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1.
乙酸渗漏型丙酮酸高产菌的选育   总被引:7,自引:0,他引:7  
对Torulopsis glabrata WSH-IP303进行NTG诱变,挑选以乙酸为补充碳源的平板上透明圈较大的菌落,经初筛和复筛,发现T.glabrataWSH-LQ307生产丙酮酸能力强且稳定。以乙酸为补充碳源摇瓶培养48h,其丙酮酸产量(46.2g/L)比出发菌株(38.3g/L)提高21%,采用该菌株在5L发酵罐上进行4批发酵实验,丙酮酸产量在64h最高可达68.7g/L,对葡萄糖的转化率为0.651g/g。  相似文献   

2.
提高光滑球拟酵母乙酰辅酶A水平促进a-酮戊二酸合成   总被引:1,自引:1,他引:0  
【目的】为了了解光滑球拟酵母中乙酰辅酶A含量对其碳代谢及其通量的影响。【方法】将来源于酿酒酵母中编码乙酰辅酶A合成酶ACS2基因过量表达于发酵法生产丙酮酸的生产菌株Torulopsis glabrata中,获得了一株乙酰辅酶A合成酶活性提高9.2倍(1.20 U/mg protein)的重组菌T. glabrata ACS2-1。【结果】与出发菌株WSH-IP303相比,重组菌T. glabrata ACS2-1:(1)能以乙酸为唯一碳源在胞内积累0.94 mmol/(L·g DCW)的乙酰辅酶A;(2)以葡萄糖为唯一碳源时胞内乙酰辅酶A浓度、a-酮戊二酸产量和Ca-KG/Cpyr是出发菌株WSH-IP303 的3.22、2.05和2.52倍;(3)在葡萄糖培养基中添加4 g/L乙酸,使乙酰辅酶A浓度、a-酮戊二酸产量和Ca-KG/Cpyr是出发菌株WSH-IP303的4.55、2.47和3.75倍,a-酮戊二酸浓度达到17.8 g/L。【结论】这一结果表明,改变细胞内关键辅因子的浓度能使碳代谢流的流向与通量发生改变,从积累丙酮酸转向过量积累a-酮戊二酸。  相似文献   

3.
提高光滑球拟酵母乙酰辅酶A水平促进α-酮戊二酸合成   总被引:1,自引:0,他引:1  
[目的]为了了解光滑球拟酵母中乙酰辅酶A含量对其碳代谢及其通量的影响.[方法]将来源于酿酒酵母中编码乙酰辅酶A合成酶ACS2基因过量表达于发酵法生产丙酮酸的生产菌株Torulopsis glabrata中,获得了一株乙酰辅酶A合成酶活性提高9.2倍(1.20 U/mg protein)的重组菌T. glabrataACS2-1.[结果]与出发菌株WSH-IP303相比,重组菌T glabrataACS2-1:(1)能以乙酸为唯一碳源在胞内积累0.94 mmol/(L·g DCW)的L酰辅酶A;(2)以葡萄糖为唯一碳源时胞内乙酰辅A浓度、α-酮戊二酸产量和Cα-KG,Cpyr是出发菌株WSH-IP303的3.22、2.05和2.52倍;(3)在葡萄糖培养基中添加4 g/L 乙酸,使乙酰辅酶A浓度、α-酮戊二酸产量和CαKG>>/Cpyr是出发菌株WSH-IP303的4.55、2.47和3.75倍,α-酮戊二酸浓度达到17.8 g/L.[结论]这一结果表明,改变细胞内关键辅因子的浓度能使碳代谢流的流向与通量发生改变,从积累丙酮酸转向过量积累α-酮戊二酸.  相似文献   

