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1.
【背景】四氢嘧啶类物质在高温、冷冻和干燥等逆境条件下,对酶、蛋白质、核酸及整个细胞具有良好的保护作用,已经应用于酶制剂、生物医药及护肤品等相关领域。目前此类物质只能依赖中度嗜盐菌采用细菌泌乳工艺进行商业化生产,因此四氢嘧啶类高产菌株及其发酵技术的研究日益受到国内外研究者关注。【目的】分离获得高产合成四氢嘧啶类相容性溶质的中度嗜盐细菌,研究渗透压冲击对其胞内四氢嘧啶合成与释放的影响,探索细菌泌乳法制备四氢嘧啶的可行性。【方法】采用涂布平板法分离中度嗜盐菌,对分离菌株进行形态、生理生化和16S rRNA基因序列分析,鉴定其种属;采用高效液相色谱法(HPLC)和质谱法(MS)分析四氢嘧啶类物质,细菌泌乳法制备四氢嘧啶类物质。【结果】从盐池土样中分离到一株以四氢嘧啶类物质为主要相容性溶质的中度嗜盐菌Y,鉴定为盐单胞菌(Halomonas sp.)Y。盐单胞菌Y能在NaCl质量浓度为10-250 g/L的培养基中生长,最适生长的NaCl浓度为100 g/L;HPLC-MS测试结果证明盐单胞菌Y可同时合成四氢嘧啶和羟基四氢嘧啶2种相容性溶质,在最适生长的盐浓度下其合成量分别达175.5 mg/g和47.9 mg/g;在NaCl质量浓度为0-30 g/L的低渗溶液中胞内四氢嘧啶类物质经5 min即可达到最大释放率,而细菌泌乳工艺中最适合诱导四氢嘧啶释放的低渗溶液为质量浓度为10 g/L的NaCl溶液;采用细菌泌乳工艺制备四氢嘧啶,经连续11轮的高渗/低渗冲击,四氢嘧啶总合成量为6.0 g/L,总释放量为5.7 g/L,平均释放率为64.5%,底物转化率为128.9 mg/g。【结论】盐单胞菌Y是一株较高产合成四氢嘧啶类的中度嗜盐菌,能够耐受反复的渗透压冲击,采用细菌泌乳工艺显著提高了四氢嘧啶的制备效率。  相似文献   

2.
选择耐受较高NaCl浓度,而且四氢嘧啶胞内浓度阈值较高的菌株,研究其四氢嘧啶发酵条件和工艺,对于提高四氢嘧啶的制备效率具有实际意义。考察了碳源、NaCl浓度、酵母膏添加量对Halomonas venustaDSM4743四氢嘧啶合成的影响,考察了优化条件下的四氢嘧啶分批发酵进程,并利用"细菌挤奶"工艺制备四氢嘧啶。结果表明:谷氨酸单钠为唯一碳氮源、NaCl浓度为1.5mol/L、酵母膏添加量为0.5%的条件有利于四氢嘧啶合成。在优化条件下10L发酵罐分批发酵,四氢嘧啶最大合成量为3.2g/L,合成效率为2.7g/(L.d)。通过"细菌挤奶"工艺制备四氢嘧啶,6个渗透压冲击循环后,四氢嘧啶总合成量为14.7g/L,总释放量为14.3g/L,平均释放率为97%,合成效率2.1g/(L.d)。中度嗜盐菌Halomonas venusta DSM4743耐受较高浓度的NaCl,而且四氢嘧啶胞内浓度阈值较高,优化的发酵条件及"细菌挤奶"工艺,获得了较高的四氢嘧啶制备效率。  相似文献   

