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1.
Biotechnol J ; 19(8): e2400245, 2024 Aug.
Article in English | MEDLINE | ID: mdl-39118577

ABSTRACT

Enzymes that degrade ß-glucan play important roles in various industries, including those related to brewing, animal feed, and health care. Csph16A, an endo-ß-1,3(4)-glucanase encoded by a gene from the halotolerant, xerotolerant, and radiotrophic black fungus Cladosporium sphaerospermum, was cloned and expressed in Pichia pastoris. Two isoforms (Csph16A.1 and Csph16A.2) are produced, arising from differential glycosylation. The proteins were predicted to contain a catalytic Lam16A domain, along with a C-terminal domain (CTD) of unknown function which exhibits minimal secondary structure. Employing PCR-mediated gene truncation, the CTD of Csph16A was excised to assess its functional impact on the enzyme and determine potential alterations in biotechnologically relevant characteristics. The truncated mutant, Csph16A-ΔC, exhibited significantly enhanced thermal stability at 50°C, with D-values 14.8 and 23.5 times greater than those of Csph16A.1 and Csph16A.2, respectively. Moreover, Csph16A-ΔC demonstrated a 20%-25% increase in halotolerance at 1.25 and 1.5 M NaCl, respectively, compared to the full-length enzymes. Notably, specific activity against cereal ß-glucan, lichenan, and curdlan was increased by up to 238%. This study represents the first characterization of a glucanase from the stress-tolerant fungus C. sphaerospermum and the first report of a halotolerant and engineered endo-ß-1,3(4)-glucanase. Additionally, it sheds light on a group of endo-ß-1,3(4)-glucanases from Antarctic rock-inhabiting black fungi harboring a Lam16A catalytic domain and a novel CTD of unknown function.


Subject(s)
Enzyme Stability , beta-Glucans , beta-Glucans/metabolism , Cladosporium/enzymology , Cladosporium/genetics , Protein Domains , Fungal Proteins/genetics , Fungal Proteins/chemistry , Fungal Proteins/metabolism , Endo-1,3(4)-beta-Glucanase/genetics , Endo-1,3(4)-beta-Glucanase/metabolism , Endo-1,3(4)-beta-Glucanase/chemistry , Recombinant Proteins/chemistry , Recombinant Proteins/genetics , Recombinant Proteins/metabolism , Cloning, Molecular , Temperature , Saccharomycetales
2.
Appl Microbiol Biotechnol ; 108(1): 437, 2024 Aug 12.
Article in English | MEDLINE | ID: mdl-39133429

ABSTRACT

ß-1,6-Glucan plays a crucial role in fungal cell walls by linking the outer layer of mannoproteins and the inner layer of ß-1,3-glucan, contributing significantly to the maintenance of cell wall rigidity. Therefore, the hydrolysis of ß-1,6-glucan by ß-1,6-glucanase directly leads to the disintegration of the fungal cell wall. Here, a novel ß-1,6-glucanase FlGlu30 was identified from the endophytic Flavobacterium sp. NAU1659 and heterologously expressed in Escherichia coli BL21 (DE3). The optimal reaction conditions of purified FlGlu30 were 50℃ and pH 6.0, resulting in a specific activity of 173.1 U/mg using pustulan as the substrate. The hydrolyzed products of FlGlu30 to pustulan were mainly gentianose within 1 h of reaction. With the extension of reaction time, gentianose was gradually hydrolyzed to glucose, indicating that FlGlu30 is an endo-ß-1,6-glucanase. The germination of Magnaporthe oryzae Guy11 spores could not be inhibited by FlGlu30, but the appressorium formation of spores was completely inhibited under the concentration of 250.0 U/mL FlGlu30. The disruptions of cell wall and accumulation of intracellular reactive oxide species (ROS) were observed in FlGlu30-treated M. oryzae Guy11 cells, suggesting the significant importance of ß-1,6-glucan as a potential antifungal target and the potential application of FlGlu30. KEY POINTS: • ß-1,6-Glucan is a key component maintaining the rigid structure of fungal cell wall. • ß-1,6-Glucanase is an antifungal protein with significant potential applications. • FlGlu30 is the first reported ß-1, 6-glucanase derived from Flavobacterium.


