927 resultados para pseudomonas stutzeri
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Alguns Bastonetes Gram-negativos não fermentadores (BGNNF) costumam ser considerados clinicamente pouco significantes e a sua implicação em infecções é subestimada. Devido à similaridade fenotípica, mudanças taxonômicas, baixa reatividade bioquímica e limitações nos bancos de dados em sistemas comerciais, a identificação de BGNNF é frequentemente equivocada, culminando com a denominação de diferentes micro-organismos apenas como BGNNF, por falta de melhor diferenciação. O objetivo desse estudo foi avaliar, por métodos fenotípico convencional, proteômico e molecular, a identificação de BGNNF incomuns isolados em hemoculturas de pacientes atendidos em um hospital universitário no Rio de Janeiro. Foram selecionadas 78 amostras isoladas de hemoculturas caracterizadas no laboratório clinico como BGNNF para a identificação por sequenciamento dos genes 16S RNA e recA, por um conjunto amplo de testes fenotípicos manuais e por MALDI-TOF MS. Os micro-organismos predominantes na amostragem foram genotipados pela técnica de eletroforese em gel de campo pulsado (PFGE). Pelo sequenciamento do gene 16S rRNA, a maioria das amostras (n=31; 40%) foi incluída no gênero Burkholderia, seguido de Pseudomonas stutzeri (10%) e Delftia acidovorans (4%). Os demais isolados foram agrupados em 27 diferentes espécies. O sequencimento do gene recA identificou a maioria das espécies de Burkholderia como Burkholderia contaminans (n=19; 24%). Os testes fenotípicos incluíram as 31 amostras apenas no CBc e para as outras 47 amostras, a concordância com o sequenciamento do gene 16S rRNA em nível de espécie foi de 64% (n=30) e apenas em gênero a concordância foi de 17% (n=8). A análise comparativa geral da identificação por MALDI-TOF MS com o sequenciamento do gene16S rRNA mostrou que 42% (n=33) das 78 amostras foram concordantes em nível de espécie e 45% (n=35) apenas em gênero. Excluindo as amostras do CBc, houve um aumento da concordância em nível de espécie para 60%. As discordâncias parecem ser devido às diferenças nos perfis proteicos das amostras em relação às amostras-referência do banco de dados do equipamento e podem ser aprimorados com a atualização de perfis no sistema. A análise do polimorfismo genético de B. contaminans mostrou a ausência de um clone disseminado causando surto, além da provável origem ambiental das infecções. Os setores de nefrologia e hemodiálise contribuíram com maior número de pacientes com amostras positivas (5 pacientes e 9 amostras). Os grupos clonais BcoD e BcoE foram encontrados em pacientes assistidos no mesmo setor com diferença de quatro meses (BcoD, nefrologia) e 1,5 ano (BcoE, hemodilálise), entre as culturas, respectivamente. As discordâncias entre as técnicas ocorreram principalmente devido a dificuldade de identificação das espécies do CBc. Os BGNNF incomuns são de difícil caracterização independente da metodologia usada e nenhum método por si só foi capaz de identificar todas as amostras.
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The marine environment covers three quarters of the surface of the planet is estimated to be home to more than 80% of life and yet it remains largely unexplored. The rich diversity of marine flora and fauna and its adaptation to the harsh marine environment coupled with new developments in biotechnology, has opened up a new exciting vista for extraction of bioactive products of use in medicine. In this study inhibitory activity of a marine bacterium isolated from gut of ribbonfish was studied against pathogenic and environmental isolates of Vibrio species. This strain was identified as Pseudomonas stutzeri and it was found active against V. harveyi (luminescent bacteria), V. cholerae, V. alginolyticus, V. damseal, V. fluvialis. The antibacterial substance produced by Pseudomonas stutzeri was soluble in organic solvent and closely bound to external surface of bacterial cells. Reduction of the absorbance of the V. cholera cell suspension was observed when log phase cells of V. cholerae were treated with MIC and 4xMIC concentration of crude extract of Pseudomonas stutzeri.