3.
摘要:【目的】 为了研究耐盐放线菌对高盐环境的适应机理。【方法】 用HPLC定量检测了极端耐盐、丝状产孢放线菌——白色普氏菌(Prauserella alba) YIM 90005T在不同盐浓度下胞内相容性溶质的种类和含量。【结果】 结果发现,四氢嘧啶和5-羟基四氢嘧啶是其主要的相容性溶质。在培养基NaCl浓度为10%时,四氢嘧啶在胞内累积浓度最大,为18.77 μg/mg干菌体重。之后随NaCl浓度的升高,胞内的四氢嘧啶含量逐渐减少,而5-羟基四氢嘧啶的含量逐渐增加,在该菌耐受的最高NaCl浓度下(24% w/v),胞内5-羟基四氢嘧啶含量达到最大值,为22.98 μg/mg干菌体重。设计兼并引物,利用染色体步移,克隆得到四氢嘧啶及5-羟基四氢嘧啶合成相关基因ectABCD。序列分析表明,ectABCD位于一个操纵子中。进一步对不同NaCl浓度培养条件下ectB,D的表达量进行定量分析,结果表明该基因簇表达量随着培养基中NaCl浓度的增加而增大。【结论】 研究结果证实5-羟基四氢嘧啶是P. alba YIM 90005T在极高盐浓度条件下起渗透调节及保护的相容性溶质。  相似文献   

4.
徐蕊  张苓花 《微生物学报》2012,52(5):661-667
【目的】为进一步提高四氢嘧啶(1,4,5,6-四氢-2-甲基-4-嘧啶羧酸;1,4,5,6-tetrahydro-2-methyl-4-pyrimidinecarboxylic acid;ectoine)合成效率,【方法】利用步移PCR方法克隆了Halomonas salina DSM 5928T四氢嘧啶特异性转运蛋白(ectoine-specific transporter;TeaABC)编码基因teaABC,Red重组技术构建了四氢嘧啶吸收缺陷突变株H.salina DSM 5928T(teaABC-)。【结果】H.salina DSM 5928T(teaABC-)10 L发酵罐的四氢嘧啶发酵,四氢嘧啶总浓度9.10(±0.08)g/L,合成效率为9.93(±0.09)g/L.d。【结论】四氢嘧啶吸收缺陷突变株H.salina DSM 5928T(teaABC-),解除了四氢嘧啶吸收对其合成的负反馈调节,从而显著提高了四氢嘧啶合成效率。  相似文献   

5.
在嗜盐细菌盐适应中,四氢嘧啶(1,4,5,6-四氢-2-甲基-4-嘧啶羧酸)和羟基四氢嘧啶(1,4,5,6-四氢-2-甲基-5-羟基-4-嘧啶羧酸)发挥着十分重要的作用。四氢嘧啶的生物合成以L-天冬氨酸-β-半醛(ASA)为底物,依次由2,4-二氨基丁酸转氨酶(EctB),2,4-二氨基丁酸乙酰基转移酶(EctA)和四氢嘧啶合成酶(EctC)催化反应,分别生成L-2,4-二氨基丁酸(DABA),N-乙酰-L-2,4-二氨基丁酸(ADABA)和四氢嘧啶。羟基四氢嘧啶则由四氢嘧啶羟化酶(EctD)将四氢嘧啶羟基化产生。通常,四氢嘧啶合成基因以ectABC基因簇的形式存在,而羟基四氢嘧啶合成基因ectD单独存在。四氢嘧啶生物合成基因在微生物菌株和转基因经济作物中的表达可以提高其耐盐碱旱等抗逆能力,羟基四氢嘧啶合成基因的表达可以增强宿主耐热和耐干燥的能力。四氢嘧啶类相容性溶质的生物学功能及其潜在应用已成为前沿性研究热点。  相似文献   

6.
【背景】石化工业废水具有高盐含氮的特点,高盐度会对微生物代谢造成抑制,导致普通反硝化微生物难以在高盐环境下有效脱氮。【目的】筛选在高盐条件下仍能保持反硝化能力的菌株并研究其特性。【方法】富集筛选出一株耐盐反硝化细菌,对其进行生理生化特性和16S rRNA基因序列鉴定,对其生长条件进行优化并测定该菌株反硝化能力,对菌株在高盐环境下的产物进行定性定量分析。【结果】经鉴定菌株YA16-1为表皮短杆菌(Brevibacterium epidermidis),可对硝态氮进行反硝化作用,在盐度为3%、初始氮浓度为55 mg/L的条件下,18 h的硝态氮转化率达到97%;初始硝态氮浓度为250 mg/L时,24 h内硝态氮转化率达到100%。该菌株的最适生长条件为:2% NaCl,碳源为玉米芯粉,氮源为酵母粉,pH值为6.0,培养温度为30 ℃。菌株在盐度为2%-15%的培养基内生长良好。在15%盐度下,菌株通过产四氢嘧啶维持渗透压,产量为0.89 mg/mL。【结论】菌株YA16-1具有良好的耐盐能力和反硝化能力,在高盐废水处理、保护生态环境和四氢嘧啶的制备具有潜在的应用价值。  相似文献   

