首页 | 本学科首页   官方微博 | 高级检索  
相似文献
 共查询到18条相似文献,搜索用时 156 毫秒
1.
采用双载体系统,将携带有瑞氏木霉木糖醇脱氢酶基因的表达质粒pAJ401-Xdh1转化已带有树干毕赤氏酵母木糖还原酶基因的重组酿酒酵母H475,构建了同时带有毕赤氏酵母木糖还原酶基因和瑞氏木霉木糖醇脱氢酶基因的重组酿酒酵母HX1。研究了重组酿酒酵母HX1对木糖的转化利用情况。  相似文献   

2.
汪天虹 Rent.  M 《菌物系统》1999,18(3):311-315
采用双载体系统,将携带有瑞氏木霉木糖醇脱氢酶基因的表达质粒pAJ401-xdh1转化已带有树干毕赤氏酵母木糖还原酶基因的重组酿酒酵母H475,构建了同时带有毕赤氏酵母木糖还原酶基因和瑞氏木霉木产基因的重组酿酒酵母HX1,研究了重组酿酒酵母HX1对木听转化利用情况。  相似文献   

3.
用20种不同的碳源(包括单一碳源和混合碳源)分别培养瑞氏木霉(Trichoderma reesei)QM9414。通过一系列Northern杂交分析检测瑞氏木霉木糖还原酶(XR),木糖醇脱氢酶(XDH)以及转醛醇酶(TAL)mRNA的表达情况。实验结果证实,槐糖和木二糖是xr和xdh表达的强诱导物,阿拉伯糖和乳糖也有较强的诱导作用。葡萄糖在培养基中的存在阻遏该二基因的表达。当葡萄糖耗尽以后,培养基中不存在任何诱导物的情况下,xr和xdh以一定的基础水平进行转录。相比较,tal基因在每种碳源上都是强表达。  相似文献   

4.
为使酿酒酵母(Saccharomyces cerevisiae)YS58代谢木糖产乙醇,采用PCR方法克隆得到树干毕赤酵母(Pichia stipitis)木糖醇脱氢酶基因xyl2,并将该基因和克隆得到的休哈塔假丝酵母(Candida shehatae)缺终止子的木糖还原酶基因xyt1一起连接到酵母表达载体pYES2的强启动子GAL下,得到融合表达载体pYES2-P12。通过醋酸锂转化的方法将pY- ES2-P12转入S.Cerevisiae YS5  相似文献   

5.
里氏木霉内切葡萄糖苷酶Ⅳ在毕赤酵母中的表达*   总被引:2,自引:0,他引:2  
进行了内切葡萄糖苷酶Ⅳ(EGⅣ)在毕赤酵母(Pichia pastoris)表达系统中的表达。采用RT-PCR的方法从里氏木霉(Trichoderma reesei)中分离到eg4基因。将eg4基因与毕赤酵母表达载体pPICZαA连接,得到重组质粒pPICZαA-eg4。将该重组质粒线性化后转化毕赤酵母GS115,eg4基因通过同源重组被整合到毕赤酵母的染色体上,并处于酵母α因子的下游,得到重组菌株P.pastoris-EGⅣ1。在甲醇  相似文献   

