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1.
【目的】本实验室保藏的一株异化硝酸盐还原菌(Pseudomonas alcaliphila MBR),其能够在好氧环境下以有机碳源为电子供体,把易溶解、高毒性亚硒酸钠还原成为红色单质硒,本文对该菌株还原亚硒酸盐的特征进行了研究。【结果】结果表明该菌株可以在pH为6-11环境中生长,对亚硒酸钠有较强抗性,其MIC(minimal inhibitory concentration)可高达50 mmol/L。在5天时间内,菌体以柠檬酸钠为电子供体,把2 mmol/L亚硒酸钠完全还原为红色单质硒并主要积累于胞外。硝酸盐和还原型谷胱甘肽对菌体还原亚硒酸钠具有促进作用,初步确定菌体对亚硒酸钠的还原是细胞膜或细胞质中的某些物质催化的结果。【结论】本项研究为应用Pseudomonas alcaliphila MBR于生物反应器提供了重要基础。  相似文献   

2.
细菌还原氧化态硒产生红色单质硒的研究进展   总被引:3,自引:0,他引:3  
硒是一种生命必需的微量元素,但高浓度时毒性较强且会造成环境污染。许多细菌可以将亚硒酸盐(SeO32-)或硒酸盐(SeO42-)等毒性较高的氧化态硒还原为毒性较小的红色单质硒(Se°),形成硒-蛋白复合物,它们对于获得最佳补硒方式和治理硒环境污染具有应用潜力。近年来,关于这一生物还原过程,人们进行了大量的研究,包括碳源、氧气、元素硫、谷胱甘肽以及一些氧化还原酶和膜转运蛋白等在内的多种物质都被发现可能影响或参与了细菌对硒的代谢。综述了细菌进行生物还原氧化态硒的影响因素及不同细菌产生红色单质硒机理的研究进展。  相似文献   

3.
沼泽红假单胞菌对亚硒酸盐还原脱毒的研究   总被引:2,自引:0,他引:2  
主要研究沼泽红假单胞菌对亚硒酸盐还原脱毒作用及其脱毒机理。通过单因子实验、正交试验, 对影响亚硒酸盐还原脱毒的因素进行研究, 得到沼泽红假单胞菌还原亚硒酸盐的最佳条件为: 亚硒酸钠添加量是25 mg/L, 培养的第5天接种接种量15% (质量比)。在该条件下, 对亚硒酸钠去除率可达98.2%。研究发现, 亚硒酸盐还原酶主要存在于细胞质, 分子量约为182 kD, 由4个亚基组成。通过透射电子显微镜观察, 菌体表面出现粒径在5 nm?200 nm之间的高电子密度颗粒, 初步表明亚硒酸盐在沼泽红假单胞菌体内被  相似文献   

4.
硒是生命必需的微量元素,以硒代半胱氨酸(Sec,第21位氨基酸)和硒代甲硫氨酸(Se-Met)的形式加入到硒蛋白(酶)中。人畜硒摄入过量或不足均会导致很多疾病。微生物参与了Se(-Ⅱ)、Se(0)、Se(Ⅳ)和Se(Ⅵ)等各种价态间的转化。本文主要综述微生物对硒的还原及其生物学意义。微生物对硒的还原包括同化还原、异化还原以及在还原基础上进行的硒的甲基化。硒的同化还原主要是形成各种硒蛋白,满足微生物自身对硒的需求,食源性微生物对人畜补硒具有重要意义。高浓度硒酸盐和亚硒酸盐则可促使微生物进行异化还原并形成单质纳米硒颗粒。有的微生物会将还原态的Sec和Se-Met进一步转化为挥发态的甲基化硒。硒的异化还原和甲基化都是解毒机制,在硒污染环境的治理中具有重要意义。最后,阐述了单质纳米硒在医药、生物传感器和治理重金属污染等方面的应用前景,以及微生物合成CdSe荧光量子点的应用。  相似文献   

5.
微生物硒代谢机制研究进展   总被引:9,自引:0,他引:9       下载免费PDF全文
硒(Se)是人与动物生命必需的微量元素,在医学保健和工业制造方面有着广泛的应用。硒在环境中有四种价态,包括硒酸盐Se O42-(+6)、亚硒酸盐Se O32-(+4)、单质硒Se0(0)和硒化物Se2-(-2)。微生物在硒的形态转化中扮演了重要的角色,影响着环境中硒的生物地球化学循环。本文主要从自然界中硒的循环以及微生物与硒代谢机制两个方面阐述微生物对硒的生物地球化学循环的重要性。  相似文献   