Resumo:
随着环境污染问题的日益严重,微生物修复起到越来越重要的作用。假单胞菌是土壤微生物中最重要、研究最多的细菌之一,能降解简单和复杂的有机物,它们因此而广泛的存在于土壤和水体。但有关于石油、重金属及农药污染物对农田土壤假单胞菌多样性及种群结构的影响却缺乏全面和系统的认识。 本论文首次采用传统微生物培养方法与PCR-DGGE等现代微生物分子生态学研究方法相结合的手段,系统评价了长期含石油和重金属污水灌溉对中国最大的石油、重金属污灌区——沈抚、张士灌区农田土壤中的假单胞菌多样性及其种群结构的影响。同时,本论文也研究了乙草胺、甲胺磷对黑土假单胞菌多样性及种群结构的影响。得出以下结果: 石油污灌区土壤中总的假单胞菌多样性显著高于重金属污灌区;石油污灌区旱田土壤假单胞菌多样性接近于对照清洁土壤,同时低于相似污染程度的石油污灌区水田土壤。进一步测序发现,Pseudomonas mendocina、Pseudomonas stutzeri、Pseudomonas aeruginosa是所分析石油和重金属污灌区土壤中的优势类群,说明在长期污染胁迫下这3种假单胞菌分别得到了不同程度的富集。DGGE 结果显示石油和重金属污染土壤样品的可培养假单胞菌多样性没有显著差异,但均低于对照清洁土壤样品。对各个土壤样品可培养假单胞菌菌株进行REP-PCR基因分型,结果表明这些假单胞菌之间有显著的遗传差异。进一步测序表明,土壤样品中可培养假单胞菌优势类群中含有Pseudomonas. fluorescens 和Pseudomonas. Putida两种。 黑土农田土壤中使用乙草胺会严重降低总的及可培养假单胞菌群落的多样性,而且在5周内不能恢复。而甲胺磷处理土壤与对照相比则差异不显著,并且经过一段时间的适应,土壤中的总的及可培养假单胞菌种群不仅得到恢复而且超过对照。对各处理土壤总的及可培养假单胞菌DGGE谱带类型聚类分析,发现乙草胺、甲胺磷处理土壤样品均各自聚为一簇,说明农药污染类型是影响土壤中假单胞菌种群结构的重要因素。
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污水生物处理系统本质上是一种人工强化的工程化微生态系统。污水处理过程往往由多个功能互补的反应单元协同完成,例如因对污水中有机碳、氮和磷兼具良好的去除功能而在城市污水处理中被广泛应用的Anoxic / Oxic(A/O)生物处理工艺。不同反应单元特有的微生物群落之间的相互关系和相互作用与处理系统的稳定性和处理效率密切相关。所以对污水处理系统中微生物群落进行系统分析非常重要。研究系统中微生物群落的时空演替对于优化处理系统的设计和操作具有重要意义。但是,以往对于污水处理系统中微生态系统的解析多数针对实验室规模的其中个别反应器独立进行,还缺乏从系统水平对实际大规模运行的整个污水处理过程中所有反应单元群落进行分析的研究。 悬挂链移动曝气系统是对A / O工艺的完善和发展。悬挂链曝气工艺的实现是依靠悬挂链移动曝气设备和完善的自动控制系统来完成的。可以在系统中实现类似多级A/O的可能性,水力停留时间较长,污泥龄达到15天以上,能够完全实现A / O 工艺。 目前正被广泛应用在各种行业的污水处理项目中。 本文应用基于细菌16S rRNA中的PCR扩增方法(Polymerase Chain Reactor),结合变性梯度凝胶电泳指纹分离技术(Denaturing Gradient Gel Electrophoresis, DGGE),对实际规模的运用Anoxic / Oxic(A/O)工艺并采用悬挂链式移动曝气技术的污水生物处理系统中微生物群落特征,主要对细菌组成结构和群落动态,细菌优势菌群的多样性以及与系统功能稳定性的关系进行了研究,拟为更全面了解活性污泥处理系统中的优势菌群特征,以及细菌群落结构和功能动态变化关系,实现对活性污泥处理的优化操作,对污染物降解功能菌群的筛选,为运用现代培养技术实现分离培养并运用于环境修复实践奠定方法和理论基础。 首先,对影响PCR-DGGE分析的重要前操作步骤进行了优化和筛选,包括两个方面:细菌基因组DNA的高效提取和纯化;不同16S rRNA靶序列对PCR-DGGE分析的影响。从中选出适合于活性污泥样品的细菌基因组DNA提取方法和PCR-DGGE分析的最优靶序列组合。 其次,运用PCR-DGGE指纹图谱技术分析了该污水处理系统中不同功能反应单元中活性污泥的细菌种群结构特征,探讨了系统运行过程中细菌种群时间和空间上的动态特征。并将图谱中所显示的优势条带进行切割回收,重复扩增,电泳检测,序列测定并与GenaBank数据库中的微生物类群进行同源性比对,探讨活性污泥中细菌种群多样性,了解污泥中可能含有的主要具有污染物降解功能的类群信息。 在整个处理过程中,同一功能反应单元中不同位置的活性污泥微生物菌群结构不同。执行不同功能的处理单元活性污泥细菌多样性和组成结构各有不同。 在系统稳定运行的状态下,细菌组成结构的时间变化动态不显著。但是在系统的不同操作条件下,主要处理池的微生物群落的DGGE遗传指纹图谱较独特。 对该处理系统污泥中优势菌群的序列测定和同源性比对表明,优势菌群所对应的细菌的16S rDNA序列可以被归属于以下四个主要的细菌系:α, β, γ- Proteobacteria 以及厚壁菌门 phylum Firmicutes (low G+C Gram-positive)。 该处理系统的优势菌群的DGGE条带拥有潜在的具有异养硝化/好氧反硝化的除 N / P 类群。该类菌群中的大多数属于Pseudomonas spp.。另外,回收到两个与已鉴定的具有异养硝化和好氧反硝化能力的Pseudomonas stutzeri 和 Pseudomonas borbori 最相似的菌株的条带。γ-变形菌纲门(γ- Proteobacteria)的微生物类群在该缺氧-好氧处理厂中分布较广泛,尤其是和 N / P 去除紧密相关的具有脱氮除磷能力的Pseudomonas 类群,而且在好氧曝气处理池中分布较广,这可能和系统中表现的好氧反硝化现象相关。 不同的操作状况下微生物群落结构有差异。增加污泥回流比,增加DO(Dissolved oxygen)浓度,COD去除率和NH4+-N去除率显著增加,总N和总P的去除率改变不显著。 最后,对整个处理过程中微生物群落结构在系统正常调控改变范围内的长期动态和稳定性进行了探讨。整个处理系统的长期稳定性与体系中的每个处理环节相关,而不是仅与其中的单个主要反应池相关。污水处理体系的功能稳定性与其中的微生物群落稳定性相关,微生物群落结构决定了生态功能,群落结构变化能反应系统的运行状况及其降解效率。
