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1.
以能够利用糖质原料产L-丝氨酸的谷氨酸棒杆菌(Corynebacterium glutamicum)SYPS-062 glyA基因为研究对象,比较cglutamicum SYPS-062与C.glutamicum模式菌株ATCC13032的glyA基因的异同。分别以SYPS-062及ATCC13032基因组为模板,利用PCR技术获得丝氨酸羟甲基转移酶编码基因glyA。核苷酸序列分析结果表明,来源于SYPS-062和ATCC13032的glyA基因片段全长均为1305bp,编码434个氨基酸,分子量为46.5kD,基因的同源性为99.54%,存在6个核苷酸的差异,引起一个氨基酸残基的突变。将获得的基因分别在大肠杆菌(Escherichia coli)BL21(DE3)中诱导表达。酶活测定结果显示,2种不同菌株来源的重组SHMT的比活力稍有差异,说明SYPS-062 glyA基因的差异对其表达产物SHMT蛋白构型及功能影响不大。提示对于C.glutamicum SYPS-062能够利用糖质原料产L-丝氨酸的机制解析应进一步从glyA基因的转录水平、翻译水平及胞内SHMT辅酶的供给情况等方面进行深入研究探讨。  相似文献   

2.
为阐明氨基脱氧分支酸合成酶(ADC合成酶)在Corynebacterium glutamicum SYPS-062体内积累L-丝氨酸过程中的作用,通过交叉PCR以及同源重组的方法敲除叶酸途径关键酶ADC合成酶的编码基因pabAB,构建了叶酸缺陷型菌株Corynebacterium glutamicum SYPS-062△pabAB,同时构建pabAB基因增强表达重组菌C.glutamicum SYPS-062(pJC Ⅰ-pabAB).分别考察了ADC合成酶对菌株生长的影响、对L-丝氨酸降解途径关键酶丝氨酸羟甲基转移酶(SHMT)的影响以及其对L-丝氨酸积累的影响.结果表明,与出发菌株相比,增强表达基因pabAB重组菌的ADC合成酶的酶活力提高了33%.SHMT酶的酶活力提高了30%,其最大比生长速率(μm)提高了48%,单位细胞产酸率(Yp/x)降低了36.2%;而敲除基因pabAB重组菌的ADC合成酶的酶活力降低了61%.SHMT酶的酶活力降低了20%,最大比生长速率降低了32%,单位细胞产酸率提高了12%.  相似文献   

3.
产L-丝氨酸菌株SYPS-062的鉴定及碳源对发酵的影响   总被引:1,自引:0,他引:1  
采用形态学、生理生化实验和16S rDNA序列分析的方法对从自然界中筛选得到的一株能直接利用糖质原料发酵生产L-丝氨酸菌株SYPS-062的分类地位进行了研究, 确定其为谷氨酸棒杆菌(Corynebacterium glutamicum)。同时考察了碳源对菌株SYPS-062发酵产L-丝氨酸的影响, 实验结果表明, 当蔗糖浓度为60 g/L时, 菌株SYPS-062生物量和L-丝氨酸的积累均达到最大值, 分别为8.1 g/L和6.6 g/L。  相似文献   

4.
L-缬氨酸是谷氨酸棒杆菌SYPS-062发酵生产L-丝氨酸的主要副产物.为减少L-缬氨酸的积累,利用基因重组技术敲除SYPS-062转氨酶B编码基因ilvE内部的987 bp核苷酸序列,构建了ilvE基因缺失突变株SYPS-062△ilvE.研究表明,重组菌ilvE基因的缺失直接导致了分支氨基酸(Val、Ile、Leu)的合成能力的降低,影响了菌体的生长,其中Ile成为生长限制性因子,在培养基中添加分支氨基酸能明显促进其生长.重组菌培养96 h,发酵液中L-缬氨酸含量低于0.5 g/L,与出发菌株相比,其生成率降低90%.  相似文献   