6.
在导入表达毕赤酵母(Pichia stipitis)木糖还原酶(xylose reductase,XR)和木糖醇脱氢酶(xylitol dehydrogenase,XDH)基因的重组酿酒酵母中,木糖还原酶活性主要依赖辅酶NADPH,木糖醇脱氢酶活性依赖辅酶 NAD+,两者的辅助因子不同导致细胞内电子氧化还原的不平衡,是造成木糖醇积累,影响木糖代谢和乙醇产量的主要原因之一.将经过基因工程改造获得的NADH高亲和力的木糖还原酶突变基因m1,与毕赤酵母木糖醇脱氢酶(PsXDH)基因xyl2共转染酿酒酵母AH109,以转染毕赤酵母木糖还原酶(PsXR)基因xyl1和xyl2重组质粒的酵母细胞为对照菌株,在SC/-Leu/-Trp营养缺陷型培养基中进行筛选,获得的阳性转化子分别命名为AH-M-XDH和AH-XR-XDH.重组酵母在限制氧通气条件下对木糖和葡萄糖进行共发酵摇瓶培养,HPLC检测发酵底物的消耗和代谢产物的产出情况.结果显示,与对照菌株AH-XR-XDH相比,AH-M-XDH的木糖利用率明显提高,乙醇得率增加了16%,木糖醇产生下降了41.4%.结果证实,通过基因工程改造的木糖代谢关键酶,可用于酿酒酵母发酵木糖生产乙醇,其能通过改善酿酒酵母细胞内氧化还原失衡的问题,提高木糖利用率和乙醇产率.  相似文献   

7.
木糖醇脱氢酶(xylitol dehydrogenase, XDH)可以氧化木糖醇生成木酮糖,处于木糖代谢的节点位置。利用PCR方法克隆得到了休哈塔假丝酵母(Candida shehatae) 20335的木糖醇脱氢酶基因、质粒pKT0150的ADH1终止子序列和G418抗性基因(KanR),以及酿酒酵母(Saccharomyces cerevisiae) W5特定的2.2 kb的rDNA片段。以酿酒酵母整合载体p406ADH1为骨架,利用基因工程手段构建一个多拷贝整合表达载体pLX-AGRX。将重组载体pLX-AGRX线性化转入到酿酒酵母W5后,通过高浓度G418筛选和PCR双重鉴定,证实重组载体pLX-AGRX已整合到酿酒酵母W5基因组上,测定木糖醇脱氢酶酶活可达65.957 4 U/mg。  相似文献   

8.
利用RT-PCR的方法,以特异腐质霉(Humicolainsolens)H31-3总RNA为模板,克隆到中性内切葡聚糖酶Ⅱ基因egl2的cDNA,将其插入到表达载体pGAPZαA中,重组质粒经线性化,电击转化毕赤酵母(Pichiapastoris)菌株GS115,筛选到分泌表达重组EGⅡ的毕赤酵母工程菌株。SDS-PAGE检测结果表明,重组EGⅡ在酵母中得到了特异性表达,表达产物的表观分子量约为55kD,同时对工程菌株的发酵条件和重组EGⅡ的性质进行了初步研究。  相似文献   

9.
在酿酒酵母中分别引入真菌和细菌的木糖代谢关键酶,木糖还原酶基因XYL1、木糖醇脱氢酶基因XYL2和木糖异构酶基因xylA. 并在此基础上以共转化策略超表达下游关键酶木酮糖激酶基因XKS1. 与亲本菌株相比,用pMA91和YEp24质粒表达XKS1的重组菌株,木酮糖激酶(xylulokinase,XK)活性分别提高了14和6.7倍. 在限氧条件下,重组菌株对木糖和葡萄糖的共发酵结果显示,表达XYL1,XYL2以及XKS1的重组菌株HSXY-251木糖消耗为12.4 g/L,提高了120.9%,乙醇产量达到9.4 g/L,提高了36%,副产物木糖醇产量为0.7 g/L,下降了84.9%.  相似文献   

