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Montserrat-Canals, M.

Publications and source records attributed to Montserrat-Canals, M..

3 recordsLinked to original sources

Calcium binding site in AA10 LPMO from Vibrio cholerae suggests modulating effects during environment survival and infection

Despite major efforts towards its eradication, cholera remains a major health and economic burden in many developing countries. Between outbreaks, the bacterium responsible for the disease, Vibrio cholerae, survives in aquatic environmental reservoirs, where it commonly forms biofilms, e.g., on zooplankton. N-acetyl glucosamine binding protein A (GbpA) is an adhesin that binds to the chitinaceous surface of zooplankton and breaks its dense crystalline packing thanks to its lytic polysaccharide monooxygenase (LPMO) activity, which provides V. cholerae with nutrients. In addition, GbpA is an important colonization factor associated with bacterial pathogenicity, allowing the binding to mucins in the host intestine. Here, we report the discovery of a cation-binding site in proximity of the GbpA active site, which allows Ca2+, Mg2+ or K+ to bind close to its carbohydrate-binding surface. In addition to the X-ray crystal structures, we explored how the presence of ions affects the stability of the protein, compared the new GbpA LPMO structures to those of other LPMOs, and discussed the relevance of our discovery for bacterial survival. Calcium ions, abundant in natural sources of chitin, have been found to have the strongest effect on GbpA stability. Our findings suggest a V. cholerae-specific cation-binding site in GbpA that may fine-tune activity and binding to the different substrates during environmental survival and host infection.

biochemistry↗

Using Vibrio natriegens for high-yield production of challenging expression targets and for protein deuteration

Production of soluble proteins is essential for structure/function studies, however, this usually requires milligram amounts of protein, which can be difficult to obtain with traditional expression systems. Recently, the Gram-negative bacterium Vibrio natriegens appeared as a novel and alternative host platform for production of proteins in high yields. Here, we used a commercial strain derived from V. natriegens (VmaxTM X2) to produce soluble bacterial and fungal proteins in milligram scale, which we struggled to achieve in Escherichia coli. These proteins include the cholera toxin (CT) and N-acetyl glucosamine binding protein A (GbpA) from Vibrio cholerae, the heat-labile enterotoxin (LT) from E. coli and the fungal nematotoxin CCTX2 from Coprinopsis cinerea. CT, GbpA and LT are secreted by the Type II secretion system in their natural hosts. When these three proteins were produced in Vmax, they were also secreted, and could be recovered from the growth media. This simplified the downstream purification procedure and resulted in considerably higher protein yields compared to production in E. coli (6- to 26-fold increase). We also tested Vmax for protein deuteration using deuterated minimal media with deuterium oxide as solvent, and achieved a 3-fold increase in yield compared to the equivalent protocol in E. coli. This is good news since isotopic labeling is expensive and often ineffective, but represents a necessary prerequisite for some structural techniques. Thus, Vmax represents a promising host for production of challenging expression targets and for protein deuteration in amounts suitable for structural biology studies.

biochemistry↗

Tangled up in fibers: How a lytic polysaccharide monooxygenase binds its chitin substrate

Lytic polysaccharide monooxygenases (LPMOs) are redox enzymes that bind to and oxidize insoluble carbohydrate substrates, such as chitin or cellulose. This class of enzymes has attracted considerable attention due to their ability to convert biomaterials of high abundance into oligosaccharides that can be useful for producing biofuels and bioplastics. However, processes at the interface between solution and insoluble substrates represent a major challenge to biochemical and structural characterization. Here, we investigated the four-domain LPMO from Vibrio cholerae, N-acetyl glucosamine binding protein A (GbpA), to elucidate how it docks onto its insoluble substrate with its two terminal domains. First, we developed a protocol that allowed GbpA and chitin to form a stable complex in suspension, overcoming incompatibilities of the two binding partners with respect to pH. Using contrast variation small-angle neutron scattering (SANS), after determining the neutron scattering contrast match point for chitin (47% D2O), we characterized the structure of GbpA in complex with chitin by SANS, and by electron microscopy. We found that GbpA binds rapidly to chitin, where it spreads out on the chitin fibers, and smoothens their surface. In some locations, GbpA binding induces the formation of protein-chitin clumps containing hundreds of GbpA molecules. Together, this suggests how the secretion of GbpA efficiently prepares the ground for microcolony formation by the bacteria.

biochemistry↗