Subject(s)
Antifungal Agents , Cell Wall , Escherichia coli , Flavobacterium , Glycoside Hydrolases , Flavobacterium/enzymology , Flavobacterium/genetics , Glycoside Hydrolases/genetics , Glycoside Hydrolases/metabolism , Hydrolysis , Antifungal Agents/pharmacology , Antifungal Agents/metabolism , Cell Wall/metabolism , Escherichia coli/genetics , Escherichia coli/metabolism , Glucans/metabolism , Hydrogen-Ion Concentration , beta-Glucans/metabolism , Cloning, Molecular , Recombinant Proteins/genetics , Recombinant Proteins/metabolism , Temperature , Substrate Specificity , Polysaccharides
3.
Med Microbiol Immunol ; 213(1): 13, 2024 Jul 05.
Article in English | MEDLINE | ID: mdl-38967888

ABSTRACT

Candida auris is an emerging pathogenic yeast that has been categorized as a global public health threat and a critical priority among fungal pathogens. Despite this, the immune response against C. auris infection is still not well understood. Hosts fight Candida infections through the immune system that recognizes pathogen-associated molecular patterns such as ß-glucan, mannan, and chitin on the fungal cell wall. In this study, levels of ß-glucan and mannan exposures in C. auris grown under different physiologically relevant stimuli were quantified by flow cytometry-based analysis. Lactate, hypoxia, and sublethal concentration of fluconazole trigger a decrease in surface ß-glucan while low pH triggers an increase in ß-glucan. There is no inverse pattern between exposure levels of ß-glucan and mannan in the cell wall architecture among the three clades. To determine the effect of cell wall remodeling on the immune response, a phagocytosis assay was performed, followed by quantification of released cytokines by ELISA. Lactate-induced decrease in ß-glucan leads to reduced uptake of C. auris by PMA-differentiated THP-1 and RAW 264.7 macrophages. Furthermore, reduced production of CCL3/MIP-1⍺ but not TNF-⍺ and IL-10 were observed. An in vivo infection analysis using silkworms reveals that a reduction in ß-glucan triggers an increase in the virulence of C. auris. This study demonstrates that ß-glucan alteration occurs in C. auris and serves as an escape mechanism from immune cells leading to increased virulence.


Subject(s)
Candida auris , Cell Wall , Immune Evasion , beta-Glucans , beta-Glucans/metabolism , Animals , Virulence , Mice , Cell Wall/immunology , Cell Wall/chemistry , Cell Wall/metabolism , Humans , Candida auris/pathogenicity , RAW 264.7 Cells , Candidiasis/microbiology , Candidiasis/immunology , Cytokines/metabolism , Phagocytosis , Macrophages/immunology , Macrophages/microbiology , Mannans/pharmacology , Lactic Acid/metabolism , Disease Models, Animal , THP-1 Cells
4.
Biomacromolecules ; 25(8): 5048-5057, 2024 Aug 12.
Article in English | MEDLINE | ID: mdl-39025475

ABSTRACT

Glycoside phosphorylases are enzymes that are frequently used for polysaccharide synthesis. Some of these enzymes have broad substrate specificity, enabling the synthesis of reducing-end-functionalized glucan chains. Here, we explore the potential of glycoside phosphorylases in synthesizing chromophore-conjugated polysaccharides using commercially available chromophoric model compounds as glycosyl acceptors. Specifically, we report cellulose and ß-1,3-glucan synthesis using 2-nitrophenyl ß-d-glucopyranoside, 4-nitrophenyl ß-d-glucopyranoside, and 2-methoxy-4-(2-nitrovinyl)phenyl ß-d-glucopyranoside with Clostridium thermocellum cellodextrin phosphorylase and Thermosipho africanus ß-1,3-glucan phosphorylase as catalysts. We demonstrate activity for both enzymes with all assayed chromophoric acceptors and report the crystallization-driven precipitation and detailed structural characterization of the synthesized polysaccharides, i.e., their molar mass distributions and various structural parameters, such as morphology, fibril diameter, lamellar thickness, and crystal form. Our results provide insights for the studies of chromophore-conjugated low molecular weight polysaccharides, glycoside phosphorylases, and the hierarchical assembly of crystalline cellulose and ß-1,3-glucan.


