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Dive into the research topics where Hanne Tytgat is active.

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Featured researches published by Hanne Tytgat.


Applied and Environmental Microbiology | 2012

Functional Analysis of Lactobacillus rhamnosus GG Pili in Relation to Adhesion and Immunomodulatory Interactions with Intestinal Epithelial Cells

Sarah Lebeer; Ingmar J. J. Claes; Hanne Tytgat; Tine Verhoeven; Eyra Marien; Ingemar von Ossowski; Justus Reunanen; Airi Palva; Willem M. de Vos; Sigrid De Keersmaecker; Jos Vanderleyden

ABSTRACT Lactobacillus rhamnosus GG, a probiotic with good survival capacity in the human gut, has well-documented adhesion properties and health effects. Recently, spaCBA-encoded pili that bind to human intestinal mucus were identified on its cell surface. Here, we report on the phenotypic analysis of a spaCBA pilus knockout mutant in comparison with the wild type and other adhesin mutants. The SpaCBA pilus of L. rhamnosus GG showed to be key for efficient adherence to the Caco-2 intestinal epithelial cell (IEC) line and biofilm formation. Moreover, the spaCBA mutant induces an elevated level of interleukin-8 (IL-8) mRNA in Caco-2 cells compared to the wild type, possibly involving an interaction of lipoteichoic acid with Toll-like receptor 2. In contrast, an L. rhamnosus GG mutant without exopolysaccharides but with an increased exposure of pili leads to the reduced expression of IL-8. Using Transwells to partition bacteria from Caco-2 cells, IL-8 induction is blocked completely regardless of whether wild-type or mutant L. rhamnosus GG cells are used. Taken together, our data suggest that L. rhamnosus GG SpaCBA pili, while promoting strong adhesive interactions with IECs, have a functional role in balancing IL-8 mRNA expression induced by surface molecules such as lipoteichoic acid.


Microbial Cell Factories | 2012

The major secreted protein Msp1/p75 is O-glycosylated in Lactobacillus rhamnosus GG

Sarah Lebeer; Ingmar J. J. Claes; Crina I. A. Balog; Geert Schoofs; Tine Verhoeven; Kris Nys; Ingemar von Ossowski; Willem M. de Vos; Hanne Tytgat; Patrizia Agostinis; Airi Palva; Els J. M. Van Damme; André M. Deelder; Sigrid De Keersmaecker; Manfred Wuhrer; Jos Vanderleyden

BackgroundAlthough the occurrence, biosynthesis and possible functions of glycoproteins are increasingly documented for pathogens, glycoproteins are not yet widely described in probiotic bacteria. Nevertheless, knowledge of protein glycosylation holds important potential for better understanding specific glycan-mediated interactions of probiotics and for glycoengineering in food-grade microbes.ResultsHere, we provide evidence that the major secreted protein Msp1/p75 of the probiotic Lactobacillus rhamnosus GG is glycosylated. Msp1 was shown to stain positive with periodic-acid Schiff staining, to be susceptible to chemical deglycosylation, and to bind with the mannose-specific Concanavalin A (ConA) lectin. Recombinant expression in Escherichia coli resulted in a significant reduction in molecular mass, loss of ConA reactivity and increased sensitivity towards pronase E and proteinase K. Mass spectrometry showed that Msp1 is O- glycosylated and identified a glycopeptide TVETPSSA (amino acids 101-108) bearing hexoses presumably linked to the serine residues. Interestingly, these serine residues are not present in the homologous protein of several Lactobacillus casei strains tested, which also did not bind to ConA. The role of the glycan substitutions in known functions of Msp1 was also investigated. Glycosylation did not seem to impact significantly on the peptidoglycan hydrolase activity of Msp1. In addition, the glycan chain appeared not to be required for the activation of Akt signaling in intestinal epithelial cells by Msp1. On the other hand, examination of different cell extracts showed that Msp1 is a glycosylated protein in the supernatant, but not in the cell wall and cytosol fraction, suggesting a link between glycosylation and secretion of this protein.ConclusionsIn this study we have provided the first evidence of protein O- glycosylation in the probiotic L rhamnosus GG. The major secreted protein Msp1 is glycosylated with ConA reactive sugars at the serine residues at 106 and 107. Glycosylation is not required for the peptidoglycan hydrolase activity of Msp1 nor for Akt activation capacity in epithelial cells, but appears to be important for its stability and protection against proteases.