5.
研究了VB1,生物素,VB6,VB2,叶酸和VB12对一株谷氨酸棒杆菌(Corynebacterium glutamicum)SYPS-062直接利用糖质原料发酵生产L-丝氨酸的影响,并且初步分析了这几种维生素对菌株SYPS-062发酵积累L-丝氨酸的调控机制。添加一定量的生物素,VB1和VB6表现出对L-丝氨酸积累分别为35%,28%和11%的促进;添加VB2实现了L-丝氨酸和生物量的等幅提高;而叶酸和VB12则通过促进菌株SYPS-062中1C单元循环的效率使L-丝氨酸的积累量分别提高了39%和82%,并且实现了产物转化率(YP/S)及单位细胞产率(YP/X)的显著提高。将六种维生素在其分别的最优浓度下复配,添加在发酵培养基中,结果发现发酵周期有6 h左右的缩短,并且达到的最大生物量及L-丝氨酸的积累分别为11 g/L和9.0 g/L。  相似文献   

6.
分别以高产L-丝氨酸的谷氨酸棒杆菌(Corynebacterium glutamicum)SYPS-062与模式菌株谷氨酸棒杆菌(Corynebacterium glutamicum) ATCC 13032的基因组DNA为模板,运用PCR技术扩增出氨基脱氧分支酸合成酶(ADC synthase)的编码基因pabAB。实验结果表明:来源于SYPS-062和ATCC 13032的pabAB片段全长均为1863bp,编码620个氨基酸。两片段存在16个碱基的差异,引起了7个氨基酸的突变。将pabAB连接表达载体pET-28a(+),构建表达质粒pET-28a-pabAB,并转化E.coli BL21(DE3),在IPTG诱导下,E.coli BL21(DE3)(pET-28a-pabAB)高效表达分子量约为67kDa的可溶性蛋白。表达产物带有His-tag标记,选用Ni柱对表达产物进行纯化,纯化后酶活测定结果表明,来源于SYPS-062氨基脱氧分支酸合成酶的比酶活低于ATCC 13032达46.6%。  相似文献   

7.
以一株由自然界筛选获得的能够利用糖质原料直接产L-丝氨酸的谷氨酸棒杆菌Corynebacterium glutamicum SYPS-062为研究对象,考察了一碳单元循环中的辅因子—叶酸和维生素B12对菌株生长、蔗糖消耗及L-丝氨酸生成的影响,同时对处于对数生长期的菌株进行了代谢流量分析。结果发现,添加扰动因子叶酸和维生素B12对磷酸戊糖途径(HMP)碳流影响较大,碳源主要用于细胞生长及合成能量,而流向目的产物L-丝氨酸的碳流减少。同时在添加维生素B12时,增大了G3P节点的L-丝氨酸合成途径的分流比,但造成三羧酸循环(TCA)的流量不足,需要大量回补,从而限制了产物合成速率的进一步提高。  相似文献   

8.
M.sp.SDM11是一株能以甲醇为唯一碳源生长的细菌,初步发酵检测发现能转化甘氨酸为L-丝氨酸。QscR基因产物是甲基营养菌中丝氨酸循环的一个转录调控关键因子,根据在GenBank中已报道的QscR基因序列(登录号:NC_012988.1)设计引物,以M.sp.SDM11的染色体DNA为模板,利用PCR扩增得到一大小为987 bp的QscR基因,将该基因克隆到广泛宿主载体pLAFR3上,在帮助质粒pRK2013的介导下,利用三亲本结合使其导入到菌株SDM11中构建重组菌株SDM12。对SDM12进一步研究发现,重组菌株中与L-丝氨酸合成相关的关键酶丝氨酸羟甲基还原酶(SHMT)的酶活比野生型菌株SDM11要低,约为野生型菌株的70%左右,另一个酶——羟基丙酮酸还原酶(HPR)的酶活力也只有野生型的75%。进一步将菌株进行产L-丝氨酸研究,结果表明,重组菌的产L-丝氨酸能力也明显降低,约为野生型菌株的67%左右。  相似文献   