Subject(s)
Cellulose , Glucosyltransferases , beta-Glucans , Cellulose/chemistry , beta-Glucans/chemistry , beta-Glucans/metabolism , Glucosyltransferases/chemistry , Glucosyltransferases/metabolism , Clostridium thermocellum/enzymology , Phosphorylases/metabolism , Phosphorylases/chemistry
5.
Nat Commun ; 15(1): 5875, 2024 Jul 12.
Article in English | MEDLINE | ID: mdl-38997266

ABSTRACT

Correct regulation of intercellular communication is a fundamental requirement for cell differentiation. In Arabidopsis thaliana, the female germline differentiates from a single somatic ovule cell that becomes encased in ß-1,3-glucan, a water insoluble polysaccharide implicated in limiting pathogen invasion, regulating intercellular trafficking in roots, and promoting pollen development. Whether ß-1,3-glucan facilitates germline isolation and development has remained contentious, since limited evidence is available to support a functional role. Here, transcriptional profiling of adjoining germline and somatic cells revealed differences in gene expression related to ß-1,3-glucan metabolism and signalling through intercellular channels (plasmodesmata). Dominant expression of a ß-1,3-glucanase in the female germline transiently perturbed ß-1,3-glucan deposits, allowed intercellular movement of tracer molecules, and led to changes in germline gene expression and histone marks, eventually leading to termination of germline development. Our findings indicate that germline ß-1,3-glucan fulfils a functional role in the ovule by insulating the primary germline cell, and thereby determines the success of downstream female gametogenesis.


Subject(s)
Arabidopsis Proteins , Arabidopsis , Gametogenesis, Plant , Gene Expression Regulation, Plant , Ovule , beta-Glucans , Arabidopsis/metabolism , Arabidopsis/genetics , Ovule/metabolism , Ovule/genetics , beta-Glucans/metabolism , Arabidopsis Proteins/metabolism , Arabidopsis Proteins/genetics , Gametogenesis, Plant/genetics , Plasmodesmata/metabolism , Pollen/metabolism , Pollen/genetics , Pollen/growth & development , Gene Expression Profiling
6.
Nat Commun ; 15(1): 6382, 2024 Jul 31.
Article in English | MEDLINE | ID: mdl-39085213

ABSTRACT

Antifungal echinocandins inhibit the biosynthesis of ß-1,3-glucan, a major and essential polysaccharide component of the fungal cell wall. However, the efficacy of echinocandins against the pathogen Aspergillus fumigatus is limited. Here, we use solid-state nuclear magnetic resonance (ssNMR) and other techniques to show that echinocandins induce dynamic changes in the assembly of mobile and rigid polymers within the A. fumigatus cell wall. The reduction of ß-1,3-glucan induced by echinocandins is accompanied by a concurrent increase in levels of chitin, chitosan, and highly polymorphic α-1,3-glucans, whose physical association with chitin maintains cell wall integrity and modulates water permeability. The rearrangement of the macromolecular network is dynamic and controls the permeability and circulation of the drug throughout the cell wall. Thus, our results indicate that echinocandin treatment triggers compensatory rearrangements in the cell wall that may help A. fumigatus to tolerate the drugs' antifungal effects.


Subject(s)
Antifungal Agents , Aspergillus fumigatus , Cell Wall , Chitin , Echinocandins , beta-Glucans , Aspergillus fumigatus/drug effects , Aspergillus fumigatus/metabolism , Cell Wall/drug effects , Cell Wall/metabolism , beta-Glucans/metabolism , Antifungal Agents/pharmacology , Chitin/metabolism , Echinocandins/pharmacology , Chitosan/pharmacology , Magnetic Resonance Spectroscopy , Microbial Sensitivity Tests , Glucans/biosynthesis , Glucans/metabolism
7.
Carbohydr Polym ; 342: 122394, 2024 Oct 15.
Article in English | MEDLINE | ID: mdl-39048231

ABSTRACT

The exopolysaccharides of the Gram-positive bacterium Romboutsia ilealis have recently been shown to include (1,3;1,4)-ß-D-glucans. In the present study, we examined another Clostridia bacterium Clostridium ventriculi that has long been considered to contain abundant amounts of cellulose in its exopolysaccharides. We treated alcohol insoluble residues of C. ventriculi that include the exopolysaccharides with the enzyme lichenase that specifically hydrolyses (1,3;1,4)-ß-D-glucans, and examined the oligosaccharides released. This showed the presence of (1,3;1,4)-ß-D-glucans, which may have previously been mistaken for cellulose. Through genomic analysis, we identified the two family 2 glycosyltransferase genes CvGT2-1 and CvGT2-2 as possible genes encoding (1,3;1,4)-ß-D-glucan synthases. Gain-of-function experiments in the yeast Saccharomyces cerevisiae demonstrated that both of these genes do indeed encode (1,3;1,4)-ß-D-glucan synthases.