Microbiology and Molecular Biology Reviews | 2014

The Sweet Tooth of Bacteria: Common Themes in Bacterial Glycoconjugates

Hanne Tytgat; Sarah Lebeer

SUMMARY Humans have been increasingly recognized as being superorganisms, living in close contact with a microbiota on all their mucosal surfaces. However, most studies on the human microbiota have focused on gaining comprehensive insights into the composition of the microbiota under different health conditions (e.g., enterotypes), while there is also a need for detailed knowledge of the different molecules that mediate interactions with the host. Glycoconjugates are an interesting class of molecules for detailed studies, as they form a strain-specific barcode on the surface of bacteria, mediating specific interactions with the host. Strikingly, most glycoconjugates are synthesized by similar biosynthesis mechanisms. Bacteria can produce their major glycoconjugates by using a sequential or an en bloc mechanism, with both mechanistic options coexisting in many species for different macromolecules. In this review, these common themes are conceptualized and illustrated for all major classes of known bacterial glycoconjugates, with a special focus on the rather recently emergent field of glycosylated proteins. We describe the biosynthesis and importance of glycoconjugates in both pathogenic and beneficial bacteria and in both Gram-positive and -negative organisms. The focus lies on microorganisms important for human physiology. In addition, the potential for a better knowledge of bacterial glycoconjugates in the emerging field of glycoengineering and other perspectives is discussed.


BMC Genomics | 2014

A network-based approach to identify substrate classes of bacterial glycosyltransferases

Aminael Sánchez-Rodríguez; Hanne Tytgat; Joris Winderickx; Jos Vanderleyden; Sarah Lebeer; Kathleen Marchal

BackgroundBacterial interactions with the environment- and/or host largely depend on the bacterial glycome. The specificities of a bacterial glycome are largely determined by glycosyltransferases (GTs), the enzymes involved in transferring sugar moieties from an activated donor to a specific substrate. Of these GTs their coding regions, but mainly also their substrate specificity are still largely unannotated as most sequence-based annotation flows suffer from the lack of characterized sequence motifs that can aid in the prediction of the substrate specificity.ResultsIn this work, we developed an analysis flow that uses sequence-based strategies to predict novel GTs, but also exploits a network-based approach to infer the putative substrate classes of these predicted GTs. Our analysis flow was benchmarked with the well-documented GT-repertoire of Campylobacter jejuni NCTC 11168 and applied to the probiotic model Lactobacillus rhamnosus GG to expand our insights in the glycosylation potential of this bacterium. In L. rhamnosus GG we could predict 48 GTs of which eight were not previously reported. For at least 20 of these GTs a substrate relation was inferred.ConclusionsWe confirmed through experimental validation our prediction of WelI acting upstream of WelE in the biosynthesis of exopolysaccharides. We further hypothesize to have identified in L. rhamnosus GG the yet undiscovered genes involved in the biosynthesis of glucose-rich glycans and novel GTs involved in the glycosylation of proteins. Interestingly, we also predict GTs with well-known functions in peptidoglycan synthesis to also play a role in protein glycosylation.


Colloids and Surfaces B: Biointerfaces | 2013

In vitro interactions between probiotic bacteria and milk proteins probed by atomic force microscopy.