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自养硝化过程在自然界氮素循环和污水处理系统脱氮过程中起着关键作用。因此,了解有机碳对硝化的影响和硝化菌与异养菌之间的竞争对微生物生态学和污水处理系统设计都很重要。目前对氨氧化到硝酸盐氮过程的研究文献很多,但对亚硝酸盐氧化过程在异养菌的存在下如何受到有机碳影响的研究甚少。本文从生理生化指标、基因组学、蛋白组学三方面考察了在实验室条件下有机碳(乙酸钠)对硝化细菌和异养菌组成的混合菌群的硝化性能、菌群结构及代谢功能的变化的影响。 全文分为两大部分: 第一部分为乙酸钠对游离态硝化混合菌群的硝化性能和菌群结构的短期影响。混合菌株先在自养条件下进行连续培养,两个月后硝化速率达到20 mg N/(L·d);而后离心收集菌体进行批式实验。在批式反应器中,初始亚硝氮均为126mg N/ L,乙酸钠-C 与亚硝酸盐-N 的比分别为0,0.44,0.88,4.41,8.82。结果表明:在低C/N 比(0.44 和0.88)时,亚硝酸盐去除速率比C/N=0 下高,细菌呈现一次生长;而在高C/N 比(4.41 和8.82)时,出现连续的硝化反硝化,亚硝酸盐去除率仍比对照下高,细菌呈现二次生长。不同C/N 比下微生物群落明显不同,优势菌群从自养和寡营养细菌体系(包括亚硝酸盐氧化菌,拟杆菌门,α-变形菌纲,浮霉菌门和绿色非硫细菌下的一些菌株)过渡到异养和反硝化菌体系 (γ-变形菌纲的菌株尤其是反硝化菌Pseudomonas stutzeri 和P. nitroreducens 占主导)。 第二部分为乙酸钠对硝化混合菌群生物膜的硝化性能和菌群结构的长期影响。接种富集的硝化混合菌群于装有组合式填料的三角瓶中,于摇床中自养培养;两个月后填料上形成生物膜的硝化速率达到20 mg N/ (L·d);而后进行长期实验,每12 小时更换混合营养培养基(亚硝氮约200 mg N/ L,C/N 比同上)。结果显示:相较于C/N 比=0 时的亚硝酸盐氧化反应来说,低C/N 比出现了部分的反硝化,而高C/N 比则是几乎完全的反硝化。与对照比,C/N=0.44 时亚硝酸盐氧化速率并未受乙酸钠的影响,反而上升了,但C/N=0.88 时亚硝酸盐氧化速率有所下降。菌群结构分析表明自养对照与混合营养下微生物群落的不同;PCR-DGGE未检测出混合营养下硝化杆菌的存在,而显示异养菌尤其是反硝化菌的大量存 在。荧光定量PCR 结果表明随C/N 比上升,硝化杆菌数量从2.42 × 104 下降到1.34× 103 16S rRNA gene copies/ ng DNA,反硝化菌由0 增加至2.51 × 104 nosZgene copies/ ng DNA。SDS-PAGE 的结果表明不同C/N 比下的蛋白组较为复杂且呈现一定的差异性。 有机碳对亚硝氮氧化及微生物群落的影响很复杂,本文分别讨论了对游离态和生物膜固定态两种状态的混合菌群相应的短期和长期影响研究。研究发现,有机碳并非一定带来硝化的负影响,如果控制在适当的C/N 比范围,有机碳是有利于亚硝氮氧化的。这些发现阐明了有机碳和硝化反硝化的关系,填补了硝化微生物生态学上的空白,对污水处理系统中减少异养菌的影响并提高氮去除率有一定理论指导意义。 Nitrification plays a key role in the biological removal of nitrogen in both nature and wastewater treatment plant (WWTP). So, understanding of the effect of organic carbon on nitrification and the competition between nitrifying bacteria and heterotrophic bacteria is important for both microbial ecology and WWTP design and operation. Despite the fact that the nitrification process of ammonia to nitrate has been extensively investigated, it is not known how the process of nitrite oxidization is affected by organic carbon when heterotrophic bacteria are present. By measuring different physiological and biochemical parameters, as well as using genomic DNA and proteome analysis, we investigated the influence of organic (acetate) on nitrite oxidizing performance, community structure and metabolic function of nitrite-oxidizing and heterotrophic bacteria under laboratory conditions. The dissertation involves two parts: Part one deals with the effect of organic matter on functional performance and bacterial community shift of nitrite-oxidizing and heterotrophic bacteria under suspended state. The bacteria were prepared in a continuous-flow stirred reactor under autotrophic condition; after two months, the nitrification rate of the culture reached about 20 mg N/ (L·d); then the bacteria