Subject(s)
Clostridium , Glycosyltransferases , Clostridium/enzymology , Clostridium/genetics , Glycosyltransferases/genetics , Glycosyltransferases/metabolism , Saccharomyces cerevisiae/genetics , Saccharomyces cerevisiae/enzymology , beta-Glucans/metabolism , Bacterial Proteins/genetics , Bacterial Proteins/metabolism , Glycoside Hydrolases/genetics , Glycoside Hydrolases/metabolism , Glucosyltransferases/genetics , Glucosyltransferases/metabolism
8.
Sci Rep ; 14(1): 14913, 2024 06 28.
Article in English | MEDLINE | ID: mdl-38942961

ABSTRACT

Β-glucans are polysaccharide macromolecules that can be found in the cell walls of molds, such as Rhizopus oryzae. They provide functional properties in food systems and have immunomodulatory activity, anticancer, and prebiotic effects; reduce triglycerides and cholesterol; and prevent obesity, among others benefits. Furthermore, potato starch production requires a large amount of water, which is usually discharged into the environment, creating problems in soils and bodies of water. The physical parameters to produce ß-glucans were determined, liquid waste from potato starch processing was used and native Rhizopus oryzae was isolated and identified from cereal grains. The isolates grew quickly on the three types of agars used at 25 °C and 37 °C, and they did not grow at 45 °C. Rhizopus oryzae M10A1 produced the greatest amount of ß-glucans after six days of culture at 30 °C, pH 6, a stirring rate of 150 rpm and a fermentation volume of 250 mL. By establishing the physical fermentation parameters and utilizing the liquid waste from potato starch, Rhizopus oryzae M10A1 yielded 397.50 mg/100 g of ß-glucan was obtained.


Subject(s)
Fermentation , Rhizopus oryzae , Solanum tuberosum , Starch , beta-Glucans , beta-Glucans/metabolism , Solanum tuberosum/microbiology , Solanum tuberosum/metabolism , Starch/metabolism , Rhizopus oryzae/metabolism , Hydrogen-Ion Concentration , Rhizopus/metabolism , Temperature
9.
Int J Biol Macromol ; 273(Pt 1): 133026, 2024 Jul.
Article in English | MEDLINE | ID: mdl-38852722

ABSTRACT

A novel glycoside hydrolase (GH) family 16 multi-domain ß-1,3-1,4-glucanase (FsGlc16A) from Fibrobacter sp. UWP2 was identified, heterogeneously expressed, and its enzymatic properties, protein structure and application potential were characterized. Enzymological characterization showed that FsGlc16A performed the optimal catalytic activity at pH 4.5 and 50 °C with a specific activity of 3263 U/mg. FsGlc16A exhibited the substrate specificity towards oat ß-glucan, barley ß-glucan and lichenan, and in addition, it hydrolyzed oat ß-glucan and lichenan into different ß-glucooligosaccharides with polymerization degrees of 3-4, which further illustrated that it belonged to the endo-type ß-1,3-1,4-glucanase. FsGlc16A was classified in subfamily25 of GH16. A 'PXSSSS' repeats domain was identified at the C-terminus of FsGlc16A, which was distinct from the typical GH family 16 ß-1,3-1,4-glucanases. Removing the 'PXSSSS' repeats domain affected the binding of the substrate to FsGlc16A and reduced the enzyme activity. FsGlc16A displayed good potential for the applications, which hydrolyzed oat bran into ß-glucooligosaccharides, and reduced filtration time (18.89 %) and viscosity (3.64 %) in the saccharification process. This study investigated the enzymatic properties and domain function of FsGlc16A, providing new ideas and insights into the study of ß-1,3-1,4-glucanase.


Subject(s)
Glucans , Substrate Specificity , Hydrolysis , Glucans/chemistry , Glucans/metabolism , Hydrogen-Ion Concentration , Amino Acid Sequence , Temperature , Protein Domains , beta-Glucans/metabolism , beta-Glucans/chemistry , Glycoside Hydrolases/chemistry , Glycoside Hydrolases/metabolism , Kinetics , Endo-1,3(4)-beta-Glucanase/chemistry , Endo-1,3(4)-beta-Glucanase/metabolism , Endo-1,3(4)-beta-Glucanase/genetics , Cloning, Molecular , Phylogeny , Enzyme Stability
10.
Int J Mol Sci ; 25(12)2024 Jun 07.
Article in English | MEDLINE | ID: mdl-38928003

