33 research outputs found

    Analysis of 16S rRNA and mxaF genes revealing insights into Methylobacterium niche-specific plant association

    Get PDF
    The genus Methylobacterium comprises pink-pigmented facultative methylotrophic (PPFM) bacteria, known to be an important plant-associated bacterial group. Species of this group, described as plant-nodulating, have the dual capacity of producing cytokinin and enzymes, such as pectinase and cellulase, involved in systemic resistance induction and nitrogen fixation under specific plant environmental conditions. The aim hereby was to evaluate the phylogenetic distribution of Methylobacterium spp. isolates from different host plants. Thus, a comparative analysis between sequences from structural (16S rRNA) and functional mxaF (which codifies for a subunit of the enzyme methanol dehydrogenase) ubiquitous genes, was undertaken. Notably, some Methylobacterium spp. isolates are generalists through colonizing more than one host plant, whereas others are exclusively found in certain specific plant-species. Congruency between phylogeny and specific host inhabitance was higher in the mxaF gene than in the 16S rRNA, a possible indication of function-based selection in this niche. Therefore, in a first stage, plant colonization by Methylobacterium spp. could represent generalist behavior, possibly related to microbial competition and adaptation to a plant environment. Otherwise, niche-specific colonization is apparently impelled by the host plant

    Analysis of 16S rRNA and mxaF genes reveling insights into Methylobacterium niche-specific plant association

    Get PDF
    The genus Methylobacterium comprises pink-pigmented facultative methylotrophic (PPFM) bacteria, known to be an important plant-associated bacterial group. Species of this group, described as plant-nodulating, have the dual capacity of producing cytokinin and enzymes, such as pectinase and cellulase, involved in systemic resistance induction and nitrogen fixation under specific plant environmental conditions. The aim hereby was to evaluate the phylogenetic distribution of Methylobacterium spp. isolates from different host plants. Thus, a comparative analysis between sequences from structural (16S rRNA) and functional mxaF (which codifies for a subunit of the enzyme methanol dehydrogenase) ubiquitous genes, was undertaken. Notably, some Methylobacterium spp. isolates are generalists through colonizing more than one host plant, whereas others are exclusively found in certain specific plant-species. Congruency between phylogeny and specific host inhabitance was higher in the mxaF gene than in the 16S rRNA, a possible indication of function-based selection in this niche. Therefore, in a first stage, plant colonization by Methylobacterium spp. could represent generalist behavior, possibly related to microbial competition and adaptation to a plant environment. Otherwise, niche-specific colonization is apparently impelled by the host plant