6.
一株反硝化光合细菌的生物学特性及系统发育分析   总被引:2,自引:0,他引:2  
【目的】养殖水体中亚硝酸盐的过量积累会对养殖生物产生毒害作用,应用脱氮细菌去除亚硝酸盐是养殖水质调控的重要手段之一,本文意在得到一株高效去除亚硝酸盐的光合细菌。【方法】采用软琼脂稀释法分离纯化光合细菌菌株,通过电镜观察、生理生化试验研究其生物学特性、依据16S rDNA和光合反应中心M亚基基因(Gene coding for photosynthetic reaction center subunit M,pufM)序列对其做系统发育分析。【结果】从淡水养殖塘中分离筛选到一株高效还原亚硝氮的光合细菌菌株wps。该菌株为革兰氏阴性菌,细胞杆状,大小为0.4-0.6μm×1.5-4.0μm,极生丛生鞭毛,片层状光合内膜,兼性厌氧光照条件生长,单菌落及液体培养物呈红色,含细菌叶绿素a和类胡萝卜素。最适生长pH范围为5.5-8.5,最适生长盐度范围为0-2%,最适生长温度范围为25℃-38℃。菌株wps与Rhodopseudomonas palustris的16S rDNA序列相似性为98.9%,光合反应中心M亚基基因序列的相似性为94.9%,但是二者在生物学性质上有较大差异,如菌株wps在pH5.5生长,不能光自养生长,不利用柠檬酸盐、甲酸盐进行光异养生长,需盐酸硫胺素和泛酸钙做生长因子等。【结论】菌株wps可能为Rhodopseudomonas属的一个新种,且在养殖水体水质调控中具有重要应用前景。  相似文献   

7.
从内蒙古碱湖水样中分离得到一株紫色非硫光合细菌,命名为JH1-6.对该菌株进行了形态学观察、生理生化鉴定、活细胞吸收光谱以及16S rDNA序列分析.16S rDNA序列分析结果表明该菌株与沼泽红假单胞菌的16S rDNA序列同源性高达99%,结合形态特征和生理生化特性以及活细胞吸收光谱特征等,确定菌株JH1- 6在分类地位上属于沼泽红假单胞菌(Rhodopseudomonas palustris).  相似文献   

8.
生物方法合成纳米材料具有低能耗、高安全性以及环境友好等优良特点,因而备受人们关注。利用细菌将硒酸盐或亚硒酸盐还原为单质硒,不仅可以降低硒毒性,而且还能获得价值更高的生物纳米材料。文中选用可耐受高盐环境胁迫的枯草芽孢杆菌亚种Bacillus subtilis subspecies stercoris strain XP构建生物模型,分别以LB液体培养基和亚硒酸钠为介质和底物 (电子受体),解析菌株XP合成纳米硒的基本规律。通过扫描电镜 (Scanning electron microscope,SEM) 观察、X射线能谱分析 (X-ray energy dispersive spectral analysis,EDAX)、X射线衍射 (X-ray diffraction,XRD) 分析、傅里叶红外变换光谱 (Fourier transform infrared spectroscopy,FTIR) 技术对合成的纳米硒进行物理化学表征分析,同时选用草莓枯萎、红叶、紫斑病病原真菌对其抗菌活性进行分析。结果表明,菌株XP介导合成的单质硒为球形纳米颗粒 (Selenium nanoparticles,SeNPs),其生成量与反应时间呈正相关 (0–48 h),且细胞形态未发生褶皱或破损等变化 (耐受力强);SeNPs为非晶态,粒径范围在135–165 nm,表面元素组成以Se为主,同时存在C、O、N、S等有机元素;颗粒表面包裹生物大分子物质,-OH、C=O、N-H、C-H等官能团与SeNPs稳定性和生物活性密切相关;高浓度纳米硒对枯萎、红叶、紫斑病病原真菌均有显著抑制活性 (P<0.05),其中对草莓红叶病与枯萎病病原真菌的抑制活性明显优于对紫斑病病原真菌的抑制活性。总而言之,菌株XP不仅耐受高盐胁迫能力强,同时还可介导合成生物SeNPs,其合成的纳米硒颗粒具有良好的稳定性和生物活性,在草莓病害防治以及绿色富硒草莓种植等领域具有潜在的应用价值。  相似文献   