were harvested for the next batch experiments. The initial concentrations of nitrite were 126 ± 6 mg N/ L in all flasks, and sodium acetate (C) to nitrite (N) ratios were 0, 0.44, 0.88, 4.41, and 8.82, respectively. The results showed that at low C/N ratios (0.44 or 0.88), the nitrite removal rate was higher than that obtained under autotrophic condition and the bacteria had single growth phase, while at high C/N ratios (4.41 or 8.82), continuous aerobic nitrification and denitrification occurred besides higher nitrite removal rates, and the bacteria had double growth phases. The community structure of total bacteria strikingly varied with the different C/N ratios; the dominant populations shifted from autotrophic and oligotrophic bacteria (NOB, and some strains of Bacteroidetes, Alphaproteobacteria, Actinobacteria, and green nonsulfur bacteria) to heterotrophic and denitrifying bacteria (strains of Gammaproteobacteria, especially Pseudomonas stutzeri and P. nitroreducens). Part two describes the influence of acetate on nitrite oxidizing performance, community structure and metabolic function of nitrite-oxidizing and heterotrophic bacteria in biofilms. Bacterial enrichments was transferred into flasks with polypropylene carriers and cultured under agitated and autotrophic condition. After two month, the biofilms grown on the carriers had a nitrification rate of about 20 mg N/ (L·h); then the biofilms were refreshed with mixotrophic medium (nitrite were 200 mg N/ L in all flasks, and C/N ratios was the same as above) every 12 h. the results show: normal nitrite oxidization reactions were performed when C/N = 0, but nitrite oxidization and partial denitrification occurred with low C/N ratios (0.44 or 0.88). At high C/N ratios (4.41 or 8.82), we mainly observed denitrification. In contrast to C/N = 0, the nitrite oxidization rate was unaffected when C/N = 0.44, but decreased with C/N = 0.88. The structure of bacterial communities varied significantly between autotrophic and mixotrophic conditions. Nitrobacter was hard to detect by PCR-DGGE while heterotrophs and especially denitrifiers were in the majority under mixotrophic conditions. Real-time PCR indicated that the Nitrobacter population decreased from 2.42 × 104 to 1.34 × 103 16S rRNA gene copies/ ng DNA, while the quantity of denitrifiers obviously increased from 0 to 2.51×104 nosZ gene copies/ ng DNA with an increasing C/N ratio. SDS-PAGE indicated the complexity of and a certain difference between the proteome of nitrite-oxidizing and heterotrophic bacteria at different C/N ratios. We conclude that the influence of organic matter on nitrite oxidation and the community structure of NOB and heterotrophic bacteria is complex. In this dissertation, we