    Methylobacterium spp. ecology in the host plant

    No full text
    O gênero Methylobacterium é composto por bactérias de coloração rósea, metilotróficas facultativas (PPFM - pink-pigmented facultative methylotrophic), que podem fixar nitrogênio, nodular a planta hospedeira, produzir o fitohormônio citocinina e as enzimas pectinase e celulase, podendo dessa forma promover o crescimento vegetal devido à disponibilidade de nitrogênio e à indução de resistência sistêmica. Methylobacterium spp. têm sido descritas como endófitos ou epífitas em diferentes plantas hospedeiras, onde a sua colonização e distribuição no hospedeiro podem ser influenciadas pelo genótipo da planta ou por interações com outros microrganismos associados ao hospedeiro. Neste contexto, poucos trabalhos têm sido desenvolvidos visando um melhor entendimento da interação Methylobacterium-planta e da diversidade deste gênero bacteriano que tem sido isolado de diferentes plantas hospedeiras, exercendo diferentes funções ainda pouco conhecidas. Portanto, este trabalho tem como objetivo estudar a diversidade genética de Methylobacterium spp., por meio do seqüenciamento parcial dos genes 16S rRNA e mxaF; analisar os genes de responsáveis pela interação da Methylobacterium com a planta hospedeira e analisar os genes envolvidos na interação Methylobacterium (endófito)- Xylella fastidiosa (patógeno). Os resultados mostraram que existe uma resposta adaptativa de Methylobacterium spp. específica para cada planta hospedeira. Da mesma forma, foi observado que esta adaptação específica da bactéria à planta, também pode levar à seleção de genótipos específicos para cada planta hospedeira, embora eventos aleatórios também possam ser responsáveis pela diversidade de Methylobacterium na planta hospedeira. Na análise de expressão gênica da interação Methylobacterium-planta, foi observado que o gene relacionado ao metabolismo do metanol (mxaF) não apresentou mudança no padrão de expressão. Genes relacionados a estresse crtI (estresse sentido pela bactéria) e acdS (estresse sentido pela planta), tiveram suas expressões reduzidas na presença da planta, mostrando que a presença de exsudados das plantas não representou um estresse ao desenvolvimento bacteriano. Os genes relacionados à patogenicidade patatin e phoU não foram alterados, confirmando que Methylobacterium é um endófito, e possuem expressão induzida de tais genes quando interagindo com a planta hospedeira. Os resultados permitem concluir que nas condições avaliadas os exsudados das plantas não causam estresse à bactéria (SR1.6/6). Por meio da análise de expressão gênica in vitro de X. fastidiosa em co-cultivo com M. mesophilicum, foi observado que este fitopatógeno vascular apresentou diminuição do crescimento e da formação de biofilme. Os resultados aqui apresentados mostram que a diversidade deste grupo de endófitos é parcialmente determinada pela planta hospedeira, onde tais bactérias interagem tanto com a planta como com outros grupos, como fitopatógenos presentes neste nicho.The genus Methylobacterium, constituted by PPFMs - pink-pigmented facultative methylotrophic, are able to fix nitrogen, nodule the host plant, produce cytokines and enzymes involved in induction of systemic resistance such as pectinase and cellulase, inducing plant growth. Methylobacterium sp. has been described as endophyte or epiphyte in different host plants, where the colonization and distribution on the host can be influenced by plant genotype or by interaction with other microorganisms associated to the host. In this context, few studies aims the better understanding of the diversity of this genus in different host, the interaction Methylobacterium-plant, and the interaction Methylobacterium-other bacteria. Therefore, this study aims to study the genetic diversity of Methylobacterium spp., by sequencing the 16S rRNA and mxaF gene; to analyze the genes responsible for the Methylobacterium-plant host interaction and to analyze the genes involved in Methylobacterium (endophyte) - Xylella fastidiosa (pathogen) interaction. Results show differential adaptive responses of Methylobacterium spp. in distinct plant species. However, the clustering according to the host plant was observed for a subset of isolates, suggesting that this diversity could be driven by stochastic events, although plant genotype may contribute to this diversity. Analyzing the Methylobacterium-plant interaction gene expression it was observed that genes related to metabolism of methanol (mxaF) was not amended. The genes related to stress such as crtI (stress sensed by the bacteria) and acdS (stress sensed by the plant) had its expression reduced with the plant showing that the plant exudates did not represent a stress to the bacteria development. The genes related to pathogenicity like patatin and phoU were not amended, confirming that Methylobacterium is an endophyte that do not induce when the bacteria interacts with the plant host. Using a genetic expression analyses of X. fastidiosa in vitro in co-cultive with M. mesophilicum, it was seen that this phytopathogen presented the growth and biofilm formation reduction. These results show that the diversity of this endophyte group is partially determinate by the plant host, where this bacterium interacts with the plant and with other groups, such as phytopathogen present in this niche

    Mecanismos de tolerância ao cádmio em Burkholderia sp. e sua aplicação na fitorremediação

