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Dive into the research topics where Michaela Wimmerová is active.

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Featured researches published by Michaela Wimmerová.


Journal of Biological Chemistry | 2005

The Fucose-Binding Lectin from Ralstonia Solanacearum: A New Type of Beta-Propeller Architecture Formed by Oligomerization and Interacting with Fucoside, Fucosyllactose, and Plant Xyloglucan.

Nikola Kostlánová; Edward P. Mitchell; Hugues Lortat-Jacob; Stefan Oscarson; Martina Lahmann; Nechama Gilboa-Garber; Gérard Chambat; Michaela Wimmerová; Anne Imberty

Plant pathogens, like animal ones, use protein-carbohydrate interactions in their strategy for host recognition, attachment, and invasion. The bacterium Ralstonia solanacearum, which is distributed worldwide and causes lethal wilt in many agricultural crops, was shown to produce a potent l-fucose-binding lectin, R. solanacearum lectin, a small protein of 90 amino acids with a tandem repeat in its amino acid sequence. In the present study, surface plasmon resonance experiments conducted on a series of oligosaccharides show a preference for binding to αFuc1-2Gal and αFuc1-6Gal epitopes. Titration microcalorimetry demonstrates the presence of two binding sites per monomer and an unusually high affinity of the lectin for αFuc1-2Gal-containing oligosaccharides (KD = 2.5 × 10-7 m for 2-fucosyllactose). R. solanacearum lectin has been crystallized with a methyl derivative of fucose and with the highest affinity ligand, 2-fucosyllactose. X-ray crystal structures, the one with α-methyl-fucoside being at ultrahigh resolution, reveal that each monomer consists of two small four-stranded anti-parallel β-sheets. Trimerization through a 3-fold or pseudo-3-fold axis generates a six-bladed β-propeller architecture, very similar to that previously described for the fungal lectin of Aleuria aurantia. This is the first report of a β-propeller formed by oligomerization and not by sequential domains. Each monomer presents two fucose binding sites, resulting in six symmetrically arranged sugar binding sites for the β-propeller. Crystals were also obtained for a mutated lectin complexed with a fragment of xyloglucan, a fucosylated polysaccharide from the primary cell wall of plants, which may be the biological target of the lectin.


Archive | 2016

Structure and function of Photorhabdus asymbiotica lectins:Studies of potential virulence factors from emerging humanpathogen

Daniel Pokorný; Gita Jančaříková; Jan Komárek; Michaela Wimmerová


Archive | 2015

Possibilities for biomacromolecular crystallization at BIC CoreFacility at CEITEC, Brno

Josef Houser; Michaela Wimmerová


Archive | 2015

Study of PHL lectin from Photorabdus asymbiotica to revealingits role in pathogenesis

Gita Jančaříková; Gabriel Demo; Jan Komárek; Michaela Wimmerová


Archive | 2014

Strukturně-funkční studium lektinu PHL z Photorabdusasymbiotica a jeho význam v patogenezi

Gita Jančaříková; Jan Komárek; Gabriel Demo; Michaela Wimmerová


Archive | 2014

Structural and functional characterization of Ralstoniasolanacearum lectin mutant

Daniel Pokorný; Josef Houser; Michaela Wimmerová


Archive | 2014

Targeted-random mutagenesis of PA-IIL lectin andhigh-throughput screening of mutant library

Jana Mrázková; Martina Pokorná; Michaela Wimmerová


Archive | 2014

Newly identified lectin from Photorhabdus asymbiotica and itsstructure-functional study

Gita Jančaříková; Gabriel Demo; Jan Komárek; Michaela Wimmerová


Archive | 2014

New family of bacterial lectins with seven bladed betapropeller fold

Petra Sýkorová; Jitka Novotná; Gabriel Demo; Eva Dejmková; Jan Komárek; Lucia Hároníková; Annabelle Varrot; Anne Imberty; Martina Pokorná; Michaela Wimmerová


Archive | 2014

Crystallization and functional studies of trimeric lectin RS20Lfrom bacterium Ralstonia solanacearum

Peter Kyseľ; Nikola Kostlánová; Ondřej Šulák; Jan Komárek; Michaela Wimmerová

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Anne Imberty

Centre national de la recherche scientifique

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Jaroslav Koča

Norwegian Institute of Technology

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Josef Houser

Central European Institute of Technology

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