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1.
目的 对海洋红酵母Y2高产类胡萝卜素的发酵条件进行优化.方法 在摇瓶条件下,研究培养基成分和培养条件对海洋红酵母Y2生长和类胡萝卜素合成的影响,同时进行海洋红酵母Y2发酵过程的动态分析.结果 海洋红酵母Y2优化培养基组合为葡萄糖45 g/L,蔗糖15 g/L,酵母粉5 g/L,蛋白胨2.5 g/L,磷酸二氢钾1 g/L,磷酸二氢钠3 g/L,硫酸镁7.5 g/L,氯化钾3 g/L,氯化钠5 g/L.最适培养参数为:温度20℃,培养基初始pH为5,接种量为10%,250 mL摇瓶装液量为10~50 mL.类胡萝卜素的合成主要集中在对数生长期和稳定期.海洋红酵母Y2最适收获时间为72 h.种龄以36 h为宜.结论 利用优化培养基,在最适条件下培养海洋红酵母Y2,类胡萝卜素产量达到4.97 mg/L,比基础培养基提高了60.32%.  相似文献   

2.
大球盖菇产胞外多糖液体优化培养条件初探   总被引:2,自引:0,他引:2  
以菌丝生物量及胞外多糖(exopolysaccharides,EPS)含量为指标对大球盖菇产胞外多糖液体培养基组成和发酵条件进行了优化。结果表明,最适碳源是麦芽糖,最适氮源是酵母膏,正交试验确定最佳培养基组成为马铃薯150 g/L,麦芽糖20 g/L,酵母膏1 g/L,KH2PO41 g/L,MgSO4.7H2O 2.5 g/L。最佳发酵条件为28℃,摇床转速160 r/min,起始pH值6.5,装液量100 mL/250 mL、接种量10%,发酵时间6 d。在此条件下,大球盖菇菌丝生物量及EPS含量分别比对照增加了31.8%和51.6%。  相似文献   

3.
粘红酵母发酵生产类胡萝卜素培养条件的优化   总被引:5,自引:0,他引:5  
目的是通过测定不同条件下类胡萝卜素的产量找出粘红酵母发酵生产类胡萝卜素的最优条件。探讨了不同碳源、氮源对粘红酵母菌体生长和色素形成的影响,并通过正交实验确定了最佳条件组合。实验结果表明,最适发酵培养条件为:蔗糖40g/L、酵母粉20g/L、转速150r/min、装液量30mL/500mL、发酵时间84h。在此条件下,粘红酵母摇瓶发酵的生物量、类胡萝卜素含量及产量分别达15.17g/L、718.6μg/g、10.9mg/L,依次比初始发酵提高了1倍、7.4倍和15.8倍。发酵过程动态分析表明,84h色素产量达最高峰。  相似文献   

4.
从扬子石化的废水淤泥中筛选到1株能发酵液体石蜡产脂肽类生物表面活性剂的假丝酵母Candida E-2.通过单因子实验和正交试验,得到了最佳发酵培养基组成(g/L):牛肉膏3.0,蔗糖2.0,酵母膏0.25,KH2PO4 12.5,MgSO4 0.3,NaCl 1.5,CaCl,0.05,尿素0.5 5;液体石蜡10%(体积分数).最佳培养条件:初始pH7.0,接种量0.12g/L,装液量为200mL三角瓶30mL,培养时间为5 d.最终产量提高了2.7倍,达1.582g/L.  相似文献   

5.
从数株红酵母中选出 1株产类胡萝卜素能力较强的红酵母RY 98(生物量、类胡萝卜素含量和产量分别为19.9g/L ,334 .8μg/ g和 6 .7mg/L) ;研究了该菌株产类胡萝卜素的最适营养与环境条件 ,获得了最佳的发酵生理学条件 :葡萄糖 40 g/L ,(NH4 ) 2 SO4 10 g/L ,酵母膏 3g/L ,蕃茄汁 2mL/L ,花生油 0 .5mL/L ,接种量 30mL/L ,初始pH 6 .0和通气量 (培养基装量 ) 4 0mL/ 2 5 0mL。在此初步优化的培养条件下 ,红酵母RY 98经 72h摇瓶发酵其生物量、类胡萝卜素含量和产量分别可达 2 6 .8g/L ,386 .9μg/ g和 10 .4mg/L ,依次比初筛中提高了 34 .7% ,15 .6 %和 5 5 .2 %。  相似文献   