7.
中度嗜盐菌Bacillus alcalophilus DTY1分离自晋西北黄土高原盐碱土壤, 能够产生耐盐相关的相容性溶质四氢嘧啶。为了研究四氢嘧啶的功能, 克隆了DTY1菌株四氢嘧啶合成基因簇ectABC。ectA、ectB和ectC分别编码169、428和132个氨基酸的肽链, 分别与B. halodurans C-125中的二氨基丁酸乙酰基转移酶(EctA)、二氨基丁酸氨基转移酶(EctB)、四氢嘧啶合成酶(EctC)同源性达59%、81%和81%。将携带该基因簇的4.0 kb片段转入蜡质芽孢杆菌B. cereus Z后, 芽孢杆菌的耐盐度显著提高。HPLC检测发现, 在1.0% NaCl浓度下, 转化菌B. cereus Z-E菌株生成70.1 mg/g四氢嘧啶, 而在5.0%的NaCl浓度下四氢嘧啶的产量高达118.6 mg/g, 显著高于B. alcalophilus DTY1的四氢嘧啶产量。而且随着盐浓度的提高, 四氢嘧啶的合成量也随之提高。由此证明四氢嘧啶参与中度嗜盐菌重要的渗透调节, ectABC的表达受盐诱导。  相似文献   

8.
中度嗜盐菌Bacillus alcalophilus DTY1分离自晋西北黄土高原盐碱土壤, 能够产生耐盐相关的相容性溶质四氢嘧啶。为了研究四氢嘧啶的功能, 克隆了DTY1菌株四氢嘧啶合成基因簇ectABC。ectA、ectB和ectC分别编码169、428和132个氨基酸的肽链, 分别与B. halodurans C-125中的二氨基丁酸乙酰基转移酶(EctA)、二氨基丁酸氨基转移酶(EctB)、四氢嘧啶合成酶(EctC)同源性达59%、81%和81%。将携带该基因簇的4.0 kb片段转入蜡质芽孢杆菌B. cereus Z后, 芽孢杆菌的耐盐度显著提高。HPLC检测发现, 在1.0% NaCl浓度下, 转化菌B. cereus Z-E菌株生成70.1 mg/g四氢嘧啶, 而在5.0%的NaCl浓度下四氢嘧啶的产量高达118.6 mg/g, 显著高于B. alcalophilus DTY1的四氢嘧啶产量。而且随着盐浓度的提高, 四氢嘧啶的合成量也随之提高。由此证明四氢嘧啶参与中度嗜盐菌重要的渗透调节, ectABC的表达受盐诱导。  相似文献   

9.
[目的]分离鉴定古盐井中的嗜盐菌,确定相容性溶质,增加相容性溶质的合成。[方法]从盐井卤水中分离嗜盐菌,对菌株进行形态、生理生化和16S rRNA分析,用高效液相色谱法(HPLC)和质谱法(MS)确定相容性溶质,以谷氨酸钠为唯一碳氮源来制备四氢嘧啶。[结果]菌株S2为色盐杆菌属;相容性溶质为四氢嘧啶; 1. 5 mol/L Na Cl时四氢嘧啶达到最适合成浓度,为0. 168 3 mg/mL,单位质量合成量为238. 201 mg/g;以谷氨酸钠为唯一碳氮源时,相同体积发酵液中四氢嘧啶的总合成量与单位质量合成量均增加,四氢嘧啶合成量为0. 184 8 mg/mL,单位质量合成量为390. 389 mg/g。[结论]成功分离出了产四氢嘧啶的嗜盐菌,并且以谷氨酸钠为唯一碳氮源时四氢嘧啶合成量大大增加。  相似文献   

