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Bartosik, D.

Publications and source records attributed to Bartosik, D..

3 recordsLinked to original sources

SusC/D-like proteins in Gammaproteobacteria that utilize fructans

Fructans are ubiquitous in terrestrial ecosystems, however, these glycans are unexplored in the marine environment. We have discovered that the Antarctic gammaproteobacterium Pseudoalteromonas distincta is highly adapted to the degradation of fructose-containing substrates. This is enabled by proteins encoded in several genomic regions, including a fructan polysaccharide utilization locus (PUL). In addition to a glycoside hydrolase from family 32 (GH32), the fructan PUL encodes two proteins that have been described as specific for Bacteroidota and were previously unknown for Gammaproteobacteria: a glycan-binding SusD-like protein and a SusC-like TonB-dependent transporter (TBDT), which work as a complex in glycan import. Proteome analyses and biochemistry results suggest that the SusC/D-like proteins of P. distincta shuttle small-sized inulin-type fructans directly into the cell, where they are degraded by a periplasmic exo-active GH32. A SusD-like protein could provide a competitive adavantage in the absence of extracelluar endo-active inulinases. Comparative genomics identified further SusC/D-like proteins in Gammaproteobacteria, most of which are co-encoded with GH32s, indicative of fructan PULs, and are frequently associated with the marine habitat. Our study thus shows the first known exception to the paradigm that only Bacteroidota use SusC/D-like proteins. It further suggests that fructans contribute to the marine glycan pool.

molecular biology↗

Novel laminarin-binding CBMs in multimodular proteins of marine Bacteroidota feature prominently in phytoplankton blooms

The {beta}-(1,3)-glucan laminarin functions as storage polysaccharide in marine stramenophiles such as diatoms. Laminarin is abundant, water-soluble and structured simply, making it an attractive substrate for marine bacteria. As a consequence, many marine bacteria have developed competitive strategies to scavenge and decompose laminarin, which involves carbohydrate-binding modules (CBMs) as key players. We therefore functionally and structurally characterized two yet unassigned domains as laminarin-binding CBMs in multimodular proteins from our model bacterium Christiangramia forsetii KT0803T, hereby unveiling the novel laminarin-binding CBM families CBMxx and CBMyy (official CAZy numbering will be provided upon acceptance of the manuscript in a peer-reviewed journal). We discovered four CBMxx repeats in a surface glycan-binding protein (SGBP) and a single CBMyy combined with a glycoside hydrolase module from family 16 (GH16_3). Our analyses revealed that both modular proteins have an elongated shape, and that the GH16_3 displayed a higher flexibility than the SGBP. While motility of both polypeptide chains may facilitate recognition and/or degradation of laminarin, constraints in the SGBP may support docking of laminarin onto the bacterial surface. The exploration of bacterial metagenome-assembled genomes (MAGs) from phytoplankton blooms in the North Sea revealed that both laminarin-binding CBM families are widely distributed among marine Bacteroidota, illustrating the high adaptability of modularity in sugar-binding and -degrading proteins. High expression of CBMxx- and CBMyy-containing proteins during phytoplankton blooms further underpins their importance in marine laminarin usage.

biochemistry↗

The unique structure and replication mode of the replication system of Klebsiella pneumoniae plasmid pIGMS31

Due to their relatively small size and the lack of housekeeping genes, bacterial plasmids are very convenient models for studying DNA replication. So, for a long time, they had been intensively studied in this regard. Unfortunately, only a limited number of model plasmid replication systems were analyzed in detail. In the era of high-throughput DNA sequencing, we are faced with an increasing gap in our knowledge of bacterial plasmid replication and a rapidly growing number of deposited new plasmid genome sequences. For this reason, we decided to investigate the replication system of the pIGMS31 plasmid, a representative of the newly described pHW126-like plasmids family. They are small replicons isolated from different clinical and environmental strains of Gamma proteobacteria. Whole shares unique replication modules with no significant similarities to known model plasmid replication systems. In this study, we identified and characterized the basic elements of the pIGMS31 replication module. Studies on regulatory mechanisms of replication initiation of this plasmid as well as on pIGMS31 replication mode were also performed. We revealed that the pIGMS31 replication module is composed of elements typical for both theta and rolling circle replicons. This mosaic structure is reflected in the unique course of replication of this plasmid, with both modes of replication. What is more, our results led us to conclude that pHW126-like plasmids, despite DNA sequence similarity, are a highly diverse group of replicons.

molecular biology↗