focused on how sodium acetate influenced the system both under suspended state and in biofilms. We observed that acetate did not necessarily have a negative impact on nitrification. Instead, an appropriate amount of acetate benefited both nitrite oxidization and denitrification. These findings provide a greater understanding about the relationship between organics and nitrification; they fill the gaps in the field of microbial ecology of nitrifying bacteria; they also provide insight into how to minimize the negative impact of heterotrophic bacteria and maximize the benefit of nitrogen removal in biological treatment systems.
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为获得更为丰富的石油降解微生物资源,从沈抚污灌区石油污染土壤和实验室高浓度柴油胁迫土壤中筛选出了4株高效石油烃降解菌SF-422、SF-428、SF-433和SYS-1.这4株菌总石油烃(Total petroleum hydrocarbon/TPH)生物降解率为67.4%~73.6%.经过16项生理生化特性实验和16S rDNA序列分析鉴定,SF-433,SF-428,SF-422和SYS-1分别为蜡状芽孢杆菌(Bacillus cereus),木糖氧化无色杆菌(Achromobacter xylosoxidans),施氏假单胞菌(Pseudomonas stutzeri)和洋葱伯克霍尔德氏菌(Burkholderia cepacia).纯烃降解定性实验表明所筛选出的4株高效降解菌均能够利用正十六烷、苯、菲和环己烷为唯一碳源生长,其中菌株SF-428和SYS-1显示了对芳烃及环烷烃较强的利用能力.
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C-type lectins are a superfamily of carbohydrate-recognition proteins which play crucial roles in the innate immunity. In this study, the gene of a C-type lectin with multiple carbohydrate-recognition domains (CRDs) from scallop Chlamys farreri (designated as Cflec-3) was cloned by rapid amplification of cDNA ends (RACE) approach based on expression sequence tag (EST) analysis. The full-length cDNA of Cflec-3 was of 2256 bp. The open reading frame encoded a polypeptide of 516 amino acids, including a signal sequence and three CRDs. The deduced amino acid sequence of Cflec-3 showed high similarity to members of C-type lectin superfamily. By fluorescent quantitative real-time PCR, the Cflec-3 mRNA was mainly detected in hepatopancreas, adductor, mantle, and marginally in gill, gonad and hemocytes of healthy scallops. After scallops were challenged by Listonella anguillarum, the mRNA level of Cflec-3 in hemocytes was up-regulated and was significantly higher than that of blank at 8 h and 12 h post-challenge. The function of Cflec-3 was investigated by recombination and expression of the cDNA fragment encoding its mature peptide in Escherichia coli BL21 (DE3)-pLysS. The recombined Cflec-3 (rCflec-3) agglutinated Gram-negative bacteria Pseudomonas stutzeri. The agglutinating activity was calcium-dependent and could be inhibited by D-mannose. These results collectively suggested that Cflec-3 was involved in the immune response against microbe infection and contributed to nonself-recognition and clearance of bacterial pathogens in scallop. (C) 2009 Elsevier Ltd. All rights reserved.