6.
沼泽生红冬孢酵母生长及产类胡萝卜素培养条件的研究   总被引:2,自引:0,他引:2  
通过单因素实验和正交实验对沼泽生红冬孢酵母生长和产类胡萝卜素的培养条件进行研究,最适培养条件为葡萄糖40 g/L,牛肉膏10 g/L,酵母膏10 g/L,NaCl 10 g/L,MgSO4.7H2O 0.1 g/L,K2HPO4 2 g/L,KH2PO4 2 g/L,初始pH 6.3,装液量为50 mL/250 mL,摇床转速170 r/min,培养温度为28℃,接种量为10%。在此发酵条件下,培养72 h后,沼泽生红冬孢酵母生物量和类胡萝卜素产量分别达到11.72 g/L和3.55 mg/L。  相似文献   

7.
目的:对黑曲霉WP124发酵产橙皮苷酶的工艺条件进行优化,旨在为利用酶法改造橙皮苷打下基础.方法:采用摇瓶培养,对培养基的成分和培养条件进行了优化.结果:黑曲霉WP124发酵产橙皮苷酶的最佳培养基组成是:蔗糖30g/L,酵母膏20g/L,磷酸二氢钾3g/L,桔皮粉50g/L;最佳培养条件是:起始pH为5.5,培养温度为30℃,摇瓶转速是180r/min.在上述条件下,经过72h的培养,橙皮苷酶酶活达到1398U/mL.结论:该菌株发酵过程具有较好的工业化应用的前景.  相似文献   

8.
假单胞菌属No.2120生产D-甘露糖异构酶发酵培养基的优化   总被引:2,自引:0,他引:2  
通过单因子实验、Plackett-Burman实验设计、响应面分析法对假单胞菌属No.2120产D-甘露糖异构酶的培养基进行优化,确定发酵优化条件:果糖15.26 g/L,牛肉膏20 g/L,酵母膏2 g/L,K2HPO42 g/L,MgSO4.7H2O0.5 g/L,NaCl 0.5 g/L,Tween-80 1.54 g/L。采用优化配方异构酶比酶活可以达到68.28 U/mL。  相似文献   

9.
黄色隐球酵母生产辅酶Q10发酵条件的优化   总被引:3,自引:0,他引:3  
从黄色隐球酵母L3302提取辅酶Q10,经过氮源、碳源、初始pH、发酵温度等的研究分析,得到最佳的发酵条件。通过最优化实验确定培养基:蔗糖和葡萄糖各1.25g/L;酵母膏和玉米浆各0.3g/L;pH值6.5,温度28℃,接种量5%,装液量为50mL/500mL;生长因子以蛋白水解液为优。按此发酵条件上罐发酵,得到菌体生长量为12.8g/L发酵液,辅酶Q10的产量为1.82mg/100mL发酵液。  相似文献   

10.
采用液体发酵蝉拟青霉,对蝉拟青霉的发酵条件进行优化,以提高蝉拟青霉胞外多糖产量及生物量。摇瓶发酵条件下,在单因素基础上设计正交实验确定各因素的最佳组合。优化后得最佳发酵培养基:蔗糖8%,牛肉膏0.75%,酵母膏0.125%,MgSO_4·7H_2O 0.3%,KH_2PO_4 0.2%,麸皮0.5%。该条件下胞外多糖产量为5.96 g/L,生物量为42 g/L,较优化前提高了1倍。采用发酵罐进行扩大培养,对分批发酵时的初糖浓度进行了优化,并分析了补料分批发酵对发酵过程的影响。发酵罐培养时最适初糖浓度为5%,此时生物量最高为38 g/L,多糖含量最高为5.5 g/L;采用补料分批发酵时,多糖产量最高为5.89 g/L,生物量最高为40 g/L,效果优于分批发酵。  相似文献   

