   

20.
Among four cellulolytic microorganisms examined, Cellulomonas biazotea NCIM‐2550 can grow on various cellulosic substrates and produce reducing sugar. The activity of cellulases (endoglucanase, exoglucanase, and cellobiase), xylanase, amylase, and lignin class of enzymes produced by C. biazotea was mainly present extracellularly and the enzyme production was dependent on cellulosic substrates (carboxymethyl cellulose [CMC], sugarcane bagasse [SCB], and xylan) used for growth. Effects of physicochemical conditions on cellulolytic enzyme production were systematically investigated. Using MnCl2 as a metal additive significantly induces the cellulase enzyme system, resulting in more reducing sugar production. The efficiency of fermentative conversion of the hydrolyzed SCB and xylan into clean H2 energy was examined with seven H2‐producing pure bacterial isolates. Only Clostridiumbutyricum CGS5 exhibited efficient H2 production performance with the hydrolysate of SCB and xylan. The cumulative H2 production and H2 yield from using bagasse hydrolysate (initial reducing sugar concentration = 1.545 g/L) were approximately 72.61 mL/L and 2.13 mmol H2/g reducing sugar (or 1.91 mmol H2/g cellulose), respectively. Using xylan hydrolysate (initial reducing sugar concentration = 0.345 g/L) as substrate could also attain a cumulative H2 production and H2 yield of 87.02 mL/L and 5.03 mmol H2/g reducing sugar (or 4.01 mmol H2/g cellulose), respectively. © 2009 American Institute of Chemical Engineers Biotechnol. Prog., 2010  相似文献   

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