9.
sga基因是大多数Methylobacterium sp.中丝氨酸循环途径里的一个关键酶基因,与单碳化合物的同化及二碳化合物的代谢有着密切的关系. 根据已报道的M.extorquens AM1的sga基因序列,合成寡核苷酸引物,用本实验室保存的甲醇利用菌M.sp. MB200的染色体DNA为模板,通过PCR方法扩增出sga基因,测序分析表明该基因与M.extorquens AM1的sga基因在核苷酸水平上有93%的同源性,氨基酸水平上具有85%的同源性.利用自杀质粒pK18mob构建含有sga基因部分片段的重组质粒,通过三亲本结合后导入原始菌株MB200中,经过进一步同源单交换, sga基因被pK18mob插入突变,利用PCR和Southern杂交进行验证, 选择发生正向突变的突变株MB200sTB用于进一步研究分析.分析结果表明突变菌株的丝氨酸乙醛酸氨基转移酶(SGAT)的酶活性消失,同时失去了在以甲醇为唯一碳源的培养基上生长的能力,不能再合成L-丝氨酸, 但仍能以二碳化合物和多碳化合物进行生长.  相似文献   

10.
【目的】L-缬氨酸生物合成的前体物质是丙酮酸。为了增加磷酸烯醇式丙酮酸向丙酮酸的代谢流向,优化L-缬氨酸前体物质的供应,以一株积累L-缬氨酸的谷氨酸棒杆菌V1(Corynebacterium glutamicum V1)为对象,构建磷酸烯醇式丙酮酸羧化酶(PEPC)基因敲除的重组菌株C.glutamicum V1-Δpepc,并研究pepc敲除后菌株生理特性的改变。【方法】运用交叉PCR方法得到pepc基因内部缺失的同源片段Δpepc,并构建敲除质粒pK18mobsacB-Δpepc。利用同源重组技术获得pepc基因缺陷突变株C.glutamicum V1-Δpepc。采用摇瓶发酵对C.glutamicum V1-Δpepc进行发酵特性的研究。对谷氨酸棒杆菌模式菌株C.glutamicum ATCC 13032、出发菌株C.glutamicum V1和敲除菌株C.glu-tamicum V1-Δpepc的丙酮酸激酶(Pyruvate kinase,PK)、丙酮酸脱氢酶(Pyruvate dehydro-genase,PDH)、丙酮酸羧化酶(Pyruvate carboxylase,PC)分别进行测定和分析。【结果】PCR验证以及PEPC酶活测定都表明筛选到pepc缺陷的突变菌株C.glutamicum V1-Δpepc,摇瓶发酵结果表明,突变菌株C.glutamicum V1-Δpepc不再积累L-缬氨酸而是积累L-精氨酸达到7.48 g/L。酶活测定结果表明出发菌株的PDH和PC酶活均低于模式菌株C.glu-tamicum ATCC13032和重组菌株C.glutamicum V1-Δpepc,出发菌株的PK与PEPC酶活与模式菌株没有较大的差异。【结论】研究表明,通过切断PEPC参与的三羧酸循环的回补途径,增加磷酸烯醇式丙酮酸向丙酮酸的流向使丙酮酸向TCA循环的流量增加,精氨酸的累积量提高。同时,以丙酮酸为前体的L-缬氨酸和丙氨酸的积累量降低。  相似文献   

11.
Despite its key position in central metabolism, L-serine does not support the growth of Corynebacterium glutamicum. Nevertheless, during growth on glucose, L-serine is consumed at rates up to 19.4 +/- 4.0 nmol min(-1) (mg [dry weight])(-1), resulting in the complete consumption of 100 mM L-serine in the presence of 100 mM glucose and an increased growth yield of about 20%. Use of 13C-labeled L-serine and analysis of cellularly derived metabolites by nuclear magnetic resonance spectroscopy revealed that the carbon skeleton of L-serine is mainly converted to pyruvate-derived metabolites such as L-alanine. The sdaA gene was identified in the genome of C. glutamicum, and overexpression of sdaA resulted in (i) functional L-serine dehydratase (L-SerDH) activity, and therefore conversion of L-serine to pyruvate, and (ii) growth of the recombinant strain on L-serine as the single substrate. In contrast, deletion of sdaA decreased the L-serine cometabolism rate with glucose by 47% but still resulted in degradation of L-serine to pyruvate. Cystathionine beta-lyase was additionally found to convert L-serine to pyruvate, and the respective metC gene was induced 2.4-fold under high internal L-serine concentrations. Upon sdaA overexpression, the growth rate on glucose is reduced 36% from that of the wild type, illustrating that even with glucose as a single substrate, intracellular L-serine conversion to pyruvate might occur, although probably the weak affinity of L-SerDH (apparent Km, 11 mM) prevents substantial L-serine degradation.  相似文献   