ABSTRACT

Barley with high grain ß-glucan content is valuable for functional foods. The identification of loci for high ß-glucan content is, thus, of great importance for barley breeding. Segregation mapping for the content in ß-glucan and other barley grain components (starch, protein, lipid, ash, phosphorous, calcium, sodium) was performed using the progeny of the cross between Glacier AC38, a mutant with high amylose, and CDC Fibar, a high ß-glucan waxy cultivar. The offspring of this cross showed transgressive segregation for ß-glucan content. Linkage analysis based on single-nucleotide polymorphism (SNP) molecular markers was used for the genotyping of the parents and recombinant inbred lines (RILs). Two Quantitative Trait Loci (QTL) for ß-glucan content and several QTL for other grain components were found. The former ones, located on chromosomes 1H and 7H, explained 27.9% and 27.4% of the phenotypic variance, respectively. Glacier AC38 provided the allele for high ß-glucan content at the QTL on chromosome 1H, whereas CDC Fibar contributed the allele at the QTL on chromosome 7H. Their recombination resulted in a novel haplotype with higher ß-glucan content, up to 18.4%. Candidate genes are proposed for these two QTL: HvCslF9, involved in ß-glucan biosynthesis, for the QTL on chromosome 1H; Horvu_PLANET_7H01G069300, a gene encoding an ATP-Binding Cassette (ABC) transporter, for the QTL on chromosome 7H.


Subject(s)
Chromosome Mapping , Hordeum , Polymorphism, Single Nucleotide , Quantitative Trait Loci , beta-Glucans , Hordeum/genetics , Hordeum/metabolism , beta-Glucans/metabolism , Phenotype , Chromosomes, Plant/genetics , Edible Grain/genetics , Edible Grain/metabolism , Genotype , Seeds/genetics , Seeds/metabolism , Seeds/chemistry , Plant Breeding , Recombination, Genetic/genetics , Haplotypes
11.
Food Funct ; 15(15): 7794-7811, 2024 Jul 29.
Article in English | MEDLINE | ID: mdl-38920001

ABSTRACT

Dietary oat ß-glucan regulates the gut microbial composition and structure; however, the interplay relationship between oat ß-glucan and the gut microbiota is unclear. In this study, we aim to investigate the interaction between oat ß-glucan and human gut Bacteroides, a versatile carbohydrate utilizer, and explore the effect of their interaction on gut immunity homeostasis. The results of in vitro fermentation showed that oat ß-glucan significantly increased the abundance of gut Bacteroides at the genus level. Then, Bacteroides strains were isolated from human gut microbiota and 9 strains of Bacteroides could grow on oat ß-glucan and degrade oat ß-glucan to reducing sugars. Notably, strains Bacteroides xylanisolvens Bac02 and Bacteroides koreensis Bac08 possessed the strongest degradation capacity towards oat ß-glucan. Genome analysis and functional annotations suggested that B. xylanisolvens Bac02 and B. koreensis Bac08 contained abundant genes encoding glycoside hydrolases family 3 (GH3) and GH16, which might be responsible for ß-glucan degradation. Moreover, cell experiments revealed that the metabolites from oat ß-glucan fermentation by these 9 strains of Bacteroides could regulate the polarization of macrophages and maintain gut immunity homeostasis. Our study provides a novel insight into research on the interplay between dietary compounds and the gut microbiota.


Subject(s)
Avena , Bacteroides , Cytokines , Fermentation , Gastrointestinal Microbiome , beta-Glucans , Humans , beta-Glucans/metabolism , Bacteroides/metabolism , Cytokines/metabolism , Feces/microbiology , Animals , Mice
12.
Chemosphere ; 362: 142504, 2024 Aug.
Article in English | MEDLINE | ID: mdl-38825243

ABSTRACT

The aerobic granular sludge (AGS) biotechnology has been explored for wastewater treatment for over two decades. AGS is gaining increased interest due to its enhanced treatment performance ability and the potential for resource recovery from AGS-based wastewater treatment systems. Resource recovery from AGS is a promising approach to sustainable wastewater treatment and attaining a circular economy in the wastewater management industry. Currently, research is at an advanced stage on recovering value-added resources such as phosphorus, polyhydroxyalkanoates, alginate-like exopolysaccharides, and tryptophan from waste aerobic granules. Recently, other value-added resources, including curdlan, have been identified in the aerobic granule matrix, and this may increase the sustainability of biotechnology in the wastewater industry. This paper provides an overview of AGS resource recovery potential. In particular, the potential for enhanced curdlan biosynthesis in the granule matrix and its recovery from AGS wastewater treatment systems is outlined.


