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1.
亚硝酸还原酶(Nitrite Reductase,NiR)是自然界氮循环过程中催化亚硝酸盐还原的一类关键酶。其中,nir S和nir K基因编码合成的亚硝酸还原酶Cu-NiR和cd1-NiR是反硝化作用中的限速酶,二者功能类似但结构和辅助因子组成截然不同。研究发现这两类酶对不同环境梯度具有不同的响应机制。因此,本文详述了Cu-NiR和cd1-NiR的结构特征、相关微生物类群的分布和检测技术,并针对nir S和nir K基因表达和活性的影响因素进行了统计和分析,最后对未来的研究方向进行了展望。  相似文献   

2.
植物体内一氧化氮合成途径研究进展   总被引:1,自引:0,他引:1  
一氧化氮(NO)作为一种气体信号分子,在植物生理过程中发挥重要作用,它参与调节植物的生长、发育及对外界环境的应激反应.植物体内主要通过酶催化途径和非酶催化途径合成NO.酶催化途径合成NO的主要酶包括一氧化氮合酶(nitric oxide synthase,NOS)和硝酸还原酶(nitrate reductase,NR),以及在某些植物的特定组织或器官或在特殊环境条件下存在的一氧化氮氧化还原酶(nitric oxide oxidoreductase,Ni-NOR)和黄嘌呤氧化还原酶(xanthine oxidoreductase,XOR).非酶催化合成途径主要是在酸性和还原剂存在条件下将亚硝酸盐还原成NO.该文主要结合研究方法,综述了植物体内NO合成途径的研究进展,为植物体内NO信号的作用机理的深入研究提供信息资料.  相似文献   

3.
以家榆种子为试材,采用种子活力检测技术、激光共聚焦显微镜技术、蛋白质S-亚硝基化检测技术,结合多种相关抑制剂的使用,研究了NO对种子老化的影响及其作用机制。结果表明:(1)外源NO可显著提升老化处理后种子的活力,NO清除剂cPTIO可降低老化处理后种子的活力,且此影响可被NO供体硝普钠所恢复。(2)硝酸还原酶底物亚硝酸钠、类一氧化氮合酶底物L-精氨酸(L-Arg)均可提高老化处理后种子的活力,2种酶的抑制剂可降低种子活力,且此影响可被NO供体硝普钠所恢复,即硝酸还原酶与类一氧化氮合酶可参与种子老化过程中NO的产生。(3)种子老化过程中NO首先在子叶中合成,随后在胚根尖部、生长点与下胚轴等部位出现,蛋白质S-亚硝基化水平与NO在种子中产生的时间特点一致。研究认为,NO可提高种子抗老化能力,种子内NO可通过硝酸还原酶途径和类一氧化氮合酶途径产生,且与种子蛋白质S-亚硝基化水平相关。  相似文献   

4.
微生物亚硝酸盐还原酶的研究进展   总被引:1,自引:0,他引:1  
亚硝酸盐还原酶(Nitrite reductase,简称NiR,EC1.7.2.1)是催化亚硝酸盐(Nitrite,简称NIT)还原的一类酶,可降解NIT为NO或NH3,是自然界氮循环过程的关键酶。本文详细阐述亚硝酸盐还原酶的分类、结构特点、催化机制以及现阶段的应用领域,为深入研究亚硝酸还原酶提供参考。  相似文献   

5.
植物通过硝酸盐同化途径以硝酸盐和氨的形式吸收氮元素。硝酸盐的同化是一个受到严格控制的过程,其中两个先后参加反应的酶——硝酸还原酶(NR)和亚硝酸还原酶(NiR)对初级氮的同化起主要调控。在高等植物中,NR和NiR基因的转录及转录后加工受到各种内在和外在因素的影响,翻译后调控是消除亚硝酸盐积累的重要机制。随着分子生物学技术的发展,可以更容易地通过突变体和转基因方式来研究NR和NiR基因的调控。  相似文献   

