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 48 毫秒
1.
中国希瓦氏菌D14^T的厌氧腐殖质呼吸   总被引:1,自引:0,他引:1  
实验证明,希瓦氏菌新种(ShewanellacinicaD14T)在厌氧条件下可以利用多种有机酸盐和甲苯等环境有毒污染物作为电子供体,以腐殖质作为唯一末端电子受体进行厌氧呼吸(即醌呼吸)。电子在细胞膜呼吸链的传递过程中,偶联能量的产生来支持菌体的生长,1mmol/LAQDS可支持细胞增殖约60倍。电子供体的氧化和唯一电子受体腐殖质还原之间存在着动态的偶联过程,随着电子供体量的增加腐殖质还原的量也随之增加。典型呼吸链抑制剂诸如:抑制Fe-S中心的Cu2 ,甲基萘醌类似物标桩菌素,抑制甲基萘醌氧化型向还原型转化的双香豆素和细胞色素P450的专一抑制物甲吡酮等对腐殖质的还原有着极为显著的抑制作用,为进一步证明希瓦氏菌(Shewanellacinica)D14T可利用腐殖质进行厌氧呼吸提供了有力的佐证。而D14T在进行腐殖质呼吸的同时,对于甲苯,苯胺等环境有毒物质的有效降解则具有着重要的环境学意义。  相似文献   

2.
厌氧条件下希瓦氏菌腐殖质还原对偶氮还原的影响   总被引:2,自引:0,他引:2  
以希瓦氏菌属的3个代表种为研究对象,研究了在厌氧条件下腐殖质的存在对偶氮还原的影响。实验结果表明:3个代表菌株在厌氧条件下都有高效的偶氮还原和腐殖质还原功能,1mmol/L偶氮染料在24h内完全脱色,并且偶氮还原与电子供体氧化存在着紧密的偶联关系。腐殖质物质模式物2-磺酸蒽醌AQS在小于1~2mmol/L条件下能显著加速偶氮还原,12h就完全脱色,3mmol/L时18h完全脱色。但当浓度大于3mmol/L时则对偶氮还原产生明显抑制作用。另一腐殖质模式物2,6-双磺酸蒽醌AQDS其浓度在1~3mmol/L以内亦使脱色在12h内完成,4~6mmol/L时15h左右完成脱色。7~12mmol/L仍有一定的脱色促进作用,但随着浓度的提高,其促进作用也逐渐减弱。这说明腐殖质的确可以作为氧化还原中间体穿梭于电子供体与染料的偶氮双键之间促进偶氮还原。但当其浓度达到某一阈值时它就显出与偶氮键竞争电子的本质,从而使偶氮还原速率下降。原因在于他们的氧化还原电势的差异,导致细菌呼吸链的电子递体对腐殖质物质和偶氮键的亲和力不同,从而使不同腐殖质浓度对偶氮键还原产生了不同的影响。  相似文献   

3.
中国希瓦氏菌D14T的Fe(Ⅲ)还原特性及其影响因素   总被引:1,自引:0,他引:1  
报道了中国希瓦氏菌D14T的Fe(Ⅲ)还原特性,研究了溶氧浓度、光照强度、温度、pH等条件对菌株Fe(Ⅲ)还原的影响。结果发现,随着培养基中Fe(Ⅲ)浓度的提高,菌株D14T的Fe(Ⅲ)还原速率相应降低;氧气和光照对Fe(Ⅲ)还原有一定的抑制作用;菌株还原Fe(Ⅲ)的最适反应温度为37℃;在反应起始pH60-100的条件下菌株可进行Fe(Ⅲ)还原。对不同形态Fe(Ⅲ)还原特性的研究结果表明,Fe(Ⅲ)的溶解度越高越有利于还原反应的进行。采用SDS和OGP这两种蛋白变性剂对Fe(Ⅲ)还原蛋白进行初步定位的结果表明,参与Fe(Ⅲ)还原的蛋白主要位于细胞可溶性外周蛋白。在同时含有偶氮染料和Fe(Ⅲ)的条件下,菌株D14T的偶氮染料脱色率和Fe(Ⅲ)还原率均有所提高。  相似文献   