10.
瑞氏木霉表达黑曲霉葡萄糖氧化酶   总被引:8,自引:0,他引:8  
利用高表达分泌纤维素酶的真菌瑞氏木霉表达重组的黑曲霉葡萄糖氧化酶。在大肠杆菌DH5α中构建瑞氏木霉纤维素酶CBHI启动子和CBHI信号肽基因黑曲霉葡萄糖氧化酶基因瑞氏木霉纤维素酶CBHI终止子构巢曲霉的甘油醛3磷酸脱氢酶启动子大肠杆菌抗潮霉素B磷酸转移酶基因构巢曲霉色氨酸C终止子pUC19(命名为pCBHGOD)质粒,线性化后用瑞氏木霉纤维素酶CBHI启动子和CBHI信号肽基因黑曲霉葡萄糖氧化酶基因瑞氏木霉纤维素酶CBHI终止子构巢曲霉的甘油醛3磷酸脱氢酶启动子大肠杆菌抗潮霉素B磷酸转移酶基因构巢曲霉色氨酸C终止子(命名为CBHGOD)核酸片段转化瑞氏木霉QM9414原生质体。用PCR扩增方法筛选出同源重组葡萄糖氧化酶基因的瑞士木霉突变株。用麦杆诱导瑞氏木霉突变株,生产黑曲霉葡萄糖氧化酶,Westernblot分析重组的葡萄糖氧化酶分子量与Sigma公司的天然黑曲霉葡萄糖氧化酶一致,生产的重组酶活性25umL,相当于Sigma公司葡萄糖氧化酶标准品的产量为0.5gL。瑞氏木霉可用于生产黑曲霉葡萄糖氧化酶。  相似文献   

11.
Effects of reversal coenzyme specificity toward NADP+ and thermostabilization of xylitol dehydrogenase (XDH) from Pichia stipitis on fermentation of xylose to ethanol were estimated using a recombinant Saccharomyces cerevisiae expressing together with a native xylose reductase from P. stipitis. The mutated XDHs performed the similar enzyme properties in S. cerevisiae cells, compared with those in vitro. The significant enhancement(s) was found in Y-ARSdR strain, in which NADP+-dependent XDH was expressed; 86% decrease of unfavorable xylitol excretion with 41% increased ethanol production, when compared with the reference strain expressing the wild-type XDH.  相似文献   

12.
AIMS: To determine the effects on xylitol accumulation and ethanol yield of expression of mutated Pichia stipitis xylitol dehydrogenase (XDH) with reversal of coenzyme specificity in recombinant Saccharomyces cerevisiae. METHODS AND RESULTS: The genes XYL2 (D207A/I208R/F209S) and XYL2 (S96C/S99C/Y102C/D207A/I208R/F209S) were introduced into S. cerevisiae, which already contained the P. stipitis XYL1 gene (encoding xylose reductase, XR) and the endogenously overexpressed XKS1 gene (encoding xylulokinase, XK). The specific activities of mutated XDH in both strains showed a distinct increase in NADP(+)-dependent activity in both strains with mutated XDH, reaching 0.782 and 0.698 U mg(-1). In xylose fermentation, the strain with XDH (D207A/I208R/F209S) had a large decrease in xylitol and glycerol yield, while the xylose consumption and ethanol yield were decreased. In the strain with XDH (S96C/S99C/Y102C/D207A/I208R/F209S), the xylose consumption and ethanol yield were also decreased, and the xylitol yield was increased, because of low XDH activity. CONCLUSIONS: Changing XDH coenzyme specificity was a sufficient method for reducing the production of xylitol, but high activity of XDH was also required for improved ethanol formation. SIGNIFICANCE AND IMPACT OF THE STUDY: The difference in coenzyme specificity was a vital parameter controlling ethanolic xylose fermentation but the XDH/XR ratio was also important.  相似文献   