Subject(s)
Sewage , Waste Disposal, Fluid , Wastewater , beta-Glucans , beta-Glucans/metabolism , Sewage/microbiology , Sewage/chemistry , Wastewater/chemistry , Waste Disposal, Fluid/methods , Aerobiosis
13.
Microbiol Res ; 286: 127797, 2024 Sep.
Article in English | MEDLINE | ID: mdl-38851008

ABSTRACT

Candida auris has drawn global attention due to its alarming multidrug resistance and the emergence of pan resistant strains. C. auris poses a significant risk in nosocomial candidemia especially among immunocompromised patients. C. auris showed unique virulence characteristics associated with cell wall including cell polymorphism, adaptation, endurance on inanimate surfaces, tolerance to external conditions, and immune evasion. Notably, it possesses a distinctive cell wall composition, with an outer mannan layer shielding the inner 1,3-ß glucan from immune recognition, thereby enabling immune evasion and drug resistance. This review aimed to comprehend the association between unique characteristics of C. auris's cell wall and virulence, resistance mechanisms, and immune evasion. This is particularly relevant since the fungal cell wall has no human homology, providing a potential therapeutic target. Understanding the complex interactions between the cell wall and the host immune system is essential for devising effective treatment strategies, such as the use of repurposed medications, novel therapeutic agents, and immunotherapy like monoclonal antibodies. This therapeutic targeting strategy of C. auris holds promise for effective eradication of this resilient pathogen.


Subject(s)
Antifungal Agents , Candida auris , Cell Wall , Immune Evasion , Humans , Virulence , Candida auris/pathogenicity , Antifungal Agents/therapeutic use , Antifungal Agents/pharmacology , Drug Resistance, Fungal , beta-Glucans/metabolism , Morphogenesis , Candidiasis/microbiology , Candidiasis/immunology , Candidiasis/drug therapy , Animals
14.
BMC Genomics ; 25(1): 495, 2024 May 20.
Article in English | MEDLINE | ID: mdl-38769483

ABSTRACT

Bacteria of the genera Xylanibacter and Segatella are among the most dominant groups in the rumen microbiota. They are characterized by the ability to utilize different hemicelluloses and pectin of plant cell-wall as well as plant energy storage polysaccharides. The degradation is possible with the use of cell envelope bound multiprotein apparatuses coded in polysaccharide utilization loci (PULs), which have been shown to be substrate specific. The knowledge of PUL presence in rumen Xylanibacter and Segatella based on bioinformatic analyses is already established and transcriptomic and genetic approaches confirmed predicted PULs for a limited number of substrates. In this study, we transcriptomically identified additional different PULs in Xylanibacter ruminicola KHP1 and Segatella bryantii TF1-3. We also identified substrate preferences and found that specific growth rate and extent of growth impacted the choice of substrates preferentially used for degradation. These preferred substrates were used by both strains simultaneously as judged by their PUL upregulation. Lastly, ß-glucan and xyloglucan were used by these strains in the absence of bioinformatically and transcriptomically identifiable PUL systems.


Subject(s)
Gene Expression Profiling , Polysaccharides , Rumen , Xylans , Animals , Xylans/metabolism , Polysaccharides/metabolism , Rumen/microbiology , Rumen/metabolism , Glucans/metabolism , beta-Glucans/metabolism , Substrate Specificity , Bacteroidetes/genetics , Bacteroidetes/metabolism , Transcriptome
15.
Mol Microbiol ; 121(6): 1245-1261, 2024 06.
Article in English | MEDLINE | ID: mdl-38750617

ABSTRACT

Linear, unbranched (1,3;1,4)-ß-glucans (mixed-linkage glucans or MLGs) are commonly found in the cell walls of grasses, but have also been detected in basal land plants, algae, fungi and bacteria. Here we show that two family GT2 glycosyltransferases from the Gram-positive bacterium Sarcina ventriculi are capable of synthesizing MLGs. Immunotransmission electron microscopy demonstrates that MLG is secreted as an exopolysaccharide, where it may play a role in organizing individual cells into packets that are characteristic of Sarcina species. Heterologous expression of these two genes shows that they are capable of producing MLGs in planta, including an MLG that is chemically identical to the MLG secreted from S. ventriculi cells but which has regularly spaced (1,3)-ß-linkages in a structure not reported previously for MLGs. The tandemly arranged, paralogous pair of genes are designated SvBmlgs1 and SvBmlgs2. The data indicate that MLG synthases have evolved different enzymic mechanisms for the incorporation of (1,3)-ß- and (1,4)-ß-glucosyl residues into a single polysaccharide chain. Amino acid variants associated with the evolutionary switch from (1,4)-ß-glucan (cellulose) to MLG synthesis have been identified in the active site regions of the enzymes. The presence of MLG synthesis in bacteria could prove valuable for large-scale production of MLG for medical, food and beverage applications.