4.
报道了中国希瓦氏菌D14 T 的Fe(Ⅲ)还原特性,研究了溶氧浓度、光照强度、温度、pH等条件对菌株Fe(Ⅲ)还原的影响。结果发现,随着培养基中Fe(Ⅲ)浓度的提高,菌株D14 T 的Fe(Ⅲ)还原速率相应降低;氧气和光照对Fe(Ⅲ)还原有一定的抑制作用;菌株还原Fe(Ⅲ)的最适反应温度为37℃;在反应起始pH6 0 - 10 0的条件下菌株可进行Fe(Ⅲ)还原。对不同形态Fe(Ⅲ)还原特性的研究结果表明,Fe(Ⅲ)的溶解度越高越有利于还原反应的进行。采用SDS和OGP这两种蛋白变性剂对Fe(Ⅲ)还原蛋白进行初步定位的结果表明,参与Fe(Ⅲ)还原的蛋白主要位于细胞可溶性外周蛋白。在同时含有偶氮染料和Fe(Ⅲ)的条件下,菌株D14 T 的偶氮染料脱色率和Fe(Ⅲ)还原率均有所提高  相似文献   

5.
Shewanella oneidensis MR-1是一种模式金属还原菌,它能够在厌氧条件下,将多种金属化合物和人工合成染料等作为电子受体还原代谢。因此,该菌常常被用于生态修复等研究。厌氧条件下,S.oneidensis MR-1能够将细胞质内或细胞内膜产生的电子通过定位于细胞内膜、细胞膜周质和细胞外膜上的c-血红色素蛋白或还原酶所组成的具有多样性的电子传递系统,最终传递到存在于细菌细胞外环境中的电子受体。通过对多种电子传递过程的介绍,进一步阐明其对污染物修复和纳米材料合成的机理,从而为未来对该类微生物的利用和开发提供更为充分的理论依据。  相似文献   

6.
一个降解染料的希瓦氏菌新种——中国希瓦氏菌   总被引:9,自引:6,他引:9  
从细胞形态、生理生化特性和16S rRNA基因和gyrB基因序列同源性分析等方面对一株广谱高效染料降解菌D14进行了鉴定.菌株D14的细胞壁革兰氏染色为阴性,细胞为杆状,大小为0.6μm~1.0μm×1.0μm~4.0μm,周身纤毛,极生单鞭毛,其生长pH范围为pH 7.0~10.0,最适生长pH为8.0,生长温度范围为4℃~40℃,最适生长温度为20℃~30℃.该菌株具有还原三价铁,液化明胶、Tween40和Tween 80,产生H2S的能力.在乳酸钠存在的条件下,能还原硝酸盐、亚硝酸盐、铁氧化物和硫代硫酸钠.可利用D-半乳糖、D-葡萄糖、蔗糖、丙酸钠、L-亮氨酸等多种有机物为碳源.BIOLOG细菌自动鉴定系统鉴定结果表明该菌株应归属于希瓦菌属.16S rDNA和gyrB基因序列分析结果表明,菌株D14与其亲缘关系最近的菌株Shewanella putrefacien ATCC8071T的16S rDNA序列相似值为97%(小于97.7%),gyrB基因序列相似值为87%(小于90%).菌体所含有的主要脂肪酸为iso-15:0,16:1ω7c,15:0和16:0,DNA中(G C)mol%含量为49.3.结合菌株D14的生理生化特征和分子生物学特性,将菌株定为希瓦氏菌属的一个新种,命名为中国希瓦氏菌(Shewanella cinica)D14T.  相似文献   