11.
目的:研究赭曲霉高密度培养的发酵培养基及条件,实现坎利酮的高转化.方法:选取廉价易得的培养基成分并进行优化,同时对发酵条件进行优化,得到了最优发酵培养基配方及培养条件.结果:发酵培养基最优配方为:葡萄糖20g/L,玉米浆20g/L,酵母膏20g/L,K2HPO4 2.5g/L.种子液最佳培养时间为24h,发酵培养基初始pH 5.8,接种量为8%,装液量200mL/1000mL,摇床转速为180 r/min,28℃,底物投料时间24h,发酵结束时间72 h.结论:将该工艺在7L发酵罐中放大,菌体密度达到25.36g/L,11α羟基坎利酮的转化率为86.1%.  相似文献   

12.
金宏杰  牛玉静  曹红  李春  罗婷  沈瑞麟 《菌物学报》2019,38(7):1130-1140
本实验对前期研究得到的具有高产红色素能力的产紫青霉突变菌株Penicillium purpurogenum Li-3-9的发酵条件进行优化的同时作出了对红色素的安全性评价。在单因素试验的基础上,采用Box-Behnken试验设计优化了蔗糖浓度、酵母膏浓度和装液量对红色素色价的影响;并且研究了P. purpurogenum Li-3-9产生的红色素对斑马鱼胚胎的毒性效应。结果表明,最佳发酵条件为:蔗糖40g/L、酵母膏4g/L、装液量为45mL、接种量4%、培养温度32℃、初始pH值6.9、培养时间168h、摇床转速150r/min,红色素色价最高达到了11.4U/mL。通过计算斑马鱼胚胎致死率、心率、畸形率及孵化率可知,该色素无致死毒性,并且对斑马鱼胚胎发育具有一定的促进作用。  相似文献   

13.
对极地适冷菌Pseudoalteromonas sp. QI-1产适冷蛋白酶的发酵条件进行优化。结果表明:菌株QI-1的最适生长和产酶温度均为5℃;最佳接种量为1%;发酵培养基的最适初始pH和最佳装样量分别为5和10%;盐度为2%时对菌株的生长和产酶最为有利;麸皮和醋酸钠分别为最佳N源和C源;添加0.75%酪蛋白时菌株QI-1胞外蛋白酶的活性最高;10 mmol/L Mg2+和0.5%Tween-80有利于产酶。正交试验结果表明:菌株Pseudoalteromonassp. QI-1产蛋白酶较佳培养基配方(g/L)为麸皮5,酵母粉2.5,酪蛋白3,MgCl2.6H2O 3,KCl 1.5;发酵液比酶活为166.20 U/mL,较优化前提高了约56%。  相似文献   

14.
Polysaccharides and ganoderic acids (GAs) are the major bioactive constituents of Ganoderma species. However, the commercialization of their production was limited by low yield in the submerged culture of Ganoderma despite improvement made in recent years. In this work, twelve Ganoderma strains were screened to efficiently produce polysaccharides and GAs, and Ganoderma lucidum 5.26 (GL 5.26) that had been never reported in fermentation process was found to be most efficient among the tested stains. Then, the fermentation medium was optimized for GL 5.26 by statistical method. Firstly, glucose and yeast extract were found to be the optimum carbon source and nitrogen source according to the single-factor tests. Ferric sulfate was found to have significant effect on GL 5.26 biomass production according to the results of Plackett–Burman design. The concentrations of glucose, yeast extract and ferric sulfate were further optimized by response surface methodology. The optimum medium composition was 55 g/L of glucose, 14 g/L of yeast extract, 0.3 g/L of ferric acid, with other medium components unchanged. The optimized medium was testified in the 10-L bioreactor, and the production of biomass, IPS, total GAs and GA-T enhanced by 85, 27, 49 and 93 %, respectively, compared to the initial medium. The fermentation process was scaled up to 300-L bioreactor; it showed good IPS (3.6 g/L) and GAs (670 mg/L) production. The biomass was 23.9 g/L in 300-L bioreactor, which was the highest biomass production in pilot scale. According to this study, the strain GL 5.26 showed good fermentation property by optimizing the medium. It might be a candidate industrial strain by further process optimization and scale-up study.  相似文献   