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Para satisfacer los altos rendimientos que impulsan la agricultura moderna la aplicación de fertilizantes nitrogenados ha sido fundamental. Dado que la base de la producción industrial de los fertilizantes químicos esta basado en el uso de combustibles fósiles, estos, actualmente, incrementan el costo económico debido a la disminución constante de las reservas de petróleo. Además, dada la baja eficiencia en el uso del fertilizante aplicado por parte de las plantas y el alto impacto ambiental debido a la emisión de óxido nitroso, resulta necesario emprender la búsqueda de nuevas estrategias para aumentar la concentración del nitrógeno fijado. Una de las propuestas para disminuir la aplicación de fertilizantes es el uso de microorganismos fijadores de nitrógeno; que ya son ampliamente utilizados en leguminosas por su capacidad de establecer asociaciones simbióticas; las cuales, lamentablemente, aún no han sido encontradas entre los principales cultivos de cereales. El objetivo del presente trabajo es la producción de una técnica de ingeniería genética que permita obtener bacterias fijadoras de nitrógeno recombinantes capaces de asociarse a distintos cultivos vegetales incrementando la productividad de los mismos. Para ello, los genes que sintetizan la nitrogenasa (nif), que están co-localizados en una isla genómica, en Pseudomonas stutzeri A1501 se transfirieron, vía el cósmido recombinante X940, a un promotor del crecimiento vegetal, Pseudomonas protegens Pf-5. La bacteria recombinante obtenida, P. protegens Pf-5 X940, fue capaz de crecer en medios de cultivo deficientes en nitrógeno o con el agregado de amonio; mostró una alta actividad nitrogenasa, liberando al medio de cultivo cantidades significativas de amonio y presentó expresión de los genes nif, sugiriendo que el proceso de fijación, en esta bacteria, es constitutivo. Las inoculaciones de especies vegetales (arabidopsis, alfalfa, festuca alta y maíz) con Pf-5 X940 aumentaron la concentración de amonio en el suelo y la productividad de las plantas en condiciones deficientes de nitrógeno. Estos resultados inician un nuevo camino hacia la producción efectiva de inoculantes recombinantes para la fijación de nitrógeno en un amplio rango de cultivos
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Para satisfacer los altos rendimientos que impulsan la agricultura moderna la aplicación de fertilizantes nitrogenados ha sido fundamental. Dado que la base de la producción industrial de los fertilizantes químicos esta basado en el uso de combustibles fósiles, estos, actualmente, incrementan el costo económico debido a la disminución constante de las reservas de petróleo. Además, dada la baja eficiencia en el uso del fertilizante aplicado por parte de las plantas y el alto impacto ambiental debido a la emisión de óxido nitroso, resulta necesario emprender la búsqueda de nuevas estrategias para aumentar la concentración del nitrógeno fijado. Una de las propuestas para disminuir la aplicación de fertilizantes es el uso de microorganismos fijadores de nitrógeno; que ya son ampliamente utilizados en leguminosas por su capacidad de establecer asociaciones simbióticas; las cuales, lamentablemente, aún no han sido encontradas entre los principales cultivos de cereales. El objetivo del presente trabajo es la producción de una técnica de ingeniería genética que permita obtener bacterias fijadoras de nitrógeno recombinantes capaces de asociarse a distintos cultivos vegetales incrementando la productividad de los mismos. Para ello, los genes que sintetizan la nitrogenasa (nif), que están co-localizados en una isla genómica, en Pseudomonas stutzeri A1501 se transfirieron, vía el cósmido recombinante X940, a un promotor del crecimiento vegetal, Pseudomonas protegens Pf-5. La bacteria recombinante obtenida, P. protegens Pf-5 X940, fue capaz de crecer en medios de cultivo deficientes en nitrógeno o con el agregado de amonio; mostró una alta actividad nitrogenasa, liberando al medio de cultivo cantidades significativas de amonio y presentó expresión de los genes nif, sugiriendo que el proceso de fijación, en esta bacteria, es constitutivo. Las inoculaciones de especies vegetales (arabidopsis, alfalfa, festuca alta y maíz)con Pf-5 X940 aumentaron la concentración de amonio en el suelo y la productividad de las plantas en condiciones deficientes de nitrógeno. Estos resultados inician un nuevo camino hacia la producción efectiva de inoculantes recombinantes para la fijación de nitrógeno en un amplio rango de cultivos
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O objetivo deste trabalho foi avaliar a capacidade de microrganismos de manguezais para controlar a podridão radicular causada por Pythium aphanidermatum e para promover o crescimento em pepino hidropônico (Cucumis sativus). Avaliaram-se 19 microrganismos quanto ao controle da doença em mini-hidroponia. Os microrganismos mais promissores para esse fim - Gordonia rubripertincta SO-3B-2 e a mistura dos isolados G. rubripertincta SO-3B-2, MB-P3A-49, MB-P3-C68 e SO-3L-3, de Pseudomonas stutzeri, e Bacillus cereus AVIC-3-6 - foram, posteriormente, testados quanto à promoção de crescimento do pepineiro, em casa de vegetação. Microrganismos de manguezais podem ter importância funcional no controle biológico da podridão radicular causada por P. aphanidermatum e na promoção do crescimento do pepineiro cultivado em hidroponia. Os microrganismos G. rubripertincta SO-3B-2 e P. stutzeri MB-P3A-49 são promissores na promoção do crescimento das plantas não infestadas com o patógeno.