Subject(s)
Glycosyltransferases , beta-Glucans , Glycosyltransferases/metabolism , Glycosyltransferases/genetics , beta-Glucans/metabolism , Cell Wall/metabolism , Bacterial Proteins/metabolism , Bacterial Proteins/genetics , Polysaccharides, Bacterial/biosynthesis , Polysaccharides, Bacterial/metabolism
16.
Syst Appl Microbiol ; 47(2-3): 126514, 2024 May.
Article in English | MEDLINE | ID: mdl-38735274

ABSTRACT

Use of curldlan, an insoluble ß-1,3-glucan, as an enrichment substrate under aerobic conditions resulted in the selection from hypersaline soda lakes of a single natronarchaeon, strain AArc-curdl1. This organism is an obligately aerobic saccharolytic, possessing a poorly explored (in Archaea) potential to utilize beta-1-3 glucans, being only a second example of a haloarchaeon with this ability known in pure culture. The main phenotypic property of the isolate is the ability to grow with insoluble ß-1,3-backboned glucans, i.e. curdlan and pachyman. Furthermore, the strain utilized starch family α-glucans, beta-fructan inulin and a limited spectrum of sugars. The major ether-bound membrane polar phospholipids included PGP-Me and PG. The glyco- and sulfolipids were absent. The major respiratory menaquinone is MK-8:8. According to phylogenomic analysis, AArc-curdl1 represents a separate species in the recently described genus Natronosalvus within the family Natrialbaceae. The closest related species is Natronosalvus amylolyticus (ANI, AAI and DDH values of 90.2, 91.6 and 44 %, respectively). On the basis of its unique physiological properties and phylogenomic distance, strain AArc-curdl1T is classified as a novel species Natronosalvus hydrolyticus sp. nov. (=JCM 34865 = UQM 41566).


Subject(s)
Lakes , Phylogeny , RNA, Ribosomal, 16S , beta-Glucans , Lakes/microbiology , beta-Glucans/metabolism , RNA, Ribosomal, 16S/genetics , Sequence Analysis, DNA , Phospholipids/analysis , Phospholipids/chemistry , Salinity , DNA, Archaeal/genetics , DNA, Archaeal/chemistry , Vitamin K 2/analysis , Vitamin K 2/chemistry , Vitamin K 2/analogs & derivatives
17.
Proc Natl Acad Sci U S A ; 121(21): e2319707121, 2024 May 21.
Article in English | MEDLINE | ID: mdl-38743622

ABSTRACT

Glycogen is a glucose storage molecule composed of branched α-1,4-glucan chains, best known as an energy reserve that can be broken down to fuel central metabolism. Because fungal cells have a specialized need for glucose in building cell wall glucans, we investigated whether glycogen is used for this process. For these studies, we focused on the pathogenic yeast Cryptococcus neoformans, which causes ~150,000 deaths per year worldwide. We identified two proteins that influence formation of both glycogen and the cell wall: glycogenin (Glg1), which initiates glycogen synthesis, and a protein that we call Glucan organizing enzyme 1 (Goe1). We found that cells missing Glg1 lack α-1,4-glucan in their walls, indicating that this material is derived from glycogen. Without Goe1, glycogen rosettes are mislocalized and ß-1,3-glucan in the cell wall is reduced. Altogether, our results provide mechanisms for a close association between glycogen and cell wall.


Subject(s)
Cell Wall , Cryptococcus neoformans , Fungal Proteins , Glucans , Glycogen , Cell Wall/metabolism , Glycogen/metabolism , Glucans/metabolism , Fungal Proteins/metabolism , Cryptococcus neoformans/metabolism , Glucosyltransferases/metabolism , beta-Glucans/metabolism
18.
Microb Cell Fact ; 23(1): 130, 2024 May 06.
Article in English | MEDLINE | ID: mdl-38711033