10.
研究旨在克隆新的四氢嘧啶合成基因簇,并对其功能进行鉴定,为应用于四氢嘧啶的生产奠定基础。从新喀里多尼亚弧菌CGJ02-2中克隆获得四氢嘧啶合成基因簇ectABC,ectABC与表达载体pBAD连接后转化至大肠杆菌BW25113中,通过L-阿拉伯糖诱导表达。采用SDS-PAGE和液质联用鉴定重组表达蛋白,利用全细胞催化合成四氢嘧啶,通过高分辨质谱鉴定四氢嘧啶,并从天冬氨酸浓度、KCl浓度、温度和pH 4个方面优化催化条件。结果表明,来自新喀里多尼亚弧菌CGJ02-2 基因组的ectABC大小为2 235 bp。SDS-PAGE显示表达产物中有3个重组蛋白产生, 液质联用鉴定表明其分子量分别与ectA、ectB、ectC的理论分子量一致。高分辨质谱分析发现全细胞催化上清中有四氢嘧啶产生。优化后的最适全细胞催化条件为:天冬氨酸浓度100 mmol·L-1,KCl浓度100 mmol·L-1,温度30 ℃,pH 7.0,最优条件下产量为1.11 mg·mL-1。研究从弧菌中克隆了四氢嘧啶合成基因簇ectABC,并在大肠杆菌BW25113中实现了异源表达和低盐环境下的四氢嘧啶合成,为大规模发酵生产四氢嘧啶奠定了基础。  相似文献   

11.
Bacterial milking: A novel bioprocess for production of compatible solutes   总被引:11,自引:0,他引:11  
A novel biotechnological process called "bacterial milking" has been established for the production of compatible solutes using the Gram-negative bacterium Halomonas elongata. Following a high-cell-density fermentation which provided biomass up to 48 g cell dry weight per liter, we applied alternating osmotic shocks in combination with crossflow filtration techniques to harvest the compatible solutes ectoine and hydroxyectoine. H. elongata, like other halophilic or halotolerant microorganisms, produces compatible solutes in response to the salinity of the medium. When transferred to a low salinity medium (osmotic downshock), H. elongata cells rapidly released their solutes to achieve osmotic equilibrium. Subsequent reincubation in a medium of higher salt concentration resulted in resynthesis of these compatible solutes and-after a defined regeneration time-the procedure could be repeated. By repeatedly performing this "bacterial milking" process (at least nine times) we were able to produce large amounts of ectoines with a biomass productivity of 155 mg of ectoine per cycle per gram cell dry weight. Further purification of the products was achieved by a simple two-step procedure based on cation exchange chromatography and crystallization. The principles described in this article may also be useful for the production of other low-molecular-weight compounds.  相似文献   

12.
Compatible solutes are key for the ability of halophilic bacteria to resist high osmotic stress. They have received wide attention from researchers for their excellent osmotic protection properties. Hydroxyectoine is a particularly important compatible solute, but its production by microbes faces several challenges, including low titer/yield, the presence of the byproduct ectoine, and the requirement of high salinity. Here, we aimed to metabolically engineer Escherichia coli to efficiently produce hydroxyectoine in the absence of osmotic stress without accumulating the byproduct ectoine. First, combinatorial optimization of the expression strength of key genes in the ectoine synthesis module and hydroxyectoine synthesis module was conducted. After optimization of the expression of these genes, 12.12 g/L hydroxyectoine and 0.24 g/L ectoine were obtained at 36 h in shake-flask fermentation with the addition of the co-substrate α-ketoglutarate. Further optimization of the addition of α-ketoglutarate achieved the sole production of hydroxyectoine (i.e., no ectoine accumulation), indicating that the supply of α-ketoglutarate is critically important for sole hydroxyectoine production. Finally, quorum sensing-based auto-regulation of intracellular α-ketoglutarate pool was implemented as an alternative to α-ketoglutarate addition by coupling the expression of sucA with the esaI/esaR circuit, which led to 14.93 g/L hydroxyectoine with a unit cell yield of 1.678 g/g and no ectoine accumulation in the absence of osmotic stress. This is the highest reported titer of sole hydroxyectoine production under salinity-free fermentation to date.  相似文献   