    No full text
    Soils have been contaminated with cadmium (Cd) by the use of fertilizers, calcareous, pesticides and industrial and/or domestic effluents. It can be leached to groundwater, as well as be taken up by plants potentially leading to reduce growth and yield. It causes different damages to the cell, generating oxidative stress which is responsible for its toxicity, affecting all living organism. A balance in the redox state of the cell to maintain cellular integrity and metabolism is essential for organism tolerance. Thus, the antioxidant response of bacteria exposed to Cd was studied to understand the tolerance mechanism, and be able to develop a methodology to bioremediate contaminated soils. MDA and hydrogen peroxide contents and different enzymes activity of antioxidant system (SOD, CAT, GR and GST) of two strains from Burkholderia genus, one from a soil contaminated with Cd in high concentrations (strain SCMS54) and the other from soil without Cd (strain SNMS32) in two exposure time (5 and 12 h), were analyzed. Stress measurement (MDA and hydrogen peroxide content) and antioxidant enzyme activities (SOD, CAT, GR and GST) increased in almost all treatments in the presence of Cd. These results also indicate that strain SCMS54 (isolated from Cd contaminated soil) presents a higher metabolic diversity and plasticity due the expression of more isoforms of the enzymes SOD, CAT and GR. The strain also accumulates 50% more Cd. We also analyzed the response to Ni of these two strain, observing a similar response to Cd, except for GST enzyme expression, which in strain SCMS54 this enzyme was induced in the presence of Ni, indicating that this enzyme can be essential on Ni tolerance. After that, the strain isolated from Cd contaminated soil (SCMS54) was selected to proceed the studies to evaluate the benefits of tolerant microorganism-tomato plant interaction. The use of plants to remove heavy metals from contaminated soilhas less impact and a lower cost. Soil microorganisms can be able to solubilize or mobilize soil metals acting also as bioremediator. Besides the high tolerance to Cd, the strain SCMS54 can produce indole-acetic acid (IAA), solubilize inorganic phosphate and produce siderophore, revealing its potential in plantmicroorganism mutual and beneficial interaction. When interacting with tomato plants exposed to Cd, this bacterium led to decrease in plant peroxide concentration and chlorosis levels, promoted relative plant growth and reduced the root absorption of Cd resulting in an increase in plant tolerance to this highly toxic heavy metal. Indicating that inoculation of tomato plants with Burkholderia sp. SCMS54 promotes better growth when cultivated in the presence of Cd by a mechanism that appears to decrease Cd concentration in roots as a result of a bacterial-plant root beneficial interaction.O cádmio (Cd) tem contaminado solos pelo uso de fertilizantes, calcário, agrotóxicos e resíduos industriais e/ou domésticos. Podendo ser lixiviado ao lençol freático ou absorvido pelas plantas,resultando na redução do crescimento e da produtividade. Esse metal afeta todos os organismos vivos e causa diferentes danos às células. A tolerância a esse metal se deve principalmente ao balanço do estado redox da célula para manter a integridade celular e metabolismo.Assim, foram isoladas bactérias de solo contaminado e não contaminado com Cd, selecionando isolados tolerantes a altas concentrações de diferentes metais (Cd, Ni e Zn), em seguida, foi observado a resposta do sistema antioxidante da bactéria na presença do Cd, a fim de auxiliar no desenvolvimento de metodologias para biorremediar solos contaminados. Foi quantificado MDA e peróxido de hidrogênio e a atividade de diferentes enzimas do sistema antioxidante (SOD, CAT, GR e GST) de duas estirpes do gênero Burkholderia tolerantes a todos os metais testados, uma isolada do solo contaminado com altas concentrações de Cd (estirpe SCMS54) e a outra do solo sem Cd (estirpe SNMS32) em dois tempos de exposição (5 e 12 h). Na estirpe SCMS54, as medidas de estresse (peroxidação lipídica e peróxido de hidrogênio) e a atividade das enzimas antioxidantes (SOD, CAT, GR e GST) da maioria dos tratamento com cádmio aumentaram, esta estirpe também expressa mais isoformas de SOD, CAT e GR, além de acumular 50% mais Cd. Esses resultados mostram que a estirpe SCMS54 (isolada do solo contaminado com Cd) apresenta uma maior diversidade metabólica e plasticidade. Foram analisadas também a resposta dessas duas estirpes ao Ni, observando uma resposta semelhante ao Cd, exceto na expressão da enzima GST, que no estirpe SCMS54 foi induzida na presença do Ni, indicando que essa enzima pode ser essencial na tolerância ao Ni. Portanto, a estirpe isoladado solo contaminado com Cd (SCMS54) foi selecionada para prosseguir os estudos e avaliar os benefícios da interação entre microrganismos tolerantes-plantas de tomate na fitorremediação. Essa técnica é usada remover para metais pesados do solo com um menor impacto e baixos custos. Os microrganismos do solo podem solubilizar e mobilizar metais do solo, atuando como biorremediador. Além da alta tolerância ao Cd, a estirpe SCMS54 produz ácido indol acético (AIA), solubiliza fosfato inorgânico e produz sideroforo, mostrando seu potencial na interação benéfica planta-microorganismo. Quando interagindo com as plantas de tomate expostas ao Cd, essa bactéria diminui a concentração de peróxido da planta e a clorose ocasionado pelo Cd,e reduz a absorção de Cd pela raiz resultando em um aumento da tolerância da planta ao metal pesado altamente tóxico. Assim, a inoculação de plantas de tomate com Burkholderia sp. SCMS54 promove crescimento da planta na presença de Cd, desencadeando um mecanismo que diminui a concentração de Cd nas raízes devido a essa interação benéfica bactéria-raiz da planta