4.
以光滑拟球酵母为研究模型,研究α-酮戊二酸的浓度情况。通过单因素实验得到α-酮戊二酸积累最佳浓度的各单因素条件为:葡萄糖浓度140g/L,NH4Cl浓度5g/L。在碳源(30g/L葡萄糖初始浓度)匮乏条件下加入丙酮酸30g/L,在此条件下丙酮酸转化为α-酮戊二酸的转化率最高达53.7%。以30g/L丙酮酸为唯一碳源时在7L发酵罐中光滑拟球酵母可生成浓度为10.7g/Lα-酮戊二酸,外源丙酮酸的转化率可达66.9%。这一结果表明,T.glabrata具有将丙酮酸转化为α-KG的能力。  相似文献   

5.
枯草杆菌 SBS液体发酵联产血栓溶解酶和γ-聚谷氨酸   总被引:1,自引:0,他引:1  
【目的】利用枯草芽胞杆菌(Bacillus subtilis SBS)进行联产血栓溶解酶和γ-聚谷氨酸研究【方法】本研究以实验室自行分离的Bacillus subtilis SBS为出发菌株,进行了液体发酵,通过正交实验研究了碳、氮源对血栓溶解酶和γ-聚谷氨酸联产的影响,并运用多种检测方法对产物进行了鉴定。【结果】在未添加谷氨酸的培养基中合成了γ-聚谷氨酸,表明该菌是非谷氨酸依赖型菌。合成血栓溶解酶的合适碳、氮源分别是可溶性淀粉和大豆蛋白胨,合成γ-聚谷氨酸的合适碳、氮源分别是蔗糖和NH4Cl。【结论】以蔗糖和大豆蛋白胨、NH4Cl分别作为碳源和氮源进行血栓溶解酶和γ-聚谷氨酸的联产。在蔗糖 10 g/L、大豆蛋白胨 20 g/L、NH4Cl 8 g/L时,血栓溶解酶酶活为 265±25 IU/mL,γ-聚谷氨酸产量为1.183±0.015 g/L,均接近了单独合成时的水平。  相似文献   

6.
维生素在丙酮酸过量合成中的重要作用   总被引:19,自引:0,他引:19  
研究了烟酸、硫胺素、吡哆醇、生物素和核黄素对一株光滑球拟酵母(\%Torulopsis glabrata\%) WSH\|IP303以葡萄糖为碳源、以氯化铵为唯一氮源生产丙酮酸的影响。利用正交试验方法,确证了硫胺素是影响WSH\|IP303生产丙酮酸的最重要因素。在硫胺素浓度一定(0.01~0.015mg/L)的前提下,提高烟酸浓度有助于加快耗糖速度。当烟酸、硫胺素、吡哆醇、生物素和核黄素的浓度分别为8、0.015、0.4、0.04和01mg/L时,摇瓶发酵48h,丙酮酸产量和产率可分别达到52.4g/L和0525g/g。采用优化的维生素组合方式,进行2.5L罐分批发酵,在初糖浓度120g/L的条件下发酵57.5h,丙酮酸产量和产率分别达到69.4g/L和0593g/g,分别比摇瓶培养的最好结果提高了32.%和13%。  相似文献   

7.
过量表达NADH氧化酶加速光滑球拟酵母合成丙酮酸   总被引:1,自引:0,他引:1  
[目的]进一步提高光滑球拟酵母(Torulopsis glabrata)发酵生产丙酮酸的生产强度.[方法]将来源于乳酸乳球菌(Lactococcus lactis)中编码形成水的NADH氧化酶noxE基因过量表达于丙酮酸工业生产菌株T. glabrata CCTCC M202019中,获得了一株NADH氧化酶活性为34.8 U/mg蛋白的重组菌T. glabrata-PDnoxE.[结果]与出发菌株T. glabrata CCTCC M202019相比,细胞浓度、葡萄糖消耗速率和丙酮酸生产强度分别提高了168%、44.9%和12%,发酵进行到36 h葡萄糖消耗完毕.补加50 g/L葡萄糖继续发酵20 h,则使丙酮酸浓度提高到67.2 g/L.葡萄糖消耗速度和丙酮酸生产强度增加的原因在于形成水的NADH氧化酶过量表达,导致NADH和ATP含量分别降低了18.1%和15.8%.而NAD<' 增加了11.1%.[结论]增加细胞内NAD<' 含量能有效地提高酵母细胞葡萄糖的代谢速度及目标代谢产物的生产强度.  相似文献   