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Mercúrio é um dos elementos mais tóxicos tanto para seres humanos como os demais animais. Em ambientes naturais seus compostos podem ter origem em fontes naturais ou em decorrência da ação do homem. A atividade microbiana tem papel crítico na biorremediação. A resistência ao mercúrio nas bactérias está associada a um conjunto de genes organizados no operon mer. Considerando este cenário realizamos um estudo com bactérias Gram-negativas isoladas de sedimento de rios de duas áreas com distintos graus de atividade antropogênica, Barreiras e Caxiuanã. A resistência ao mercúrio foi avaliada em ensaios de crescimento in vitro da bactéria em meio contendo Hg. A presença do operon mer foi determinada por PCR para os genes RTPCABD, componentes do operon. O ensaio in vitro, determinou que apenas 2 isolados dos 107 avaliados, Acinetobacter baumannii de Caxiuanã e Pseudomonas stutzeri de Barreiras, apresentavam resistência ao Hg. Um operon mer foi identificado e caracterizado apenas do isolado Acinetobacter baumannii. Este apresenta os genes RTPCAD e sua organização e seqüência nucleotídica possui identidade total com o operon mer de um isolado de Acinetobacter calcoaceticus da Rússia.
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Coordenação de Aperfeiçoamento de Pessoal de Nível Superior (CAPES)
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The prospection of biological control agents in similar environments to the microbe application improves the chances of microorganisms establishment added to the environment. The low survival of these beneficial microorganisms added to hydroponic environment is a problem for the growth promotion and root rot biological control success in hydroponic crops. Because of the environmental similarity between hydroponic systems and mangrove ecosystems, the aim of this work was to evaluate the ability of mangrove microbes to control root rot caused by Pythium aphanidermatum and to improve plant growth in hydroponic cucumbers. Among the 28 strains evaluated for disease control in small-hydroponic system using cucumber seedlings, Gordonia rubripertincta SO-3B-2 alone or in combination with Pseudomonas stutzeri (MB-P3A- 49, MB-P3-C68 and SO-3L-3), and Bacillus cereus AVIC-3-6 increased the seedlings survival and were subsequently evaluated in hydroponic cucumbers in a greenhouse. Bacillus cereus AVIC-3-6 protected the plants from stunting caused by the pathogen and Gordonia rubripertincta SO-3B-2 and Pseudomonas stutzeri MB-P3A-49 increased the plant growth. We concluded that microorganisms from mangroves are useful as biocontrol agents and for improving plant growth in hydroponic crops.
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One mechanism of silver resistance in microorganisms is accumulation of the metal ions in the cell. Here, we report on the phenomenon of biosynthesis of silver-based single crystals with well-defined compositions and shapes, such as equilateral triangles and hexagons, in Pseudomonas stutzeri AG259. The crystals were up to 200 nm in size and were often located at the cell poles. Transmission electron microscopy, quantitative energy-dispersive x-ray analysis, and electron diffraction established that the crystals comprise at least three different types, found both in whole cells and thin sections. These Ag-containing crystals are embedded in the organic matrix of the bacteria. Their possible potential as organic-metal composites in thin film and surface coating technology is discussed.