Listing 1 - 10 of 10 |
Sort by
|
Choose an application
Pathogenic Escherichia coli are known to be a common cause of diarrheal disease - a common cause of frequently occurring bacterial infections in children and adults in developing countries. It poses a significant problem in Latin America. Pathogenic Escherichia coli in Latin America presents current information on understanding pathogenic E. coli in Latin America and outlines prospects for future research in this region. It features a unique, comprehensive analysis of the most common categories of E. coli associated with diarrheal illness in Latin America.
Choose an application
Escherichia coli --- Water --- Environmental aspects --- Pollution
Choose an application
Escherichia coli --- Drinking water --- Research. --- Contamination --- Prevention.
Choose an application
Escherichia coli --- Water quality --- Urban runoff --- Missouri
Choose an application
Biological contamination --- Biological contamination --- Quality --- Quality --- Escherichia coli --- Escherichia coli --- hygiene. --- hygiene --- Microbiological analysis --- Microbiological analysis --- Butter --- Butter --- milk --- milk --- Cleaning --- Cleaning --- Cream --- Cream
Choose an application
Although Escherichia coli is probably one off the best characterized organisms, very little is known about the mechanisms governing the biogenesis of its outer membrane and preserving its integrity during the bacterial cell cycle. For example, we have only a very limited knowledge of the way in which the various components of this membrane, namely phospholipids, lipopolysaccharides and β barrel proteins, are carried across the periplasm and then inserted in the membrane after synthesis in the cytoplasm or in the inner membrane.
My host team focuses on coming to a better understanding of the mechanisms permitting the folding and insertion of β barrel proteins in the outer membrane. In addition to the fundamental interest of studying these mechanisms, this research should lead to the development of new antibiotics that are effective against Gram negative bacteria. Indeed, the physicochemical properties of the outer membrane make these bacteria very resistant to many bacterial agents.
The β barrel proteins of the E. coli cell envelope are synthesized in the cytoplasm, and then carried through the inner membrane as unfolded polypeptides. They must then cross the periplasm before reaching the outer membrane as unfolded polypeptides. They must then cross the periplasm before reaching the outer membrane where they are assembled. According to the current model, β barrel proteins are escorted in the periplasm by chaperones that are present in this compartment. The precise role of these chaperones has however not been characterized.
FkpA is one of the four periplasmic chaperones identified so far. Its structure and in vitro chaperone activity have been well studied. However, we know nothing about FkpA’s in vivo role and about the nature of its substrates. The purpose of my work was therefore to characterize the function of this chaperone in the periplasm and to identify its physiological substrates.
To do this, I used a multidisciplinary approach. First, I carried out microbiological studies to characterize the phenotype of different bacterial strains lacking FkpA. The results of these studies have shown that strains lacking both DegP, the primary periplasmic protease, and FkpA were particularly sensitive to elevated temperatures. I’ve also shown that FkpA interacts with several β barrel proteins when purified from strains lacking one of the chaperones involved in the folding of these proteins. Finally, the in vitro tests that I carried out suggest that FkpA is capable of protecting these β barrel proteins from aggregation, without however participating actively in their folding. Put together, my results suggest that FkpA plays a role in the quality control of secreted proteins. Bien qu’Escherichia coli soit probablement l’un des organismes les mieux caractérisés, les mécanismes permettant la biogenèse de sa membrane externe et le maintien de l’intégrité de celle-ci durant le cycle cellulaire bactérien restent très peu connus. Par exemple, nous n’avons qu’une connaissance très partielle de la façon avec laquelle les différents constituants de cette membrane, à savoir les phospholipides, les lipopolysaccharides et les protéines en tonneau β, sont transportés au travers du périplasme puis insérés au sein de celle-ci après avoir été synthétisés dans le cytoplasme ou au niveau de la membrane interne.
Mon laboratoire d’accueil s’intéresse particulièrement aux mécanismes qui permettent le repliement et l’insertion des protéines en tonneau β dans la membrane externe. Outre l’intérêt fondamental que présente l’étude de ces mécanismes, ces recherches devraient ouvrir la voie au développement de nouveaux antibiotiques efficaces contre les bactéries à Gram négatif. En effet, les propriétés physicochimiques de leur membrane externe les rendent peu perméable à de nombreux bactéricides.
Les protéines en tonneau β de l’enveloppe d’E. coli sont synthétisées dans le cytoplasme, puis transportées sous forme non repliée au travers de la membrane interne. Elles doivent ensuite traverser le périplasme avant de gagner la membrane externe où elles sont assemblées et acquièrent leur conformation native. Selon le modèle actuel, les protéines en tonneau β seraient escortées au travers du périplasme par des chaperonnes présentes dans ce compartiment. Le rôle précis de ces dernières n’a cependant pas été caractérisé.
FkpA est lune des quatre chaperonnes périplasmiques identifiées jusqu’à présent. Sa structure et son activité chaperonne in vitro ont bien été étudiées. Cependant, on ne connaît rien du rôle que FkpA joue in vitro et de la nature de ses substrats. L’objectif de mon mémoire était donc de caractériser la fonction exercée par cette chaperonne au sein du périplasme et d’en identifier les substrats. L’objectif de mon mémoire était donc de caractériser la fonction exercée par cette chaperonne au sein du périplasme et d’en identifier les substrats physiologiques.