ABSTRACT

BACKGROUND: Cyclic ß-1,2-glucans (CßG) are bacterial cyclic homopolysaccharides with interesting biotechnological applications. These ring-shaped molecules have a hydrophilic surface that confers high solubility and a hydrophobic cavity able to include poorly soluble molecules. Several studies demonstrate that CßG and many derivatives can be applied in drug solubilization and stabilization, enantiomer separation, catalysis, synthesis of nanomaterials and even as immunomodulators, suggesting these molecules have great potential for their industrial and commercial exploitation. Nowadays, there is no method to produce CßG by chemical synthesis and bacteria that synthesize them are slow-growing or even pathogenic, which makes the scaling up of the process difficult and expensive. Therefore, scalable production and purification methods are needed to afford the demand and expand the repertoire of applications of CßG. RESULTS: We present the production of CßG in specially designed E. coli strains by means of the deletion of intrinsic polysaccharide biosynthetic genes and the heterologous expression of enzymes involved in CßG synthesis, transport and succinilation. These strains produce different types of CßG: unsubstituted CßG, anionic CßG and CßG of high size. Unsubstituted CßG with a degree of polymerization of 17 to 24 glucoses were produced and secreted to the culture medium by one of the strains. Through high cell density culture (HCDC) of that strain we were able to produce 4,5 g of pure unsubstituted CßG /L in culture medium within 48 h culture. CONCLUSIONS: We have developed a new recombinant bacterial system for the synthesis of cyclic ß-1,2-glucans, expanding the use of bacteria as a platform for the production of new polysaccharides with biotechnological applications. This new approach allowed us to produce CßG in E. coli with high yields and the highest volumetric productivity reported to date. We expect this new highly scalable system facilitates CßG availability for further research and the widespread use of these promising molecules across many application fields.


Subject(s)
Escherichia coli , beta-Glucans , Escherichia coli/metabolism , Escherichia coli/genetics , beta-Glucans/metabolism
19.
Nat Commun ; 15(1): 3926, 2024 May 09.
Article in English | MEDLINE | ID: mdl-38724513

ABSTRACT

Patients with decreased levels of CD18 (ß2 integrins) suffer from life-threatening bacterial and fungal infections. CD11b, the α subunit of integrin CR3 (CD11b/CD18, αMß2), is essential for mice to fight against systemic Candida albicans infections. Live elongating C. albicans activates CR3 in immune cells. However, the hyphal ligands that activate CR3 are not well defined. Here, we discovered that the C. albicans Als family proteins are recognized by the I domain of CD11b in macrophages. This recognition synergizes with the ß-glucan-bound lectin-like domain to activate CR3, thereby promoting Syk signaling and inflammasome activation. Dectin-2 activation serves as the "outside-in signaling" for CR3 activation at the entry site of incompletely sealed phagosomes, where a thick cuff of F-actin forms to strengthen the local interaction. In vitro, CD18 partially contributes to IL-1ß release from dendritic cells induced by purified hyphal Als3. In vivo, Als3 is vital for C. albicans clearance in mouse kidneys. These findings uncover a novel family of ligands for the CR3 I domain that promotes fungal clearance.


Subject(s)
CD18 Antigens , Candidiasis , Fungal Proteins , Lectins, C-Type , Macrophages , Animals , Mice , beta-Glucans/metabolism , beta-Glucans/immunology , Candida albicans/immunology , Candidiasis/immunology , Candidiasis/microbiology , CD11b Antigen/metabolism , CD11b Antigen/immunology , CD18 Antigens/metabolism , Dendritic Cells/immunology , Dendritic Cells/metabolism , Fungal Proteins/metabolism , Fungal Proteins/immunology , Lectins, C-Type/metabolism , Lectins, C-Type/immunology , Macrophages/immunology , Macrophages/metabolism , Signal Transduction
20.
Food Res Int ; 186: 114287, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38729740

ABSTRACT

The gut microbiota is widely acknowledged as a crucial factor in regulating host health. The structure of dietary fibers determines changes in the gut microbiota and metabolic differences resulting from their fermentation, which in turn affect gut microbe-related health effects. ß-Glucan (BG) is a widely accessible dietary fiber to humans, and its structural characteristics vary depending on the source. However, the interactions between different structural BGs and gut microbiota remain unclear. This study used an in vitro fermentation model to investigate the effects of BG on gut microbiota, and microbiomics and metabolomics techniques to explore the relationship between the structure of BG, bacterial communities, and metabolic profiles. The four sources of BG (barley, yeast, algae, and microbial fermentation) contained different types and proportions of glycosidic bonds, which differentially altered the bacterial community. The BG from algal sources, which contained only ß(1 â†’ 4) glycosidic bonds, was the least metabolized by the gut microbiota and caused limited metabolic changes. The other three BGs contain more diverse glycosidic bonds and can be degraded by bacteria from multiple genera, causing a wider range of metabolic changes. This work also suggested potential synergistic degradation relationships between gut bacteria based on BG. Overall, this study deepens the structural characterization-microbial-functional understanding of BGs and provides theoretical support for the development of gut microbiota-targeted foods.


Subject(s)
Bacteria , Fermentation , Gastrointestinal Microbiome , beta-Glucans , beta-Glucans/metabolism , Gastrointestinal Microbiome/physiology , Humans , Bacteria/metabolism , Bacteria/classification , Dietary Fiber/metabolism , Metabolomics
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