6.
一氧化氮在光延缓小麦叶片衰老中的作用   总被引:1,自引:1,他引:0  
以小麦(Triticum aestivum L.)离体叶片为材料,采用药理学实验和激光扫描共聚焦显微镜技术,对内源一氧化氮(NO)在光延缓离体小麦叶片衰老过程中的作用进行了研究.结果显示:光照处理的同时添加NO清除剂血红蛋白(Hb)或硝酸还原酶抑制剂钨酸钠(Na2WO4)后,光抑制离体小麦叶片叶绿素和可溶性蛋白含量降低及丙二醛累积的效应均显著减弱;光照处理下小麦叶片硝酸还原酶活性和内源NO水平均明显高于黑暗条件下,而Na2WO4处理不仅能抑制光诱导的硝酸还原酶活性提高,还与Hb处理一样能显著降低光下叶片内源NO水平.结果表明,硝酸还原酶途径来源的NO参与了光抑制离体小麦叶片衰老的过程.  相似文献   

7.
王玮  赵方贵  侯丽霞  车永梅  刘新 《生态学报》2013,33(23):7583-7589
以烟草(Nicotiana tabacum,品种CF90NF)为材料,利用分光光度法和荧光显微技术结合药理学实验,探讨在AM真菌摩西球囊霉(Glomus mosseae,G.m)与烟草共生过程中一氧化氮(nitric oxide, NO)的作用。结果表明,烟草侧根中含有一定水平的内源NO,苗期接种G.m 10天后,烟草根系NO含量显著增加,侧根中的NO荧光强度也在接种后10天达到最强;一定浓度的NO供体硝普钠(sodium nitroprusside,SNP)能促进G.m对烟草的侵染,而NO的清除剂2-4,4,5,5-苯-四甲基咪唑-1-氧-3-氧化物( 2-(4-carboxyphenyl)-4,4,5,5-tetramethylimidazoline-1-oxyl-3-oxidepotassium salt,cPTIO)可明显减弱侧根和菌丝中的NO的荧光强度,降低AM真菌的侵染率,表明NO参与G.m与烟草的共生过程;在G.m与烟草的共生过程中,烟草根系硝酸还原酶(nitrate reductase,NR)活性与Nia-1的表达量明显升高,且NR的抑制剂钨酸钠(sodium tungstate,Na2WO4)可以降低烟草侧根中的荧光强度,但对菌丝中的NO的荧光强度无明显影响。由此推测,来自根系NR途径的NO参与AM真菌与烟草的共生过程,菌丝中可能存在其他来源的NO。  相似文献   

8.
真菌漆酶的结构与功能   总被引:15,自引:0,他引:15  
漆酶是一种含铜的多酚氧化酶,能催化氧化酚类和芳香类化合物,同时伴随4个电子的转移,并将分子氧还原成水。漆酶结构的解析是阐明其催化作用机理、了解蛋白质结构与功能关系的基础。综述近年来对真菌漆酶蛋白结构及其功能研究的进展。  相似文献   

9.
小型核酶的结构和催化机理   总被引:5,自引:1,他引:4  
自然界存在的小型核酶主要有锤头型核酶、发夹型核酶、肝炎δ病毒(HDV)核酶和VS核酶.锤头型核酶由3个短螺旋和1个广义保守的连接序列组成;发夹型核酶的催化中心由两个肩并肩挨着的区域构成;HDV核酶折叠成包含五个螺旋臂(P1~P4)的双结结构;VS核酶由五个螺旋结构组成,这些螺旋结构通过两个连接域连接起来.小型核酶的催化机理与其分子结构密切相关.金属离子或特定碱基都可作为催化反应的关键成分.锤头型核酶的催化必须有金属离子(尤其是二价金属离子)参与,而发夹型核酶则完全不需要金属离子.基因组HDV核酶进行催化时要有金属离子和特定碱基互相配合.  相似文献   

10.
一氧化氮(NO)是神经元细胞内一种新型的神经递质,它由一氧化氮合酶(NOS)催化而成。在神经系统中神经元型一氧化氮合酶(nNOS)是NO合成的关键酶。大量研究表明,nNOS可调节多种生理和病理过程诸如炎性痛和神经病理性疼痛。该文通过介绍nNOS的结构、分布和影响nNOS活性的因素,阐述了nNOS在病理性疼痛中的重要作用,为此可通过调节nNOS表达来达到调节生理和病理过程。  相似文献   