9.
8株光合细菌的鉴定及其系统进化关系分析   总被引:1,自引:0,他引:1  
目的为8株光合细菌(photosynthetic bacteria,PSB)作为益生菌株提供系统资料。方法用常规方法对8株PSB菌株的形态、培养特性及生理生化特征进行鉴定,同时定性分析菌株产生的类胡萝卜素和CoQ,测定菌株16S DNA序列并分析其系统进化关系,在GenBank中获取了8个16S DNA序列号。结果菌株鉴定结果表明:菌株2C、2c和13ing为沼泽红假单胞菌,Ga、Il106、WS8N为类球红细菌,MT1131为荚膜红细菌,rub为深红红螺菌。基于菌株16S DNA序列的系统进化树显示,同一种菌并不总是聚为一簇,但相隔较近;种属完全不同的菌株,尽管序列相似性高达97%以上,在系统进化树上相隔较远。结论8株PSB菌株的鉴定和系统进化关系分析结果为后续研究提供了背景资料,同时菌株在GenBank中获得的16S DNA序列号为菌株作上了生物标记,也为菌株的产权保护提供了依据。  相似文献   

10.
两株茶树内生草螺菌的微生物学特性   总被引:2,自引:0,他引:2  
【目的】从健康茶树叶片内分离两株内生乳白色短杆菌(编号WT00C和WT00F)并进行微生物学特性调查。【方法】通过细菌培养和染色的方法进行了形态观察;通过微生物生理生化分析的方法进行了生物活性测定,还进行了16S rDNA序列分析以及生理生化特性调查;通过系统发育学分析及各项指标的比较,确定两个菌株的分类归属。【结果】两株细菌菌落形态为圆形、不透明、乳白色、中央隆起、边缘整齐。菌体呈杆状,大小为(0.5-0.7)μm×(1.4-1.8)μm,有鞭毛,无芽孢,革兰氏染色阴性,产生IAA、NH4+和嗜铁载体但无固氮酶活性。WT00C和WT00F菌株产生IAA量分别为18.7±1.2 mg/L和24.9±1.5 mg/L。除不能利用丙酸盐外,它们的生理特征与伯杰氏手册中草螺菌属生化指标中的可利用碳源情况基本一致,并且与已鉴定的13种草螺菌的16S rDNA高度同源,相似度达99%。基于16S rDNA序列的系统发育学分析结果显示,两株细菌形成一个独立的分支,与已报道的13种草螺菌聚类并保持着一定的距离,两个菌株的生理生化特征与其它草螺菌有许多共性但存在明显的差别。【结论】分离获得的两株茶树内生细菌WT00C和WT00F为草螺菌属的新菌株。  相似文献   

11.
Various mechanisms have been proposed to explain the biological dissimilatory reduction of selenite (SeO3(2-)) to elemental selenium (Se(o)), although none is without controversy. Glutathione, the most abundant thiol in the eukaryotic cells, the cyanobacteria, and the alpha, beta, and gamma groups of the proteobacteria, has long been suspected to be involved in selenium metabolism. Experiments with the phototrophic alpha proteobacterium Rhodospirillum rubrum showed that the rate of selenite reduction was decreased when bacteria synthesized lower than normal levels of glutathione, and in Rhodobacter sphaeroides and Escherichia coli the reaction was reported to induce glutathione reductase. In the latter organism superoxide dismutase was also induced in cells grown in the presence of selenite, indicating that superoxide anions (O2-) were produced. These observations led us to investigate the abiotic (chemical) reduction of selenite by glutathione and to compare the features of this reaction with those of the reaction mediated by R. rubrum and E. coli. Our findings imply that selenite was first reduced to selenodiglutathione, which reached its maximum concentration within the 1st min of the reaction. Formation of selenodiglutathione was paralleled by a rapid reduction of cytochrome c, a known oxidant for superoxide anions. Cytochrome c reduction was inhibited by superoxide dismutase, indicating that O2- was the source of electrons for the reduction. These results demonstrated that superoxide was produced in the abiotic reduction of selenite with glutathione, thus lending support to the hypothesis that glutathione may be involved in the reaction mediated by R. rubrum and E. coli. The second phase of the reaction, which led to the formation of elemental selenium (Se(o)), developed more slowly. Se(o) precipitation reached a maximum within 2 h after the beginning of the reaction. Secondary reactions leading to the degradation of the superoxide significantly decreased the yield of Se(o) in the abiotic reaction compared with that of the bacterially mediated selenite reduction. Abiotically formed selenium particles showed the same characteristic orange-red color, spherical structure, and size as particles produced by R. rubrum, again providing support for the hypothesis that glutathione is involved in the reduction of selenite to elemental selenium in this organism.  相似文献   