    Analysis of 16S rRNA and mxaF genes reveling insights into Methylobacterium niche-specific plant association

    No full text
    The genus Methylobacterium comprises pink-pigmented facultative methylotrophic (PPFM) bacteria, known to be an important plant-associated bacterial group. Species of this group, described as plant-nodulating, have the dual capacity of producing cytokinin and enzymes, such as pectinase and cellulase, involved in systemic resistance induction and nitrogen fixation under specific plant environmental conditions. The aim hereby was to evaluate the phylogenetic distribution of Methylobacterium spp. isolates from different host plants. Thus, a comparative analysis between sequences from structural (16S rRNA) and functional mxaF (which codifies for a subunit of the enzyme methanol dehydrogenase) ubiquitous genes, was undertaken. Notably, some Methylobacterium spp. isolates are generalists through colonizing more than one host plant, whereas others are exclusively found in certain specific plant-species. Congruency between phylogeny and specific host inhabitance was higher in the mxaF gene than in the 16S rRNA, a possible indication of function-based selection in this niche. Therefore, in a first stage, plant colonization by Methylobacterium spp. could represent generalist behavior, possibly related to microbial competition and adaptation to a plant environment. Otherwise, niche-specific colonization is apparently impelled by the host plant

    Differential responses of the antioxidant system of ametryn and clomazone tolerant bacteria.

    No full text
    The herbicides ametryn and clomazone are widely used in sugarcane cultivation, and following microbial degradation are considered as soil and water contaminants. The exposure of microorganisms to pesticides can result in oxidative damage due to an increase in the production of reactive oxygen species (ROS). This study investigated the response of the antioxidant systems of two bacterial strains tolerant to the herbicides ametryn and clomazone. Bacteria were isolated from soil with a long history of ametryn and clomazone application. Comparative analyses based on 16S rRNA gene sequences revealed that strain CC07 is phylogenetically related to Pseudomonas aeruginosa and strain 4C07 to P. fulva. The two bacterial strains were grown for 14 h in the presence of separate and combined herbicides. Lipid peroxidation, reduced glutathione content (GSH) and antioxidant enzymes activities were evaluated. The overall results indicated that strain 4C07 formed an efficient mechanism to maintain the cellular redox balance by producing reactive oxygen species (ROS) and subsequently scavenging ROS in the presence of the herbicides. The growth of bacterium strain 4C07 was inhibited in the presence of clomazone alone, or in combination with ametryn, but increased glutathione reductase (GR) and glutathione S-transferase (GST) activities, and a higher GSH concentration were detected. Meanwhile, reduced superoxide dismutase (SOD), catalase (CAT) and GST activities and a lower concentration of GSH were detected in the bacterium strain CC07, which was able to achieve better growth in the presence of the herbicides. The results suggest that the two bacterial strains tolerate the ametryn and clomazone herbicides with distinctly different responses of the antioxidant systems
    corecore