7.
【目的】研究脱色希瓦氏菌S12周质空间c型细胞色素Mcc的功能,进一步探索和补充微生物胞外电子传递过程的机制。【方法】借助自杀质粒敲除mcc基因,通过细胞浓度测定和激光共聚焦显微镜比较分析突变株和野生株之间的浮游细胞和生物膜的生长情况,并比较分析二者在微生物燃料电池电极还原、铁还原和胞外偶氮染料还原过程中的功能。【结果】Mcc缺失对铁还原和偶氮还原没有影响,但却造成电极呼吸活性下降34.1%;与野生株相比,mcc突变株的好氧生长和厌氧浮游细胞生长无明显影响,但却显著抑制了电极表面生物膜的形成。【结论】Mcc是希瓦氏菌S12电极呼吸过程中周质空间电子传递的重要组分之一,缺失会显著抑制其电极呼吸效率以及生物膜的形成。  相似文献   

8.
脱色希瓦氏菌S12的铁还原性能研究   总被引:5,自引:0,他引:5  
从印染废水中分离得到了一株具有染料脱色功能的希瓦氏菌脱色新种。该菌能在厌氧条件下利用Fe^3+作为末端电子受体获得能量,支持细胞生长。在pH8.0.温度30℃。柠檬酸铁800mg/L,乳酸钠2g/L,酵母抽提物0.5g/L的条件下,培养8h的过程中,菌体细胞量的增长完全与Fe^3+的还原发展趋向一致。同时考察了碳氮源、乳酸钠、酵母抽提物、pH值和温度等方面对该菌株的生长和铁还原特性的影响。结果表明,菌体生长以LB为最好,以葡萄糖和乳酸钠为碳源时对铁还原有利。在酵母抽提物浓度4g/L范围内,菌体生长量和铁还原率随着酵母抽提物浓度的提高而提高。当乳酸钠为6g/L时,S12菌体生长量和铁还原率达到最佳。柠檬酸铁浓度为800mg/L时菌体生长量和铁还原率最高。在起始pH6-8的范围内,菌株S12的生长随着pH升高而升高,这也是菌株S12进行铁还原的最佳pH范围。菌株S12在温度范围20℃-40℃内均可生长和进行铁还原,而以30℃时最佳。  相似文献   

9.
脱色希瓦氏菌(Shewanella decolorationis)S12T的脱色特性   总被引:4,自引:0,他引:4  
从印染废水活性污泥中分离到一株高效染料脱色菌,经鉴定该菌株为希瓦氏菌属的一个新种,命名为脱色希瓦氏菌(Shewanelladecolorationis)S12T。该菌株在偶氮染料浓度为50mg/L的培养基中培养4h后,染料去除率达到96%,对偶氮染料的最高脱色浓度达到2000mg/L。在浓度为500mg/L的偶氮染料平板上生长4d后,可观察到明显的脱色圈。全波长光谱扫描的结果表明希瓦氏菌S12T以生物降解的方式对偶氮染料进行脱色。希瓦氏菌S12T的脱色酶为组成型的胞内酶。  相似文献   

10.
面对日益严峻的能源紧缺与环境污染形势,电活性微生物(electroactive microorganisms)的电催化过程为实现绿色生产提供了新的思路。奥奈达希瓦氏菌具有独特的呼吸方式和电子传递能力,在微生物燃料电池、增值化学品的生物电合成、金属废物处理和环境修复系统等领域有着广泛的应用。奥奈达希瓦氏菌(Shewanella oneidensis MR-1)电活性生物被膜是实现电活性微生物电子传递过程的优良载体,其形成过程十分复杂且受到多种因素的影响和调控,在增强细菌环境抗逆性、提高电子传递效率等多方面发挥着十分重要的作用。本文较为系统地综述了奥奈达希瓦氏菌生物被膜的形成过程、影响因素及其在生物能源、生物修复和生物传感中的相关应用,为进一步实现其在更多领域的应用提供了理论基础。  相似文献   