12.
Two bacterial isolates were obtained in axenic culture from the rhizosphere soil of Astragalus bisulcatus, a legume able to hyperaccumulate selenium. Both strains resulted of particular interest for their high resistance to the toxic oxyanion SeO3(2-) (selenite, Se(IV)). On the basis of molecular and biochemical analyses, these two isolates were attributed to the species Bacillus mycoides and Stenotrophomonas maltophilia, respectively. Their capability in axenic culture to precipitate the soluble, bioavailable and highly toxic selenium form selenite to insoluble and relatively non-toxic Se(0) (elemental selenium) was evaluated in defined medium added with 0.2 or 0.5 mM Se(IV). Both strains showed to completely reduce 0.2 mM selenite in 120 h, while 0.5 mM Se(IV) was reduced up to 67% of the initial concentration by B. mycoides and to about 50% by S. maltophilia in 48 h. Together in a dual consortium, B. mycoides and S. maltophilia increased the kinetics of selenite reduction, thus improving the efficiency of the process. A model system for selenium rhizofiltration based on plant-rhizobacteria interactions has been proposed.  相似文献   

13.
A Gram-negative bacterium, identified as Stenotrophomonas maltophilia by fatty acid analysis and 16S rRNA sequencing, was isolated from a seleniferous agricultural evaporation pond sediment collected in the Tulare Lake Drainage District, California. In cultures exposed to the atmosphere, the organism reduces selenate (SeO4(2-)) and selenite (SeO3(2-)) to red amorphous elemental selenium (Se degrees ) only upon reaching stationary phase, when O2 levels are less than 0.1 mg l(-1). In 48 h, S. maltophilia removed 81.2% and 99.8% of added SeO4(2-) and SeO3(2-) (initial concentration of 0.5 mM), respectively, from solution. Anaerobic growth experiments revealed that the organism was incapable of using SeO4(2-), SeO3(2-), SO4(2-) or NO3- as a terminal electron acceptor. Transmission electron microscopy of cultures spiked with either Se oxyanion were found to contain spherical extracellular deposits. Analysis of the deposits by energy-dispersive X-ray spectroscopy revealed that they consist of Se. Furthermore, S. maltophilia was active in producing volatile alkylselenides when in the presence of SeO4(2-) and SeO3(2-). The volatile products were positively identified as dimethyl selenide (DMSe), dimethyl selenenyl sulphide (DMSeS) and dimethyl diselenide (DMDSe) by gas chromatography-mass spectrometry. Our findings suggest that this bacterium may contribute to the biogeochemical cycling of Se in seleniferous evaporation pond sediments and waters. This organism may also be potentially useful in a bioremediation scheme designed to treat seleniferous agricultural wastewater.  相似文献   

14.
Selenium metabolism in Escherichia coli   总被引:3,自引:0,他引:3  
Escherichia coli will reduce selenite (SeO 3 2- ) andselenate (SeO 4 2- ) to elemental selenium Se 0 . Seleniumwill also become incorporated intoproteins as part of the amino acids selenocysteine or selenomethionine.The reaction of selenitewith glutathione produces selenodiglutathione (GS-Se-GS). Selenodiglutathioneand itssubsequent reduction to glutathioselenol (GS-SeH) are likely the key intermediatesin the possiblemetabolic fates of selenium. This review presents the possible pathwaysinvolving selenium in E. coli. Identification of intermediates and potentialprocesses from uptake of the toxic oxyanions through to theirdetoxification will assist us inunderstanding the complexities of metalloid oxyanion metabolism in thesebacteria.  相似文献   