12.
Xu  Guoqiang  Jin  Xuexia  Guo  Wen  Dou  Wenfang  Zhang  Xiaomei  Xu  Zhenghong 《Annals of microbiology》2015,65(2):929-935
The direct fermentative production of l-serine from renewable biomass using Corynebacterium glutamicum is attracting increasing attention. In this study, wild-type C. glutamicum SYPS-062 produced up to 6.65 ± 0.23 g/L l-serine; to further improve l-serine production, the serA gene was cloned, and the C-terminal domain of 3-phosphoglycerate dehydrogenase (PGDH) from this strain was truncated. When expressed in Escherichia coli, the resultant mutein SerAΔ197 showed a specific PGDH activity of 1.092 ± 0.05 U/mg protein, representing a decrease of 25.87 % from that encoded by serA, and was no longer sensitive to high concentrations of l-serine. When serA Δ591 was overexpressed in C. glutamicum SYPS-062, the activity of PGDH in C. glutamicum pJC1-tac-serA Δ591 increased by 47.72 %, and the resultant strain C. glutamicum pJC1-tac-serA Δ591 could accumulate 7.69 ± 0.22 g/L l-serine. Furthermore, when serA Δ591 was overexpressed in C. glutamicum SYPS-062ΔsdaA, the resultant strain could accumulate 8.84 ± 0.23 g/L l-serine at 102 h, and the yield of l-serine on cells (Y p/x) improved by 60 % when compared with that noted in the control. These results demonstrate that l-serine production in C. glutamicum SYPS-062 could be improved by overexpressing a C-terminal truncation of PGDH in combination with other genetic modifications.  相似文献   

13.
Although L-serine proceeds in just three steps from the glycolytic intermediate 3-phosphoglycerate, and as much as 8% of the carbon assimilated from glucose is directed via L-serine formation, previous attempts to obtain a strain producing L-serine from glucose have not been successful. We functionally identified the genes serC and serB from Corynebacterium glutamicum, coding for phosphoserine aminotransferase and phosphoserine phosphatase, respectively. The overexpression of these genes, together with the third biosynthetic serA gene, serA(delta197), encoding an L-serine-insensitive 3-phosphoglycerate dehydrogenase, yielded only traces of L-serine, as did the overexpression of these genes in a strain with the L-serine dehydratase gene sdaA deleted. However, reduced expression of the serine hydroxymethyltransferase gene glyA, in combination with the overexpression of serA(delta197), serC, and serB, resulted in a transient accumulation of up to 16 mM L-serine in the culture medium. When sdaA was also deleted, the resulting strain, C. glutamicum delta sdaA::pK18mobglyA'(pEC-T18mob2serA(delta197)CB), accumulated up to 86 mM L-serine with a maximal specific productivity of 1.2 mmol h(-1) g (dry weight)(-1). This illustrates a high rate of L-serine formation and also utilization in the C. glutamicum wild type. Therefore, metabolic engineering of L-serine production from glucose can be achieved only by addressing the apparent key position of this amino acid in the central metabolism.  相似文献   

