Your browser doesn't support javascript.
loading
Mostrar: 20 | 50 | 100
Resultados 1 - 5 de 5
Filtrar
Mais filtros

Tipo de documento
Intervalo de ano de publicação
1.
Biofouling ; 30(7): 823-35, 2014.
Artigo em Inglês | MEDLINE | ID: mdl-25115517

RESUMO

Microbially influenced corrosion (MIC) has long been implicated in the deterioration of carbon steel in oil and gas pipeline systems. The authors sought to identify and characterize sessile biofilm communities within a high-temperature oil production pipeline, and to compare the profiles of the biofilm community with those of the previously analyzed planktonic communities. Eubacterial and archaeal 16S rRNA sequences of DNA recovered from extracted pipeline pieces, termed 'cookies,' revealed the presence of thermophilic sulfidogenic anaerobes, as well as mesophilic aerobes. Electron microscopy and elemental analysis of cookies confirmed the presence of sessile cells and chemical constituents consistent with corrosive biofilms. Mass spectrometry of cookie acid washes identified putative hydrocarbon metabolites, while surface profiling revealed pitting and general corrosion damage. The results suggest that in an established closed system, the biofilm taxa are representative of the planktonic eubacterial and archaeal community, and that sampling and monitoring of the planktonic bacterial population can offer insight into biocorrosion activity. Additionally, hydrocarbon biodegradation is likely to sustain these communities. The importance of appropriate sample handling and storage procedures to oilfield MIC diagnostics is highlighted.


Assuntos
Archaea/fisiologia , Fenômenos Fisiológicos Bacterianos , Biofilmes/classificação , Archaea/classificação , Archaea/genética , Bactérias/classificação , Bactérias/genética , Corrosão , DNA Bacteriano/genética , Indústrias Extrativas e de Processamento , RNA Ribossômico 16S/genética , Aço/química
2.
Front Microbiol ; 8: 2448, 2017.
Artigo em Inglês | MEDLINE | ID: mdl-29321766

RESUMO

The aim of the study was to explore the halophile metabolome in building materials using untargeted metabolomics which allows for broad metabolome coverage. For this reason, we used high-performance liquid chromatography interfaced to high-resolution mass spectrometry (HPLC/HRMS). As an alternative to standard microscopy techniques, we introduced pioneering Coherent Anti-stokes Raman Scattering Microscopy (CARS) to non-invasively visualize microbial cells. Brick samples saturated with salt solution (KCl, NaCl (two salinity levels), MgSO4, Mg(NO3)2), were inoculated with the mixture of preselected halophilic microorganisms, i.e., bacteria: Halobacillus styriensis, Halobacillus naozhouensis, Halobacillus hunanensis, Staphylococcus succinus, Marinococcus halophilus, Virgibacillus halodenitryficans, and yeast: Sterigmatomyces halophilus and stored at 28°C and 80% relative humidity for a year. Metabolites were extracted directly from the brick samples and measured via HPLC/HRMS in both positive and negative ion modes. Overall, untargeted metabolomics allowed for discovering the interactions of halophilic microorganisms with buildings materials which together with CARS microscopy enabled us to elucidate the biodeterioration process caused by halophiles. We observed that halophile metabolome was differently affected by different salt solutions. Furthermore, we found indications for haloadaptive strategies and degradation of brick samples due to microbial pigment production as a salt stress response. Finally, we detected changes in lipid content related to changes in the structure of phospholipid bilayers and membrane fluidity.

3.
Front Microbiol ; 6: 979, 2015.
Artigo em Inglês | MEDLINE | ID: mdl-26483760

RESUMO

Preservation of cultural heritage is of paramount importance worldwide. Microbial colonization of construction materials, such as wood, brick, mortar, and stone in historic buildings can lead to severe deterioration. The aim of the present study was to give modern insight into the phylogenetic diversity and activated metabolic pathways of microbial communities colonized historic objects located in the former Auschwitz II-Birkenau concentration and extermination camp in Oswiecim, Poland. For this purpose we combined molecular, microscopic and chemical methods. Selected specimens were examined using Field Emission Scanning Electron Microscopy (FESEM), metabolomic analysis and high-throughput Illumina sequencing. FESEM imaging revealed the presence of complex microbial communities comprising diatoms, fungi and bacteria, mainly cyanobacteria and actinobacteria, on sample surfaces. Microbial diversity of brick specimens appeared higher than that of the wood and was dominated by algae and cyanobacteria, while wood was mainly colonized by fungi. DNA sequences documented the presence of 15 bacterial phyla representing 99 genera including Halomonas, Halorhodospira, Salinisphaera, Salinibacterium, Rubrobacter, Streptomyces, Arthrobacter and nine fungal classes represented by 113 genera including Cladosporium, Acremonium, Alternaria, Engyodontium, Penicillium, Rhizopus, and Aureobasidium. Most of the identified sequences were characteristic of organisms implicated in deterioration of wood and brick. Metabolomic data indicated the activation of numerous metabolic pathways, including those regulating the production of primary and secondary metabolites, for example, metabolites associated with the production of antibiotics, organic acids and deterioration of organic compounds. The study demonstrated that a combination of electron microscopy imaging with metabolomic and genomic techniques allows to link the phylogenetic information and metabolic profiles of microbial communities and to shed new light on biodeterioration processes.