15.
A bacterial isolate (strain JS-2) characterized as Bacillus sp. was challenged with high concentrations of toxic selenite ions. The microbe was found to transform the toxic, soluble, colorless selenite (SeO(3)(2-)) oxyions to nontoxic, insoluble, red elemental selenium (Se(0)). This process of biotransformation was accompanied by cytoplasmic and surface accumulation of electron dense selenium (Se(0)) granules, as revealed in electron micrographs. The cells grown in the presence of selenite oxyions secreted large quantities of extracellular polymeric substances (EPS). There were quantitative and qualitative differences in the cell wall fatty acids of the culture grown in the presence of selenite ions. The relative percentage of total saturated fatty acid and cyclic fatty acid increased significantly, whereas the amount of total unsaturated fatty acids decreased when the cells were exposed to selenite stress. All these physiological adaptive responses evidently indicate a potentially important role of cell wall fatty acids and extracellular polymeric substances in determining bacterial adaptation towards selenite-induced toxicity, which thereby explains the remarkable competitiveness and ability of this microbe to survive the environmental stress.  相似文献   

16.
Biochemical and proteomic tools have been utilized for investigating the mechanism of action of a new Stenotrophomonas maltophilia strain (SeITE02), a gammaproteobacterium capable of resistance to high concentrations of selenite [SeO(3)(2-), Se(IV)], reducing it to nontoxic elemental selenium under aerobic conditions; this strain was previously isolated from a selenite-contaminated mining soil. Biochemical analysis demonstrated that (i) nitrite reductase does not seem to take part in the process of selenite reduction by the bacterial strain SeITE02, although its involvement in this process had been hypothesized in other cases; (ii) nitrite strongly interferes with selenite removal when the two oxyanions (NO(2)(-) and SeO(3)(2-)) are simultaneously present, suggesting that the two reduction/detoxification pathways share a common enzymatic step, probably at the level of cellular transport; (iii) in vitro, selenite reduction does not take place in the membrane or periplasmic fractions but only in the cytoplasm, where maximum activity is exhibited at pH 6.0 in the presence of NADPH; and (iv) glutathione is involved in the selenite reduction mechanism, since inhibition of its synthesis leads to a considerable delay in the onset of reduction. As far as the proteomic findings are concerned, the evidence was reached that 0.2 mM selenite and 16 mM nitrite, when added to the culture medium, caused a significant modulation (ca. 10%, i.e., 96 and 85 protein zones, respectively) of the total proteins visualized in the respective two-dimensional maps. These spots were identified by mass spectrometry analysis and were found to belong to the following functional classes: nucleotide synthesis and metabolism, damaged-protein catabolism, protein and amino acid metabolism, and carbohydrate metabolism along with DNA-related proteins and proteins involved in cell division, oxidative stress, and cell wall synthesis.  相似文献   

17.
研究了箬叶多糖FⅢ-a及其化学修饰物、亚硒酸钠和GSH对Cu2+诱导的低密度脂蛋白氧化修饰的保护作用.其结果表明箬叶多糖、硫酸酯多糖、硒酸酯多糖可显著抑制脂质过氧化产物(TBARS)及荧光物质的生成,彼此之间无明显差异.但对VE的消耗有着不同的保护作用,其顺序是FⅢ-a>S-FⅢ-a>Se-FⅢ-a,并且具有明显的量效关系.硒或GSH对Cu2+诱导的LDL氧化修饰无明显的抑制,但联合使用在0.125mmol/LNa2SeO3和0.2mmol/LGSH及12.5μmol/LNa2SeO3和0.02mmol/LGSH的浓度下能强烈地抑制TBARS的生成,甚至比正常的LDL还要低.但是对VE的消耗只有较弱的保护作用,硒酸酯多糖与此相似.Na2SeO3在0.125mmol/L时可以明显抑制荧光物质的生成.  相似文献   

18.
Cultures of a purple nonsulfur bacterium, Rhodobacter sphaeroides, amended with approximately 1 or approximately 100 ppm selenate or selenite, were grown phototrophically to stationary phase. Analyses of culture headspace, separated cells, and filtered culture supernatant were carried out using gas chromatography, X-ray absorption spectroscopy, and inductively coupled plasma spectroscopy-mass spectrometry, respectively. While selenium-amended cultures showed much higher amounts of SeO(3)(2-) bioconversion than did analogous selenate experiments (94% uptake for SeO(3)(2-) as compared to 9.6% for SeO(4)(2-)-amended cultures from 100-ppm solutions), the chemical forms of selenium in the microbial cells were not very different except at exposure to high concentrations of selenite. Volatilization accounted for only a very small portion of the accumulated selenium; most was present in organic forms and the red elemental form.  相似文献   

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