14.
Pyruvate kinase (PYK) is an important enzyme in the intermediary metabolism and has attracted much attention as a target for metabolic engineering of Corynebacterium glutamicum. Genome sequencing revealed that the 308 residue of PYK was mutated from methionine in model strain C. glutamicum ATCC14067 to isoleucine in L-serine-producing strain C. glutamicum SYPS-062. Consequently, a significantly lower PYK activity (77%) was noted in C. glutamicum SYPS-062, when compared with that in C. glutamicum ATCC14067. To confirm the role of this point mutation, pyk in both C. glutamicum SYPS-062 and C. glutamicum SYPS-062-33aΔSSAA was reversely mutated to restore the PYK enzyme activity, which led to a 33.1% and 28.8% decrease in L-serine titer, respectively. This is the first report to show that the (Met-308→Ile) mutation site of pyk is closely associated with its activity and apparently affected L-serine production. Furthermore, pyk was deleted in strain C. glutamicum SYPS-062-33aΔSSAA, and the resulting strain did not show alteration in growth rate and presented a 12% increase in L-serine production.  相似文献   

15.
Li Y  Chen GK  Tong XW  Zhang HT  Liu XG  Liu YH  Lu FP 《Biotechnology letters》2012,34(8):1525-1530
L-Serine is usually produced from glycine. We have genetically engineered Escherichia coli to produce L-serine from glucose intracellularly. D-3-Phosphoglycerate dehydrogenase (PGDH, EC 1.1.1.95) in E. coli catalyzes the first committed step in L-serine formation but is inhibited by L-serine. To overcome this feedback inhibition, both the His(344) and Asn(346) residues of PGDH were converted to alanine and the mutated PGDH (PGDH(dr)) became insensitive to L-serine. However, overexpression of PGDH(dr) gave no significant increase of L-serine accumulation but, when L-serine deaminase genes (sdaA, sdaB and tdcG) were deleted, serine accumulated: (1) deletion of sdaA gave up to 0.03 mmol L-serine/g; (2) deletion of both sdaA and sdaB accumulated L-serine up to 0.09 mmol/g; and (3) deletion of sdaA, sdaB and tdcG gave up to 0.13 mmol L-serine/g cell dry wt.  相似文献   

16.
目的:克隆酮古龙酸菌Y25的山梨醇脱氢酶基因sldh,在大肠杆菌中进行表达并检测表达产物的活性。方法:以酮古龙酸菌Y25基因组DNA为模板,PCR扩增sldh基因,连接到表达载体pTIG,转入大肠杆菌BL21(DE3),IPTG诱导表达;取表达菌体、菌体裂解上清和沉淀进行SDS-PAGE分析;以山梨醇为底物,通过活性电泳、体外转化及休止细胞转化进行sldh基因表达产物的活性检测。结果:扩增得到1740 bp的山梨醇脱氢酶基因,构建了表达质粒pTIG-sldh并在大肠杆菌中获得表达,SDS-PAGE结果显示表达产物为可溶性形式,相对分子质量约58×10^3;活性电泳结果说明表达产物在以山梨醇为底物时表现出脱氢酶活性,而经体外转化和休止细胞转化后薄层层析检测出转化产物山梨糖的存在。结论:在大肠杆菌中实现了酮古龙酸菌山梨醇脱氢酶的可溶性表达,且表达的重组脱氢酶能将山梨醇脱氢生成山梨糖。  相似文献   

17.
旨在构建植原体免疫主导膜蛋白Imp基因原核表达载体,并进行初步表达。以重组克隆质粒pMD18-T-Imp为模板,PCR扩增Imp基因片段。构建表达载体pET-28a(+)-Imp,转化宿主菌E.coliBL21(DE3)。筛选阳性克隆,提取重组质粒作PCR鉴定、酶切鉴定及IPTG诱导表达鉴定。PCR及双酶切结果显示,重组质粒pET-28a(+)-Imp构建成功。经IPTG诱导BL21(pET-28a(+)-Imp)表达约20 kD的蛋白,与预期的携带6×His-Tag的目的蛋白(19.5 kD)大小相符,主要以包涵体形式存在。结果显示,构建的表达载体pET-28a(+)-Imp在E.coliBL21(DE3)中能够达一定量表达,为进一步纯化Imp蛋白奠定基础。  相似文献   

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