13.
Wang  Te  Jiang  Zhengzhong  Dong  Wenbo  Liang  Xiaoya  Zhang  Linghua  Zhu  Yimin 《Annals of microbiology》2019,69(13):1425-1433
At present, the nitrogen (N) removal efficiency of the microbial treatment in the high-salinity nitrogenous wastewaters is relatively low. Study on the N removal behavior and properties of moderately halophilic bacteria Halomonas under high salinity is of great significance for the microbial treatment of high-salinity nitrogenous wastewater. The response mechanism of Halomonas sp. B01 to high osmotic pressure stress was investigated by measuring the compatible solute ectoine concentration and superoxide dismutase (SOD) activity. The salt tolerance during growth and N removal of the strain was evaluated by measuring the activities of growth-related and N removal–related enzymes and the mRNA expression abundance of ammonia monooxygenase-encoding gene (amoA). The process of simultaneous heterotrophic nitrification and aerobic denitrification (SND) under high salinity was described by measuring the concentration of inorganic N. Halomonas sp. B01 synthesized ectoine under NaCl stress, and the intracellular ectoine concentration increased with increased NaCl concentration in the growth medium. When the NaCl concentration of the medium reached 120 g L−1, the malondialdehyde concentration and SOD activity were significantly increased to 576.1 μg mg−1 and 1.7 U mg−1, respectively. The growth-related and N removal–related enzymes of the strain were active or most active in medium with 30–60 g L−1 NaCl. The amoA of the strain cultured in medium with 60 g L−1 NaCl had the highest mRNA expression abundance. In the N removal medium containing 60 g L−1 NaCl and 2121 mg L−1 NH4+-N, SND by Halomonas sp. B01 was performed over 96 h and the N removal rate reached 98.8%. In addition to the protective mechanism of synthetic compatible solutes, Halomonas sp. B01 had the repair mechanism of SOD for lipid peroxidation. The growth-related and N removal–related enzymes of the strain were most active at a certain salt concentration; amoA also had the highest mRNA expression abundance under high salinity. Halomonas sp. B01 could efficiently perform N removal by SND under high salinity.  相似文献   

14.
进化代谢选育高渗透压耐受型产琥珀酸大肠杆菌   总被引:1,自引:0,他引:1       下载免费PDF全文
在以碳酸钠为酸中和剂的大肠杆菌两阶段发酵产琥珀酸的过程中,由于Na+的积累造成发酵体系中渗透压的提高,严重抑制了琥珀酸的产物浓度。为了增强大肠杆菌对渗透压的耐受性,考察了利用进化代谢方法筛选高渗透压耐受型高产琥珀酸大肠杆菌菌株的可行性。进化代谢系统作为一种菌株突变装置,可以使菌体在连续培养条件下以最大的生长速率生长。以NaCl为渗透压调节剂,通过在连续培养装置中逐步提高NaCl浓度使菌体在高渗透压条件下快速生长,最终得到了一株高渗透压耐受型琥珀酸生产菌株Escherichia coli XB4。以碳酸钠为酸中和剂,在7 L发酵罐中利用Escherichia coli XB4进行两阶段发酵,厌氧培养60 h后,琥珀酸产量达到了69.5 g/L,琥珀酸生产速率达到了1.81 g/(L.h),分别比出发菌株提高了18.6%和20%。  相似文献   

15.
内生解淀粉芽孢杆菌CC09产Iturin A摇瓶发酵条件优化   总被引:8,自引:0,他引:8       下载免费PDF全文
【目的】提高内生解淀粉芽孢杆菌CC09发酵产抗菌脂肽Iturin A的产量。【方法】首先采用单因子实验研究了碳源、氮源、NaCl浓度、pH、温度、转速和装液量等因子对CC09产Iturin A能力的影响,然后对其中显著性因子:氮源浓度、pH、温度及装液量4个因素进行正交实验,进一步优化发酵条件。【结果】优化培养基组成及发酵条件可以提高CC09菌株的生长速度及产Iturin A的量,其中可溶性淀粉以及一定比例的蛋白胨和酵母粉是CC09菌株产Iturin A的良好碳源和氮源;培养温度、装液量、培养液pH等也对CC09菌株产Iturin A有显著影响。优化后的培养基成分:可溶性淀粉(碳源)5 g/L、比例为3:1的胰蛋白胨酵母粉混合氮源15 g/L、NaCl 1 g/L;最佳培养条件:pH 6.0、28°C、摇床转速120 r/min、培养瓶装液量20%。【结论】在此条件下,Iturin A的产量可达到690 mg/L,较优化前的138 mg/L提高了4倍。  相似文献   