8.
环境条件对丙酮酸分批发酵的影响   总被引:1,自引:0,他引:1  
考察了搅拌转速、pH和温度对丙酮酸分批发酵的影响。高转速(500r/min)下,丙酮酸产率较高(71%),但葡萄糖消耗速度较慢(1.23g/(L·h));低转速(300r/min)下,细胞消耗葡萄糖的速度加快(1.95g/(L·h)),而丙酮酸产率(0.48%)却明显下降。将搅拌转速恒定在400r/min可在一定程度上获得较高的丙酮酸产率(0.62%)和葡萄糖消耗速度(1.66g/(L·h))。CaCO3调节pH时,较多碳流从丙酮酸节点转向α-酮戊二酸节点和细胞生长,最终丙酮酸产量比NaOH调节pH时的发酵结果低38.7%;NH3·H2O调节pH时最终细胞浓度和丙酮酸产量仅为NaOH调节时的77.8%和90.9%。pH5.5时最利于丙酮酸的合成。较高的发酵温度加速T.glabrata积累丙酮酸,但同时会导致α-酮戊二酸的提前积累;而较低的温度下甘油和α-酮戊二酸积累较少,丙酮酸发酵的最适温度为28~30℃。  相似文献   

9.
【目的】针对硫氧化菌种较为特殊的生化特性,优选其氧化硫化物生成单质硫过程的相关限制性因素,以提高该类菌种生成单质硫效率。【方法】采用一株典型脱硫菌Thermithiobacillus tepidarius JNU-2(T.tepidarius JNU-2)氧化硫化物生成单质硫。研究该菌株在以Na2S2O3为能源底物时的培养特性和脱硫性能,并结合单因素实验对菌株氧化硫化物生成单质硫的限制性因素进行优选。【结果】T.tepidarius JNU-2在以Na2S2O3为唯一能源底物培养时的μmax为0.207 h-1,最终生物量为4.0×106 cells/m L。98%的Na2S2O3在24 h时被消耗殆尽,此时单质硫产量达到最大值为0.8 g/L。随后单质硫逐渐被氧化利用,最终稳定在0.2 g/L。经过对该过程主要限制性因素进行单因素实验优化,确定最佳碳氮源、Mg SO4、Fe SO4和能源底物条件分别为:CO2、NH4Cl0.5 g/L、Mg SO4 0.5 g/L、Fe SO4 0.1 g/L和Na2S2O3 15.0 g/L。优化后的氧化Na2S2O3生成单质硫过程的最大生物量可达4.8×106 cells/m L,单质硫产量提升至1.14 g/L。相较于未优化之前,单质硫的产量提高了42.5%。【结论】优化该过程主要限制性因素可有效提高化能自养型T.tepidarius JNU-2氧化硫化物生成单质硫效率。  相似文献   

10.
考察有机氮源种类、蛋白胨用量以及(NH4)2SO4用量对重组E.coli发酵产L-精氨酸的影响.结果表明:以蛋白胨作为有机氮源且用量在10 g/L,( NH4 )2SO4用量在15 g/L时,摇瓶发酵产L-精氨酸产量最高,达到9.4g/L.在5L发酵罐进行补料分批培养,通过补加(NH4)2 SO4,L-精氨酸产量可以达到18.8 g/L,比未补加提高了108.9%.  相似文献   