15.
A cane molasses-based medium for the biomass production of biocontrol agent Rhodosporidium paludigenum was statistically optimized. Molasses concentration (after pretreatment), yeast extract, and initial pH were identified by the Plackett-Burman design to show significant influence on the biomass production. The three factors were further optimized by central composite design and response-surface methodology. The statistical analysis indicated the optimum values of the variables were 89.98?g/L for cane molasses, 2.35?g/L for yeast extract and an initial pH of 8.48. The biomass yield at the optimal culture achieved 15.89?g/L in flask fermentation, which was 2.1 times higher than that at the initial NYDB medium. In a 10-L fermenter, 18.97?g/L of biomass was obtained after 36?hr of cultivation. Moreover, the biocontrol efficacy of the yeast was investigated after culture optimization. The results showed the yeast harvested in the optimal medium maintained its initial biocontrol properties by reducing the percentage of decayed apples to below 20%.  相似文献   

16.
A cane molasses-based medium for the biomass production of biocontrol agent Rhodosporidium paludigenum was statistically optimized. Molasses concentration (after pretreatment), yeast extract, and initial pH were identified by the Plackett–Burman design to show significant influence on the biomass production. The three factors were further optimized by central composite design and response-surface methodology. The statistical analysis indicated the optimum values of the variables were 89.98 g/L for cane molasses, 2.35 g/L for yeast extract and an initial pH of 8.48. The biomass yield at the optimal culture achieved 15.89 g/L in flask fermentation, which was 2.1 times higher than that at the initial NYDB medium. In a 10-L fermenter, 18.97 g/L of biomass was obtained after 36 hr of cultivation. Moreover, the biocontrol efficacy of the yeast was investigated after culture optimization. The results showed the yeast harvested in the optimal medium maintained its initial biocontrol properties by reducing the percentage of decayed apples to below 20%.  相似文献   

17.
对一株产低温碱性脂肪酶细菌(Pseudoalteromonas sp.BJ17)的发酵条件进行了优化,研究各种碳源及氮源对产酶的影响,应用正交实验优化其发酵培养基组成。结果表明:最佳培养基组成为淀粉12g/L,蛋白胨12g/L,酵母膏3g/L,酪蛋白2g/L。最佳培养温度为25℃,发酵时间为16h。  相似文献   

18.
目的从生产实际出发,对1株高效乳酸杆菌(Lactobacillus spp)LH进行液体发酵培养基优化及发酵条件研究。方法通过碳源、氮源、无机盐、促生长素等单因子筛选及正交试验设计获得以下最佳培养基:糖蜜12 g/L,酵母膏5 g/L,蛋白胨1 g/L,葡萄糖4 g/L,玉米浆3 g/L,乙酸钠5 g/L,NaC l 5 g/L,K2HPO42.5 g/L,KH2PO42.5 g/L,MgSO40.5g/L,MnSO40.25 g/L。在此培养基上研究了该菌株最佳发酵条件。结果培养基初始pH 6.0,接种量2%(v/v,相对装液量),500 m l三角瓶中装液量为500 m l,发酵温度为30~35℃,静置培养。在最佳培养条件下,LH活菌量达到1.74×10^9CFU/m l。结论通过活菌平板计数法测定了乳酸杆菌LH生长曲线,24 h为最佳种龄,生产收获时间是36 h。  相似文献   

19.
Exploration of novel active anti-tumor compounds from marine microbes for pharmaceutical applications has been a continuously hot spot in natural product research. Bacterial growth and metabolites may greatly vary under different culture conditions. In this study, the effects of different culture conditions and medium components on the growth and bioactive metabolites of Serratia proteamacula 657, an anti-tumor bacterium found in our previous study, were investigated. The results showed that lower temperature, weak acidic condition and solid fermentation favored the bacterial growth and the production of active compounds. Four components in the culture medium, NaCl, peptone, yeast extract and MgSO4, were found important to the bacterial growth and active compounds production in medium optimization. Under the optimized condition of solid state fermentation at pH 6.0–7.0, 23–25 °C, with the MgSO4-free medium containing 10.0 g/L peptone, 1.0 g/L yeast extract and 19.45 g/L NaCl, the antitumor activity of S. proteamacula 657 and the yield of crude extracts increased about 15 times and 6 times than the sample obtained in the original liquid fermentation, respectively. The active components in the metabolites of S. proteamacula 657 were identified as a homolog of prodigiosin, a red bacterial pigment, based on the analysis of the NMR and GC–MS. The bacterium S. proteamacula 657, which is adapted to lower temperature, produced prodigiosin-like pigments with highly antitumor activity, suggesting the bacterium is a potential new source for prodigiosin production.  相似文献   

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