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【目的】明确乙腈降解菌BX2的分类地位及生物学特性,评价其处理含乙腈废水的可行性。【方法】通过形态特征、生理生化特性以及系统发育分析对菌株BX2进行鉴定。考察温度、初始pH及接种量等因素对菌株生长的影响,确定菌株的最佳生长条件及在该条件下的乙腈降解能力。测定菌株BX2对NaCl的耐受能力。【结果】乙腈降解菌BX2的形态特征及生理生化特性与紫红红球菌(Rhodococcus rhodochrous)最相近。其16S rRNA、gyrB、secA1基因序列与紫红红球菌的相似性分别为99.37%、99.29%、97.87%。最佳生长条件为35℃,初始pH 7.5,接种量1%。此条件下,菌株BX2在16 h内对浓度为800 mg/L乙腈的降解率为95.87%。菌株BX2在NaCl含量高于6%的培养基中无法生长。【结论】菌株BX2被鉴定为紫红红球菌。该菌株有较强的环境适应能力,可降解高浓度乙腈,在含氰废水的生物修复中有很好的应用前景。  相似文献   

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A moderately halophilic bacterial enrichment was able to degrade 120 mg/L of phenol in the presence of 1–2 M of NaCl within 3 d or 2.5–3 M of NaCl within 6 d. The optimal degradation was achieved at 1.5 M of NaCl and 350 mg/L of phenol. PCR-DGGE profile of the enrichment showed that the Acidobacterium sp. and Chloroflexus sp. dominated the community. The phenol-biodegradation pathways consisted of an initial oxidative attack by phenol hydroxylase, and subsequent ring fission by catechol 1,2-dioxygenase and catechol 2,3-dioxygenase. Nuclear magnetic resonance (NMR) spectroscopy profiles showed that ectoine and hydroxyectoine were the main compatible solutes to adjust the bacterial osmotic pressure. This study provides further information on the understanding of phenol-degradation over a wide range of salinity and remediation of phenol as a pollutant in the environment.  相似文献   

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【目的】提高花生四烯酸(Arachidonic acid,ARA)产量,克服ARA产生菌高山被孢霉(Mortierella alpina)在长期的保存及使用过程中易受到外界条件影响发生退化,从而导致菌种耗糖量降低、影响菌种摄入营养的能力和不利于工业化生产的缺点。【方法】首先采用固体培养基驯化,将菌种逐级涂布于梯度高糖PDA平板(含糖量分别为2%、5%、7%、10%和15%)培养,挑选经固体驯化后能耐受10%高糖浓度平板的菌种,转接到两种含不同氮源的梯度高糖(含糖量分别为3%、4%、5%和6%)液体培养基中进行驯化,最后对驯化后的菌种进行2 L发酵罐放大实验。【结果】当培养基中以酵母粉为氮源时,驯化后菌体的最高耗糖量由3 g/(L.d)提高到12 g/(L.d);当培养基中以玉米浆为氮源时,驯化后菌体的最高耗糖量由7 g/(L.d)提高到12 g/(L.d)。摇瓶驯化实验结果表明以玉米浆为氮源驯化的菌种发酵效果较好,发酵罐实验结果显示菌体生物量为50 g/L,总油脂为18 g/L,目的产物ARA产量为8 g/L。相比未驯化之前的发酵结果,生物量和总油脂含量提高了近3倍,ARA产量提高了近4倍。【结论】经过高糖驯化,菌种的耗糖能力得到提高,生物量、总油脂及ARA的产量也都有所增加,从而可以使菌种在保存和使用过程中不易退化,保持稳定。  相似文献   

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