11.
The cd1 NiRs (nitrite reductases) are enzymes catalysing the reduction of nitrite to NO (nitric oxide) in the bacterial energy conversion denitrification process. These enzymes contain two distinct redox centres: one covalently bound c-haem, which is reduced by external electron donors, and another peculiar porphyrin, the d1-haem (3,8-dioxo-17-acrylate-porphyrindione), where nitrite is reduced to NO. In the present paper, we summarize the most recent results on the mechanism of nitrite reduction by the cd1 NiR from Pseudomonas aeruginosa. We discuss the essential catalytic features of this enzyme, with special attention to the allosteric regulation of the enzyme's activity and to the mechanism employed to avoid product inhibition, i.e. trapping of the active-site reduced haem by the product NO. These results shed light on the reactivity of cd1 NiRs and assign a central role to the unique d1-haem, present only in this class of enzymes.  相似文献   

12.
Recently, the structure of a Cu-containing nitrite reductase (NiR) from Hyphomicrobium denitrificans (HdNiR) has been reported, establishing the existence of a new family of Cu-NiR where an additional type 1 Cu (T1Cu) containing cupredoxin domain is located at the N-terminus (Nojiri et al. in Proc. Natl. Acad. Sci. USA 104:4315-4320, 2007). HdNiR retains the well-characterised coupled T1Cu-type 2 Cu (T2Cu) core, where the T2Cu catalytic site is also built utilising ligands from neighbouring monomers. We have undertaken a genome analysis and found the wide occurrence of these NiRs, with members clustering in two groups, one showing an amino acid sequence similarity of around 80% with HdNiR, and a second group, including the NiR from the extremophile Acidothermus cellulolyticus, clustering around 50% similarity to HdNiR. This is reminiscent of the difference observed between the blue (Alcaligenes xylosoxidans) and green (Achromobacter cycloclastes and Alcaligenes faecalis) NiRs which have been extensively studied and may indicate that these also form two distinct subclasses of the new family. Genome analysis also showed the presence of Cu-NiRs with a C-terminal extension of 160-190 residues containing a class I cytochrome c domain with a characteristic beta-sheet extension. Currently no structural information exists for any member of this family. Genome analysis suggests the widespread occurrence of these novel NiRs with representatives in the alpha, beta and gamma subclasses of the Proteobacteria and in two species of the fungus Aspergillus. We selected the enzyme from Ralstonia pickettii for comparative modelling and produced a plausible structure highlighting an electron transfer mode in which the cytochrome c haem at the C-terminus can come within 16-A reach of the T1Cu centre of the T1Cu-T2Cu core.  相似文献   

13.
Cu-containing nitrite reductases (NiRs) perform the reduction of nitrite to NO via an ordered mechanism in which the delivery of a proton and an electron to the catalytic type 2 Cu site is highly orchestrated. Electron transfer from a redox partner protein, azurin or pseudoazurin, to the type 1 Cu site is assumed to occur through the formation of a protein-protein complex. We report here a new crystal form in space group P2(1)2(1)2(1) of the Met144Leu mutant of NiR from Alcaligenes xylosoxidans (AxNiR), revealing a head-to-head packing motif involving residues around the hydrophobic patch of domain 1. Superposition of the structure of azurin II with that of domain 1 of one of the Met144Leu molecules provides the first glimpse of an azurin II-NiR protein-protein complex. Mutations of two of the residues of AxNiR, Trp138His (Barrett et al. in Biochemistry 43:16311-16319, 2004) and Met87Leu, highlighted in the AxNiR-azurin complex, results in substantially decreased activity when azurin is used as the electron donor instead of methyl viologen, providing direct evidence for the importance of this region for complex formation.  相似文献   