Jennifer Burgain; Claire Gaiani; Grégory Francius; Anne-Marie Revol-Junelles; Catherine Cailliez-Grimal; Sarah Lebeer; Hanne Tytgat; Jos Vanderleyden; Joël Scher

Interactions between microbial cells and milk proteins are important for cell location into dairy matrices. In this study, interactions between two probiotic strains, Lactobacillus rhamnosus GG and Lactobacillus rhamnosus GR-1, and milk proteins (micellar casein, native and denatured whey proteins) were studied. The bacterial surface characterization was realized with X-ray photoelectron spectroscopy (XPS) to evaluate surface composition (in terms of proteins, polysaccharides and lipid-like compounds) and electrophoretic mobility that provide information on surface charge of both bacteria and proteins along the 3-7 pH range. In addition, atomic force microscopy (AFM) enabled the identification of specific interactions between bacteria and whey proteins, in contrast to the observed nonspecific interactions with micellar casein. These specific events appeared to be more important for the GG strain than for the GR-1 strain, showing that matrix interaction is strain-specific. Furthermore, our study highlighted that in addition to the nature of the strains, many other factors influence the bacterial interaction with dairy matrix including the nature of the proteins and the pH of the media.


Microbial Biotechnology | 2015

Endogenous biotin-binding proteins: an overlooked factor causing false positives in streptavidin-based protein detection

Hanne Tytgat; Geert Schoofs; Michèle Driesen; Paul Proost; Els J. M. Van Damme; Jos Vanderleyden; Sarah Lebeer

Biotinylation is widely used in DNA, RNA and protein probing assays as this molecule has generally no impact on the biological activity of its substrate. During the streptavidin‐based detection of glycoproteins in Lactobacillus rhamnosus GG with biotinylated lectin probes, a strong positive band of approximately 125 kDa was observed, present in different cellular fractions. This potential glycoprotein reacted heavily with concanavalin A (ConA), a lectin that specifically binds glucose and mannose residues. Surprisingly, this protein of 125 kDa could not be purified using a ConA affinity column. Edman degradation of the protein, isolated via cation and anion exchange chromatography, lead to the identification of the band as pyruvate carboxylase, an enzyme of 125 kDa that binds biotin as a cofactor. Detection using only the streptavidin conjugate resulted in more false positive signals of proteins, also in extracellular fractions, indicating biotin‐associated proteins. Indeed, biotin is a known cofactor of numerous carboxylases. The potential occurence of false positive bands with biotinylated protein probes should thus be considered when using streptavidin‐based detection, e.g. by developing a blot using only the streptavidin conjugate. To circumvent these false positives, alternative approaches like detection based on digoxigenin labelling can also be used.


Genome Announcements | 2016

Complete Genome Sequence of Enterococcus faecium Commensal Isolate E1002

Hanne Tytgat; François P. Douillard; Pia Laine; Lars Paulin; Rob J. L. Willems; Willem M. de Vos

ABSTRACT The emergence of vancomycin-resistant enterococci (VRE) has been associated with an increase in multidrug-resistant nosocomial infections. Here, we report the 2.614-Mb genome sequence of the Enterococcus faecium commensal isolate E1002, which will be instrumental in further understanding the determinants of the commensal and pathogenic lifestyle of E. faecium.


Journal of Molecular Microbiology and Biotechnology | 2016

Systematic Exploration of the Glycoproteome of the Beneficial Gut Isolate Lactobacillus rhamnosus GG

Hanne Tytgat; Geert Schoofs; Jos Vanderleyden; Els J. M. Van Damme; Ruddy Wattiez; Sarah Lebeer; Baptiste Leroy


Communications in agricultural and applied biological sciences | 2012

A combined approach to study the protein glycosylation potential of Lactobacillus rhamnosus GG (LGG).

Hanne Tytgat; Aminael Sánchez-Rodríguez; Geert Schoofs; Tine Verhoeven; De Keersmaecker Sc; Kathleen Marchal; Jos Vanderleyden; Sarah Lebeer


Genome Announcements | 2017

Draft genome sequences of the aerobic strains Lactobacillus gasseri AL3 and AL5

Diamante Maresca; Francesca De Filippis; Hanne Tytgat; Willem M. de Vos; Gianluigi Mauriello

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Jos Vanderleyden

Catholic University of Leuven

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Sarah Lebeer

Katholieke Universiteit Leuven

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Geert Schoofs

Katholieke Universiteit Leuven

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Tine Verhoeven

Katholieke Universiteit Leuven

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Sigrid De Keersmaecker

Katholieke Universiteit Leuven

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Willem M. de Vos

Wageningen University and Research Centre

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