4.
Int Microbiol ; 8(3): 157-68, 2005 Sep.
Artigo em Inglês | MEDLINE | ID: mdl-16200494

RESUMO

The presence of microorganisms on material surfaces can have a profound effect on materials performance. Surface-associated microbial growth, i.e. a biofilm, is known to instigate biofouling. The presence of biofilms may promote interfacial physico-chemical reactions that are not favored under abiotic conditions. In the case of metallic materials, undesirable changes in material properties due to a biofilm (or a biofouling layer) are referred to as biocorrosion or microbially influenced corrosion (MIC). Biofouling and biocorrosion occur in aquatic and terrestrial habitats varying in nutrient content, temperature, pressure and pH. Interfacial chemistry in such systems reflects a wide variety of physiological activities carried out by diverse microbial populations thriving within biofilms. Biocorrosion can be viewed as a consequence of coupled biological and abiotic electron-transfer reactions, i.e. redox reactions of metals, enabled by microbial ecology. Microbially produced extracellular polymeric substances (EPS), which comprise different macromolecules, mediate initial cell adhesion to the material surface and constitute a biofilm matrix. Despite their unquestionable importance in biofilm development, the extent to which EPS contribute to biocorrosion is not well-understood. This review offers a current perspective on material/microbe interactions pertinent to biocorrosion and biofouling, with EPS as a focal point, while emphasizing the role atomic force spectroscopy and mass spectrometry techniques can play in elucidating such interactions.


Assuntos
Fenômenos Fisiológicos Bacterianos , Biofilmes/crescimento & desenvolvimento , Microbiologia Ambiental , Corrosão , Transporte de Elétrons , Matriz Extracelular/metabolismo , Espectrometria de Massas , Metais/química , Microscopia de Força Atômica , Polímeros/metabolismo
5.
Int. microbiol ; 8(3): 157-168, sept. 2005. ilus, tab, graf
Artigo em En | IBECS (Espanha) | ID: ibc-040084

RESUMO

The presence of microorganisms on material surfaces can have a profound effect on materials performance. Surface-associated microbial growth, i.e. a biofilm, is known to instigate biofouling. The presence of biofilms may promote interfacial physico-chemical reactions that are not favored under abiotic conditions. In the case of metallic materials, undesirable changes in material properties due to a biofilm (or a biofouling layer) are referred to as biocorrosion or microbially influenced corrosion (MIC). Biofouling and biocorrosion occur in aquatic and terrestrial habitats varying in nutrient content, temperature, pressure and pH. Interfacial chemistry in such systems reflects a wide variety of physiological activities carried out by diverse microbial populations thriving within biofilms. Biocorrosion can be viewed as a consequence of coupled biological and abiotic electron-transfer reactions, i.e. redox reactions of metals, enabled by microbial ecology. Microbially produced extracellular polymeric substances (EPS), which comprise different macromolecules, mediate initial cell adhesion to the material surface and constitute a biofilm matrix. Despite their unquestionable importance in biofilm development, the extent to which EPS contribute to biocorrosion is not well-understood. This review offers a current perspective on material/microbe interactions pertinent to biocorrosion and biofouling, with EPS as a focal point, while emphasizing the role atomic force spectroscopy and mass spectrometry techniques can play in elucidating such interactions (AU)


La presencia de microorganismos en las superficies de materiales puede tener un efecto profundo en el funcionamiento de dichos materiales. El crecimiento microbiano asociado a superficies, por ejemplo un biofilm, se sabe que estimula el desarrollo del bioensuciamiento (biofouling). La presencia de biofilms puede promover en las interfaces reacciones fisicoquímicas no favorecidas en condiciones abióticas. En el caso de materiales metálicos, los cambios no deseados en las características del material y debidos a un biofilm (o a una capa de bioensuciamiento) se denominan biocorrosión o corrosión microbiana (MIC, microbially influenced corrosion). El bioensuciamiento y la biocorrosión se producen en hábitat acuáticos y terrestres con diferentes contenidos de nutrientes, temperatura, presión y pH. En dichos sistemas, la química de las interfaces refleja una gran variedad de actividades fisiológicas realizadas por poblaciones microbianas diversas que crecen muy bien en los biofilms. La biocorrosión puede verse como la consecuencia de un conjunto de reacciones biológicas y abióticas de transferencia de electrones de los metales, por ejemplo reacciones redox, favorecidas por la ecología microbiana. Las sustancias poliméricas extracelulares (EPS) producidas por microorganismos, que comprenden diferentes macromoléculas, median la adherencia inicial de la célula a la superficie del material y constituyen la matriz del biofilm. A pesar de su importancia indiscutible en el desarrollo del biofilm, no se sabe muy bien hasta qué punto contribuyen las EPS a la biocorrosión. Esta revisión describe la percepción actual de las interacciones material/microorganismo relativas a la biocorrosión y al bioensuciamiento, centrándose en las EPS, y destacando el papel que las técnicas de espectroscopia de fuerza atómica y de espectrometría de masas pueden desempeñar en la aclaración de tales interacciones (AU)


Assuntos
Polímeros/análise , Corrosão , Contaminação Biológica , Biofilmes , Análise Espectral/métodos , Espectrometria de Massas/métodos
SELEÇÃO DE REFERÊNCIAS
DETALHE DA PESQUISA