14.
The cytochrome c nitrite reductases perform a key step in the biological nitrogen cycle by catalyzing the six-electron reduction of nitrite to ammonium. Graphite electrodes painted with Escherichia coli cytochrome c nitrite reductase and placed in solutions containing nitrite (pH 7) exhibit large catalytic reduction currents during cyclic voltammetry at potentials below 0 V. These catalytic currents were not observed in the absence of cytochrome c nitrite reductase and were shown to originate from an enzyme film engaged in direct electron exchange with the electrode. The catalytic current-potential profiles observed on progression from substrate-limited to enzyme-limited nitrite reduction revealed a fingerprint of catalytic behavior distinct from that observed during hydroxylamine reduction, the latter being an alternative substrate for the enzyme that is reduced to ammonium in a two electron process. Cytochrome c nitrite reductase clearly interacts differently with these two substrates. However, similar features underlie the development of the voltammetric response with increasing nitrite or hydroxylamine concentration. These features are consistent with coordinated two-electron reduction of the active site and suggest that the mechanisms for reduction of both substrates are underpinned by common rate-defining processes.  相似文献   

15.
In denitrifying organisms with copper containing dissimilatory nitrite reductases, electron donation from a reduced cupredoxin is an essential step in the reduction of nitrite to nitric oxide. Copper nitrite reductases are categorised into two subgroups based on their colour, green and blue, which are found in organisms where the cupredoxins are pseudoazurins and azurins, respectively. In view of this and some in vitro electron donation experiments, it has been suggested that copper nitrite reductases have specific electron donors and that electron transfer takes place in a specific complex of the two proteins. We report results from the first comprehensive electron donation experiments using three copper nitrite reductases, one green and two blue, and five cupredoxins, one pseudoazurin and four azurins. Our data show that pseudoazurin can readily donate electrons to both blue and green copper nitrite reductases. In contrast, all of the azurins react very sluggishly as electron donors to the green nitrite reductase. These results are discussed in terms of surface compatibility of the component proteins, complex formation, overall charges, charge distribution, hydrophobic patches and redox potentials. A docking model for the complexes is proposed.  相似文献   

16.
The processes involved in nitrate metabolism in Halobacterium of the Dead Sea are part of a dissimilatory pathway operating in these bacteria. The induction of both nitrate and nitrite reductases is shown to depend on the presence of nitrate and of anaerobic conditions. The gas products of the denitrification process were identified as nitrous oxide and nitrogen. Some properties of two of the enzymes involved in this process, nitrate and nitrite reductases, are reported. It is shown that the 2 Feferredoxin, which is present in large quantities in Halobacterium of the Dead Sea, can serve as an electron donor for nitrite reduction by nitrite reductase. It is suggested that the presence of a dissimilatory pathway for the reduction of nitrate in Halobacterium of the Dead Sea can be used as a tool for its classification.  相似文献   

17.
NiRs (nitrite reductases) convert nitrite into NO in the denitrification process. RpNiR (Ralstonia pickettii NiR), a new type of dissimilatory Cu-containing NiR with a C-terminal haem c domain from R. pickettii, has been cloned, overexpressed in Escherichia coli and purified to homogeneity. The enzyme has a subunit molecular mass of 50515 Da, consistent with sequence data showing homology to the well-studied two-domain Cu NiRs, but with an attached C-terminal haem c domain. Gel filtration and combined SEC (size-exclusion chromatography)-SAXS (small angle X-ray scattering) analysis shows the protein to be trimeric. The metal content of RpNiR is consistent with each monomer having a single haem c group and the two Cu sites being metallated by Cu(2+) ions. The absorption spectrum of the oxidized as-isolated recombinant enzyme is dominated by the haem c. X-band EPR spectra have clear features arising from both type 1 Cu and type 2 Cu centres in addition to those of low-spin ferric haem. The requirements for activity and low apparent K(m) for nitrite are similar to other CuNiRs (Cu-centre NiRs). However, EPR and direct binding measurements of nitrite show that oxidized RpNiR binds nitrite very weakly, suggesting that substrate binds to the reduced type 2 Cu site during turnover. Analysis of SEC-SAXS data suggests that the haem c domains in RpNiR form extensions into the solvent, conferring a high degree of conformational flexibility in solution. SAXS data yield R(g) (gyration radius) and D(max) (maximum particle diameter) values of 43.4 ? (1 ?=0.1 nm) and 154 ? compared with 28 ? and 80 ? found for the two-domain CuNiR of Alcaligenes xylosoxidans.  相似文献   