11.
A multi-vitamin auxotroph, Torulopsis glabrata strain WSH-IP303, which can use ammonium chloride as a sole nitrogen source for pyruvate production, was selected. To optimize pyruvate yield and productivity, a simple but useful, orthogonal design method, was used to investigate the relationship between thiamine, nicotinic acid, pyridoxine, biotin, and riboflavin. Thiamine was confirmed to be the most important factor affecting pyruvate production. When the concentration of thiamine was 0.01 mg/l or 0.015 mg/l, glucose consumption was improved by increasing the nicotinic acid concentration. When the concentrations of nicotinic acid, thiamine, pyridoxine, biotin, and riboflavin were 8.0, 0.015, 0.4, 0.04, and 0.1 mg/l, respectively, pyruvate concentration and yield reached 52 g/l and 0.52 g/g, respectively, in a 48-h flask culture. By employing a combination of the optimum vitamin concentrations, a batch culture was conducted in a 2.5-l fermentor with an initial glucose concentration of 112 g/l; and the pyruvate concentration reached 69 g/l after 56 h (yielding 0.62 g/g).  相似文献   

12.
为进一步提高光滑球拟酵母发酵生产丙酮酸的水平 ,在途径分析的基础上提出了一种组成型降低丙酮酸脱酸酶、但增强乙酰辅酶A合成酶活性的育种策略。通过亚硝基胍诱变 ,获得 1株乙酸需求型突变株CCTCCM2 0 2 0 19,在外加乙酸的培养基中表现出高于出发株 2 1%的丙酮酸生产能力和良好的遗传稳定性。检测突变株CCTCCM2 0 2 0 19中丙酮酸代谢相关酶的活性发现 :(1)丙酮酸脱羧酶活性降低了 4 0 % ;(2 )外加乙酸与否的条件下 ,乙酰辅酶A合成酶的活性分别提高了 10 3 5 %和 5 7 4 % ;(3)添加乙酸和突变对丙酮酸羧化酶、丙酮酸脱氢酶系、乙醇脱氢酶和乙醛脱氢酶的活性没有显著影响。在含有乙酸的培养基中突变株细胞干重比出发株高 2 1 7% ,可能是因为乙酰辅酶A合成酶活性的提高 ,补充了因丙酮酸脱羧酶活性降低而引起的胞质乙酰辅酶A短缺。在 7L罐中含有 6g L乙酸钠的培养基中发酵 6 2h ,丙酮酸产量达到 6 8 7g L ,对葡萄糖的产率为 0 6 5 1g g。  相似文献   

13.
AIMS: To investigate the relationship between the activity of pyruvate dehydrogenase (PDH) bypass and the production of pyruvate of a multi-vitamin auxotrophic yeast Torulopsis glabrata. METHODS AND RESULTS: Torulopsis glabrata CCTCC M202019, a multi-vitamin auxotrophic yeast that requires acetate for complete growth on glucose minimum medium, was selected after nitrosoguanidine mutagenesis of the parent strain T. glabrata WSH-IP303 screened in previous study [Li et al. (2001) Appl. Microbiol. Biotechnol. 55, 680-685]. Strain CCTCC M202019 produced 21% higher pyruvate than the parent strain and was genetically stable in flask cultures. The activities of the pyruvate metabolism-related enzymes in parent and mutant strains were measured. Compared with the parent strain, the activity of pyruvate decarboxylase (PDC) of the mutant strain CCTCC M202019 decreased by roughly 40%, while the activity of acetyl-CoA synthetase (ACS) of the mutant increased by 103.5 or 57.4%, respectively, in the presence or absence of acetate. Pyruvate production by the mutant strain CCTCC M202019 reached 68.7 g l(-1) at 62 h (yield on glucose of 0.651 g g(-1)) in a 7-l jar fermentor. CONCLUSIONS: The increased pyruvate yield in T. glabrata CCTCC M202019 was due to a balanced manipulation of the PDH bypass, where the shortage of cytoplasmic acetyl-CoA caused by the decreased activity of PDC was properly compensated by the increased activity of ACS. SIGNIFICANCE AND IMPACT OF THE STUDY: Manipulating the PDH bypass may provide an alternative approach to enhance the production of glycolysis-related metabolites.  相似文献   