11.
This is the first time to described the dissimilatory Fe(III) reducing characteristics of Shewanella cinica D14T. The effects of O2, light, temperature and pH on dissimilatory Fe(III) reduction were examined. The results suggested that the rate of Fe(III) reduction decreased with increasing Fe(III) concentration. Fe(III) reduction was partially inhibited by the presence of either O2 or light. The optimum temperature for Fe(III) reduction is 37 degrees C. At pH 6.0-10.0, strain D14T can reduce Fe(III). The soluble Fe(III) is more easy to be reduced than the insoluble one. Results of protein denaturants SDS and OGP suggest that the Fe(III) reduction activity of S. cinica is mostly localized to the soluble outer membrane fraction. The azo dye decolorization and Fe(III) reduction in strain D14T were enhanced in the presence of Fe(III) and dye.  相似文献   

12.
Abstract Pleiotropic respiratory mutants, incapable of growth on any electron acceptor other than oxygen, were isolated from two strains of Shewanella putrefaciens (MR-1 and sp200). All anaerobic respiratory functions were restored by complementation of the mutants with specific cloned DNA fragments. Southern hybridization experiments revealed that the fragment that complements the MR-1 mutant was localized on the megaplasmids of both strains, while the fragment that complements the sp200 mutant was chromosomal. Neither of these fragments hybridized with the anaerobic regulatory genes of S. putrefaciens ( etrA ) or E. coli ( fnr ).  相似文献   

13.
Shewanella oneidensis strain MR-1 is well known for its respiratory versatility, yet little is understood about how it regulates genes involved in anaerobic respiration. The Arc two-component system plays an important role in this process in Escherichia coli; therefore, we determined its function in S. oneidensis. arcA from S. oneidensis complements an E. coli arcA mutant, but the Arc regulon in S. oneidensis constitutes a different suite of genes. For example, one of the strongest ArcA-regulated gene clusters in E. coli, sdh, is not regulated by the Arc system in S. oneidensis, and the cyd locus, which is induced by ArcA in E. coli under microaerobic conditions, is repressed by ArcA in S. oneidensis under anaerobic conditions. One locus that we identified as being potentially regulated by ArcA in S. oneidensis contains genes predicted to encode subunits of a dimethyl sulphoxide (DMSO) reductase. We demonstrate that these genes encode a functional DMSO reductase, and that an arcA mutant cannot fully induce their expression and is defective in growing on DMSO under anaerobic conditions. While S. oneidensis lacks a highly conserved full-length ArcB homologue, ArcA is partially activated by a small protein homologous to the histidine phosphotransfer domain of ArcB from E. coli, HptA. This protein alone is unable to compensate for the lack of arcB in E. coli, indicating that another protein is required in addition to HptA to activate ArcA in S. oneidensis.  相似文献   

14.
Shewanella putrefaciens MR-1 can grow either aerobically or anaerobically at the expense of many different electron acceptors and is often found in abundance at redox interfaces in nature. Such redox interfaces are often characterized by very strong gradients of electron acceptors resulting from rapid microbial metabolism. The coincidence of S. putrefaciens abundance with environmental gradients prompted an examination of the ability of MR-1 to sense and respond to electron acceptor gradients in the laboratory. In these experiments, taxis to the majority of the electron acceptors that S. putrefaciens utilizes for anaerobic growth was seen. All anaerobic electron acceptor taxis was eliminated by the presence of oxygen, nitrate, nitrite, elemental sulfur, or dimethyl sulfoxide, even though taxis to the latter was very weak and nitrate and nitrite respiration was normal in the presence of dimethyl sulfoxide. Studies with respiratory mutants of MR-1 revealed that several electron acceptors that could not be used for anaerobic growth nevertheless elicited normal anaerobic taxis. Mutant M56, which was unable to respire nitrite, showed normal taxis to nitrite, as well as the inhibition of taxis to other electron acceptors by nitrite. These results indicate that electron acceptor taxis in S. putrefaciens does not conform to the paradigm established for Escherichia coli and several other bacteria. Carbon chemo-taxis was also unusual in this organism: of all carbon compounds tested, the only positive response observed was to formate under anaerobic conditions.  相似文献   