18.
Nitrite reductases are key enzymes that perform the first committed step in the denitrification process and reduce nitrite to nitric oxide. In copper nitrite reductases, an electron is delivered from the type 1 copper (T1Cu) centre to the type 2 copper (T2Cu) centre where catalysis occurs. Despite significant structural and mechanistic studies, it remains controversial whether the substrates, nitrite, electron and proton are utilised in an ordered or random manner. We have used crystallography, together with online X-ray absorption spectroscopy and optical spectroscopy, to show that X-rays rapidly and selectively photoreduce the T1Cu centre, but that the T2Cu centre does not photoreduce directly over a typical crystallographic data collection time. Furthermore, internal electron transfer between the T1Cu and T2Cu centres does not occur, and the T2Cu centre remains oxidised. These data unambiguously demonstrate an ‘ordered’ mechanism in which electron transfer is gated by binding of nitrite to the T2Cu. Furthermore, the use of online multiple spectroscopic techniques shows their value in assessing radiation-induced redox changes at different metal sites and demonstrates the importance of ensuring the correct status of redox centres in a crystal structure determination. Here, optical spectroscopy has shown a very high sensitivity for detecting the change in T1Cu redox state, while X-ray absorption spectroscopy has reported on the redox status of the T2Cu site, as this centre has no detectable optical absorption.  相似文献   

19.
Some recent studies on the pathway of nitrogen and the reductases of denitrification are reviewed. The available evidence suggests that while the intermediates of denitrification can remain enzyme-bound (presumably to nitrite reductase) prior to formation of N2O, NO and nitroxyl (HNO) can be released in part by certain bacteria. Release of NO is recognized by a nitrite/NO?15N exchange reaction and isotopic scrambling in product N2O; release of nitroxyl by Pseudomonas stutzeri is recognized by isotopic scrambling of nitrite and NO in product N2O in absence of exchange and affords evidence that the first N?N bond forms in denitrification at the N1+ redox level. The recent purification and partial characterization of nitrous oxide reductase are described. The ability of the dissimilatory nitrite reductase to activate nitrite for nitrosyl transfer affords a new chemical probe into the mechanism of action of this central enzyme. It would appear that reduction of nitrite is subject to electrophilic catalysis. 18O studies show that dissociation of nitrite from nitrite reductase can be slow relative to competing reduction or nitrosyl transfer.  相似文献   

20.
Electron transfer over 12.6 A from the type 1 copper (T1Cu) to the type 2 copper (T2Cu) was investigated in the copper-containing nitrite reductases from two denitrifying bacteria (Alcaligenes xylosoxidans GIFU 1051 and Achromobacter cycloclastes IAN 1013), following pulse radiolytical reduction of T1Cu. In the presence of nitrite, the rate constant for the intramolecular electron transfer of the enzyme from A. xylosoxidans decreased 1/2 fold to 9 x 10(2) s-1 (20 degrees C, pH 7.0) as compared to that for the same process in the absence of nitrite. However, the rate constant increased with decreasing pH to become the same (2 x 10(3) s-1) as that in the absence of nitrite at pH 6.0. A similar result was obtained for the enzyme from A. cycloclastes. The pH profiles of the two enzymes in the presence of nitrite are almost the same as that of the enzyme activity of nitrite reduction. This suggests that the intramolecular electron transfer process is closely linked to the following process of catalytic reduction of nitrite. The difference in redox potential (DeltaE) of T2Cu minus T1Cu was calculated from equilibrium data for the electron transfer. The pH-dependence of DeltaE was in accord with the equation: DeltaE = DeltaE(0)+0.058 log (Kr[H+]+[H+]2)/(K(0)+[H+]), where K(r) and K(0) are the proton dissociation constants for the oxidized and reduced states of T2Cu, respectively. These results raise the possibility that amino acid residues linked by the redox of T2Cu play important roles in the enzyme reaction, being located near T2Cu.  相似文献   

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