13.
Efficient conversion of xylose to ethanol is an essential factor for commercialization of lignocellulosic ethanol. To minimize production of xylitol, a major by-product in xylose metabolism and concomitantly improve ethanol production, Saccharomyces cerevisiae D452-2 was engineered to overexpress NADH-preferable xylose reductase mutant (XR(MUT)) and NAD?-dependent xylitol dehydrogenase (XDH) from Pichia stipitis and endogenous xylulokinase (XK). In vitro enzyme assay confirmed the functional expression of XR(MUT), XDH and XK in recombinant S. cerevisiae strains. The change of wild type XR to XR(MUT) along with XK overexpression led to reduction of xylitol accumulation in microaerobic culture. More modulation of the xylose metabolism including overexpression of XR(MUT) and transaldolase, and disruption of the chromosomal ALD6 gene encoding aldehyde dehydrogenase (SX6(MUT)) improved the performance of ethanol production from xylose remarkably. Finally, oxygen-limited fermentation of S. cerevisiae SX6(MUT) resulted in 0.64 g l?1 h?1 xylose consumption rate, 0.25 g l?1 h?1 ethanol productivity and 39% ethanol yield based on the xylose consumed, which were 1.8, 4.2 and 2.2 times higher than the corresponding values of recombinant S. cerevisiae expressing XR(MUT), XDH and XK only.  相似文献   

14.
The baker's yeast Saccharomyces cerevisiae is generally classified as a non-xylose-utilizing organism. We found that S. cerevisiae can grow on D-xylose when only the endogenous genes GRE3 (YHR104w), coding for a nonspecific aldose reductase, and XYL2 (YLR070c, ScXYL2), coding for a xylitol dehydrogenase (XDH), are overexpressed under endogenous promoters. In nontransformed S. cerevisiae strains, XDH activity was significantly higher in the presence of xylose, but xylose reductase (XR) activity was not affected by the choice of carbon source. The expression of SOR1, encoding a sorbitol dehydrogenase, was elevated in the presence of xylose as were the genes encoding transketolase and transaldolase. An S. cerevisiae strain carrying the XR and XDH enzymes from the xylose-utilizing yeast Pichia stipitis grew more quickly and accumulated less xylitol than did the strain overexpressing the endogenous enzymes. Overexpression of the GRE3 and ScXYL2 genes in the S. cerevisiae CEN.PK2 strain resulted in a growth rate of 0.01 g of cell dry mass liter(-1) h(-1) and a xylitol yield of 55% when xylose was the main carbon source.  相似文献   

15.
The traditional ethanologenic yeast Saccharomyces cerevisiae cannot metabolize xylose, which is an abundant sugar in non-crop plants. Engineering this yeast for a practicable fermentation of xylose will therefore improve the economics of bioconversion for the production of fuels and chemicals such as ethanol. One of the most widely employed strategies is to express XYL1, XYL2, and XYL3 genes derived from Scheffersomyces stipitis (formerly Pichia stiptis) in S. cerevisiae. However, the resulting engineered strains have been reported to exhibit large variations in xylitol accumulation and ethanol yields, generating many hypotheses and arguments for elucidating these phenomena. Here we demonstrate that low expression levels of the XYL2 gene, coding for xylitol dehydrogenase (XDH), is a major bottleneck in efficient xylose fermentation. Through an inverse metabolic engineering approach using a genomic library of S. cerevisiae, XYL2 was identified as an overexpression target for improving xylose metabolism. Specifically, we performed serial subculture experiments after transforming a genomic library of wild type S. cerevisiae into an engineered strain harboring integrated copies of XYL1, XYL2 and XYL3. Interestingly, the isolated plasmids from efficient xylose-fermenting transformants contained XYL2. This suggests that the integrated XYL2 migrated into a multi-copy plasmid through homologous recombination. It was also found that additional overexpression of XYL2 under the control of strong constitutive promoters in a xylose-fermenting strain not only reduced xylitol accumulation, but also increased ethanol yields. As the expression levels of XYL2 increased, the ethanol yields gradually improved from 0.1 to 0.3g ethanol/g xylose, while the xylitol yields significantly decreased from 0.4 to 0.1g xylitol/g xylose. These results suggest that strong expression of XYL2 is a necessary condition for developing efficient xylose-fermenting strains.  相似文献   