15.
In this work, we investigated the anaerobic decolorization of methyl orange (MO), a typical azo dye, by Shewanella oneidensis MR-1, which can use various organic and inorganic substances as its electron acceptor in natural and engineered environments. S. oneidensis MR-1 was found to be able to obtain energy for growth through anaerobic respiration accompanied with dissimilatory azo-reduction of MO. Chemical analysis shows that MO reduction occurred via the cleavage of azo bond. Block of Mtr respiratory pathway, a transmembrane electron transport chain, resulted in a reduction of decolorization rate by 80%, compared to the wild type. Knockout of cymA resulted in a substantial loss of its azo-reduction ability, indicating that CymA is a key c-type cytochrome in the electron transfer chain to MO. Thus, the MtrA-MtrB-MtrC respiratory pathway is proposed to be mainly responsible for the anaerobic decolorization of azo dyes such as MO by S. oneidensis.  相似文献   

16.
Shewanella putrefaciens MR-1 can grow either aerobically or anaerobically at the expense of many different electron acceptors and is often found in abundance at redox interfaces in nature. Such redox interfaces are often characterized by very strong gradients of electron acceptors resulting from rapid microbial metabolism. The coincidence of S. putrefaciens abundance with environmental gradients prompted an examination of the ability of MR-1 to sense and respond to electron acceptor gradients in the laboratory. In these experiments, taxis to the majority of the electron acceptors that S. putrefaciens utilizes for anaerobic growth was seen. All anaerobic electron acceptor taxis was eliminated by the presence of oxygen, nitrate, nitrite, elemental sulfur, or dimethyl sulfoxide, even though taxis to the latter was very weak and nitrate and nitrite respiration was normal in the presence of dimethyl sulfoxide. Studies with respiratory mutants of MR-1 revealed that several electron acceptors that could not be used for anaerobic growth nevertheless elicited normal anaerobic taxis. Mutant M56, which was unable to respire nitrite, showed normal taxis to nitrite, as well as the inhibition of taxis to other electron acceptors by nitrite. These results indicate that electron acceptor taxis in S. putrefaciens does not conform to the paradigm established for Escherichia coli and several other bacteria. Carbon chemo-taxis was also unusual in this organism: of all carbon compounds tested, the only positive response observed was to formate under anaerobic conditions.  相似文献   

17.
Abstract The fatty acid composition of cultures of Shewanella putrefaciens strain ACAM 342 grown aero-bically and anaerobically at 15°C and 25°C were analysed by capillary gas chromatography. The bacterium was found to produce the polyunsaturated fatty acids (PUFA) 18:2ω3, 18:3ω3 and 20:5ω3 under aerobic and anaerobic conditions at both growth temperatures. This result suggests that the bacterium possesses both the aerobic and anaerobic pathways for unsaturated fatty acid synthesis, where an alternate terminal electron acceptor(s) is utilised in the absence of oxygen.  相似文献   

18.
刘鹏程  朱雯雯  肖翔 《微生物学通报》2015,42(11):2238-2244
以模式菌株Shewanella oneidensis MR-1为代表的Shewanella菌属产电微生物广泛分布于自然水体环境中。作为兼性厌氧菌,Shewanella菌除了能进行有氧呼吸外,还能利用多种电子受体进行厌氧呼吸。通过多种细胞色素所组成的复杂电子传递网络,Shewanella菌不仅能利用渗入到周质空间的可溶性电子受体进行厌氧呼吸,更为特殊的是其能够借助电子的跨膜传递实现对胞外不溶性电子受体的异化还原代谢。本文概述了近年来Shewanella菌厌氧代谢途径的研究进展,探讨电子传递网络对Shewanella菌呼吸多样性及环境适应性的影响。  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