Pour ce faire, j’ai utilisé une approche multidisciplinaire. Tout d’abord, j’ai réalisé des études microbiologiques afin de caractériser le phénotype de différentes souches bactériennes dépourvues de FkpA. Les résultats de ces études ont fait apparaître que les souches dépourvues de FkpA et de la principale protéase périplasmique, DegP, étaient particulièrement sensibles à un stress thermique. J’ai aussi montré que FkpA interagit avec plusieurs protéines en tonneau β en purifiant la protéine. Pour finir, les tests in vitro réalisés suggèrent que FkpA est capable de protéger ces protéines en tonneau β de l’agrégation, sans toutefois participer activement à leur repliement. Mis ensemble, mes résultats suggèrent que FkpA joue un rôle dans le « contrôle qualité » des protéines sécrétées
Gram-Negative Bacterial Infections --- Cell Membrane --- Biogenesis --- FkpA protein, E coli --- Escherichia coli Proteins --- Periplasm
Choose an application
Solanum tuberosum --- Potato starch --- Binding proteins --- gene expression --- processing --- Transgenic plants --- In vitro experimentation --- Plant breeding --- Escherichia coli
Choose an application
Fermented products --- Fermented products --- Fermented foods --- Fermented foods --- Escherichia coli --- Escherichia coli --- Bacillus cereus --- Bacillus cereus --- Intestinal diseases --- Intestinal diseases --- Colitis --- Colitis --- Bacteria --- Bacteria --- Soybean products --- Soybean products --- Soyfoods --- Soyfoods --- Veterinary medicine --- Veterinary medicine --- medical sciences --- medical sciences --- Bioactivité --- Composé bioactif --- Bioactivité --- Composé bioactif
Choose an application
Acide succinique --- Succinic acid --- Biotechnologie --- Biotechnology --- Production biologique --- Biological production --- Escherichia coli --- génomique --- genomics --- Cycle du glyoxylate --- Glyoxylate cycle --- 547.461.4 --- 1,4-dicarboxylic acids. Succinic acid and its derivatives C4H4O2 --- 547.461.4 1,4-dicarboxylic acids. Succinic acid and its derivatives C4H4O2
Choose an application
(Publisher-supplied data) Known world-wide as the standard introductory text to this important and exciting area, the sixth edition of Gene Cloning and DNA Analysis addresses new and growing areas of research whilst retaining the philosophy of the previous editions. Assuming the reader has little prior knowledge of the subject, its importance, the principles of the techniques used and their applications are all carefully laid out, with over 250 clearly presented four-colour illustrations. In addition to a number of informative changes to the text throughout the book, the final four chapters have been significantly updated and extended to reflect the striking advances made in recent years in the applications of gene cloning and DNA analysis in biotechnology. Gene Cloning and DNA Analysis remains an essential introductory text to a wide range of biological sciences students; including genetics and genomics, molecular biology, biochemistry, immunology and applied biology. It is also a perfect introductory text for any professional needing to learn the basics of the subject. All libraries in universities where medical, life and biological sciences are studied and taught should have copies available on their shelves. " ... the book content is elegantly illustrated and well organized in clear-cut chapters and subsections ... there is a Further Reading section after each chapter that contains several key references ... What is extremely useful, almost every reference is furnished with the short but distinct author's remark." --Journal of Heredity, 2007 (on the previous edition)
klonen --- polymers --- yeast [fungi] --- biotechnologie --- Biotechnology --- genetica --- gisten --- polymeren --- recombinant DNA --- Macromolecules --- Genetics --- Biotechnologie --- Gentechnologie --- Recombinant DNA-technologie --- 575.1 --- Klonering --- Genetica --- DNA --- Molecular cloning. --- Nucleotide sequence. --- Cloning, Molecular. --- DNA, Recombinant --- Sequence Analysis, DNA. --- Analysis. --- analysis. --- Cloning, molecular. --- Dna --- Dna, recombinant --- Sequence analysis, dna. --- Molecular cloning --- Nucleotide sequence --- Analysis, Nucleic acid sequence --- Analysis, Nucleotide sequence --- Base sequence (Nucleic acids) --- DNA sequence --- Nucleic acid sequence analysis --- Nucleotide sequence analysis --- RNA sequence --- Sequence, Nucleotide --- Nucleic acids --- Nucleotides --- Sequence alignment (Bioinformatics) --- Cloning, Molecular --- DNA cloning --- Gene cloning --- Cloning --- Genetic engineering --- Molecular genetics --- Clone cells --- Analysis --- moleculaire biologie --- Escherichia coli --- proteomics --- enzymen --- Ingeniería Genética (49152202) --- Ingeniería Genética y Genómica (70981102) --- Bibliografía recomendada --- Escherichia --- PCR (polymerase chain reaction)
Listing 1 - 10 of 10 |
Sort by
|