14.
Batch and continuous cultures were used to compare specific physiological features of the hyperthermophilic archaeon, Thermococcus litoralis (T(opt) of 85 degrees to 88 degrees C), to another fermentative hyperthermophile that reduces S degrees facultatively, that is, the bacterium Thermotoga maritima (T(opt) of 80 degrees to 85 degrees C). Under nutritionally optimal conditions, these two hyperthermophiles had similar growth yields on maltose and similar cell formula weights based on elemental analysis: CH(1.7)O(0. 7)N(0.2)S(0.006) for T. litoralis and CH(1.6)O(0.6)N(0.2)S(0.005) for T. maritima. However, they differed with respect to nitrogen source, fermentation product patterns, and propensity to form exopolysaccharides (EPS). T. litoralis could be cultured in the absence or presence of maltose on an amino acid-containing defined medium in which amino acids served as the sole nitrogen source. T. maritima, on the other hand, did not utilize amino acids as carbon, energy, or nitrogen sources, and could be grown in a similar defined medium only when supplemented with maltose and ammonium chloride. Not only was T. litoralis unable to utilize NH(4)Cl as a nitrogen source, its growth was inhibited at certain levels. At 1 g/L ( approximately 20 mM) NH(4)Cl, the maximum growth yield (Y(x/s(max))) for T. litoralis was reduced to 13 g cells dry weight (CDW)/mol glucose from 40 g CDW/mol glucose in media lacking NH(4)Cl. Alanine production increased with increasing NH(4)Cl concentrations and was most pronounced if growth on NH(4)Cl was carried out in an 80% H(2) atmosphere. In T. maritima cultures, which would not grow in an 80% H(2) atmosphere, alanine and EPS were produced at much lower levels, which did not change with NH(4)Cl concentration. EPS production rose sharply at high dilution rates for both organisms, such that maltose utilization plots were biphasic. Wall growth effects were also noted, because cultures failed to wash out at dilution rates significantly above maximum growth rates determined from batch growth experiments. This study illustrates the importance of effective cultivation methods for addressing physiological issues related to the growth of hyperthermophilic heterotrophs.  相似文献   

15.
营养条件对光滑球拟酵母发酵生产丙酮酸的影响   总被引:11,自引:2,他引:9  
丙酮酸是多种氨基酸、维生素及其它有用物质的重要前体,广泛应用于化工、制药及农用化学品工业。能够直接发酵生产丙酮酸的菌种主要有Acinetobacter[1],Enterobacter[2],Enterococcus[3],Escherichia[4],Agaricu?..  相似文献   

16.
The effect of nitrogen sources including yeast extract, peptone, soybean hydrolyzate and some inorganic nitrogen sources, as well as the nitrogen concentration on the fermentative production of pyruvate by Torulopsis glabrata WSH-IP12 was investigated. The addition of yeast extract greatly inhibited pyruvate accumulation, while peptone was shown to be the most favorable nitrogen source. In flask culture, 15 g l(-1) peptone was needed to consume 80 g l(-1) glucose with 23.4 g l(-1)of pyruvate accumulated. Pyruvate production was markedly dependent on the ratio of carbon to nitrogen (C:N), its production was improved by increasing the concentration of glucose and peptone proportionally and reduced by exclusively increasing the glucose concentration. In a glucose fed-batch culture, cell growth and pyruvate production slowed after 28 h. However, cell growth and pyruvate production recovered after further nitrogen, in the form of peptone and ammonium sulfate, was added to the culture. A final concentration of pyruvate of 54.5 g l(-1) was achieved at 64 h (yield to glucose consumed of 0.471 g g(-l)). By using aqueous ammonia instead of potassium hydroxide for pH control, 57.3 g l(-1) pyruvate with a yield of 0.498 g g(-1) was produced by 55 h. This result further indicates that nitrogen level plays an important role in the production of pyruvate.  相似文献   

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