Literature DB >> 32169901

Three distinct glycosylation pathways are involved in the decoration of Lactococcus lactis cell wall glycopolymers.

Ilias Theodorou1, Pascal Courtin2, Irina Sadovskaya3, Simon Palussière2, François Fenaille4, Jennifer Mahony5, Marie-Pierre Chapot-Chartier2, Douwe van Sinderen6.   

Abstract

Extracytoplasmic sugar decoration of glycopolymer components of the bacterial cell wall contributes to their structural diversity. Typically, the molecular mechanism that underpins such a decoration process involves a three-component glycosylation system (TGS) represented by an undecaprenyl-phosphate (Und-P) sugar-activating glycosyltransferase (Und-P GT), a flippase, and a polytopic glycosyltransferase (PolM GT) dedicated to attaching sugar residues to a specific glycopolymer. Here, using bioinformatic analyses, CRISPR-assisted recombineering, structural analysis of cell wall-associated polysaccharides (CWPS) through MALDI-TOF MS and methylation analysis, we report on three such systems in the bacterium Lactococcus lactis On the basis of sequence similarities, we first identified three gene pairs, csdAB, csdCD, and csdEF, each encoding an Und-P GT and a PolM GT, as potential TGS component candidates. Our experimental results show that csdAB and csdCD are involved in Glc side-chain addition on the CWPS components rhamnan and polysaccharide pellicle (PSP), respectively, whereas csdEF plays a role in galactosylation of lipoteichoic acid (LTA). We also identified a potential flippase encoded in the L. lactis genome (llnz_02975, cflA) and confirmed that it participates in the glycosylation of the three cell wall glycopolymers rhamnan, PSP, and LTA, thus indicating that its function is shared by the three TGSs. Finally, we observed that glucosylation of both rhamnan and PSP can increase resistance to bacteriophage predation and that LTA galactosylation alters L. lactis resistance to bacteriocin.
© 2020 Theodorou et al.

Entities:  

Keywords:  bacteriophage; cell wall; flippase; genomics; glycobiology; glycopolymer; glycosylation; glycosyltransferase; lactic acid bacteria; lipoteichoic acid (LTA); peptidoglycan; phage receptor

Mesh:

Substances:

Year:  2020        PMID: 32169901      PMCID: PMC7170526          DOI: 10.1074/jbc.RA119.010844

Source DB:  PubMed          Journal:  J Biol Chem        ISSN: 0021-9258            Impact factor:   5.157


  50 in total

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7.  Isolation and characterization of lipoteichoic acid, a cell envelope component involved in preventing phage adsorption, from Lactococcus lactis subsp. cremoris SK110.

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Review 9.  Towards a standardized bioinformatics infrastructure for N- and O-glycomics.

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Review 10.  Lipoteichoic acid synthesis and function in gram-positive bacteria.

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Review 3.  Modifications of cell wall polymers in Gram-positive bacteria by multi-component transmembrane glycosylation systems.

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