16.
Wang Y  Shi WL  Liu XY  Shen Y  Bao XM  Bai FW  Qu YB 《Biotechnology letters》2004,26(11):885-890
To produce an industrial strain of Saccharomyces cerevisiae that metabolizes xylose, we constructed a rDNA integration vector and YIp integration vector, containing the xylose-utilizing genes, XYL1 and XYL2, which encode xylose reductase (XR) and xylitol dehydrogenase (XDH) from Pichia stipitis, and XKS1, which encodes xylulokinase (XK) from S. cerevisiae, with the G418 resistance gene KanMX as a dominant selectable marker. The rDNA results in integration of multiple copies of the target genes. The industrial stain of S. cerevisiae NAN-27 was transformed with the two integration vectors to produce two recombinant strains, S. cerevisiae NAN-127 and NAN-123. Upon transformation, multiple copies of the xylose-utilizing genes were integrated into the genome rDNA locus of S. cerevisiae. Strain NAN-127 consumed twice as much xylose and produced 39% more ethanol than the parent strain, while NAN-123 consumed 10% more xylose and produced 10% more ethanol than the parent strain over 94 h.  相似文献   

17.
The recombinant xylose-fermenting Saccharomyces cerevisiae strain harboring xylose reductase (XR) and xylitol dehydrogenase (XDH) from Scheffersomyces stipitis requires NADPH and NAD(+), creates cofactor imbalance, and causes xylitol accumulation during growth on d-xylose. To solve this problem, noxE, encoding a water-forming NADH oxidase from Lactococcus lactis driven by the PGK1 promoter, was introduced into the xylose-utilizing yeast strain KAM-3X. A cofactor microcycle was set up between the utilization of NAD(+) by XDH and the formation of NAD(+) by water-forming NADH oxidase. Overexpression of noxE significantly decreased xylitol formation and increased final ethanol production during xylose fermentation. Under xylose fermentation conditions with an initial d-xylose concentration of 50 g/liter, the xylitol yields for of KAM-3X(pPGK1-noxE) and control strain KAM-3X were 0.058 g/g xylose and 0.191 g/g, respectively, which showed a 69.63% decrease owing to noxE overexpression; the ethanol yields were 0.294 g/g for KAM-3X(pPGK1-noxE) and 0.211 g/g for the control strain KAM-3X, which indicated a 39.33% increase due to noxE overexpression. At the same time, the glycerol yield also was reduced by 53.85% on account of the decrease in the NADH pool caused by overexpression of noxE.  相似文献   

18.
To enhance metabolite transfer in the two initial sequential steps of xylose metabolism in yeast, two structural genes of Pichia stipitis, XYL1 and XYL2 encoding xylose reductase (XR) and xylitol dehydrogenase (XDH), respectively, were fused in frame. Four chimeric genes were constructed, encoding fusion proteins with different orders of the enzymes and different linker lengths. These genes were expressed in Saccharomyces cerevisiae. The fusion proteins exhibited both XR and XDH activity when XYL1 was fused downstream of XYL2. The specific activity of the XDH part of the complexes increased when longer peptide linkers were used. Bifunctional enzyme complexes, analyzed by gel filtration, were found to be tetramers, hexamers, and octamers. No degradation products were detected by Western blot analysis. S. cerevisiae strains harboring the bifunctional enzymes grew on minimal-medium xylose plates, and oxygen-limited xylose fermentation resulted in xylose consumption and ethanol formation. When a fusion protein, containing a linker of three amino acids, was coexpressed with native XR and XDH monomers in S. cerevisiae, enzyme complexes consisting of chimerical and native subunits were formed. The total activity of these complexes showed XR and XDH activities similar to the activities obtained when the monomers were expressed individually. Strains which coexpressed chimerical subunits together with native XR and XDH monomers consumed less xylose and produced less xylitol. However, the xylitol yield was lower in these strains than in strains expressing only native XR and XDH monomers, 0.55 and 0.62, respectively, and the ethanol yield was higher. The reduced xylitol yield was accompanied by reduced glycerol and acetate formation suggesting enhanced utilization of NADH in the XR reaction.  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