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1.
Carbohydr Polym ; 339: 122248, 2024 Sep 01.
Article in English | MEDLINE | ID: mdl-38823916

ABSTRACT

Arabinoxylan is a major hemicellulose in the sugarcane plant cell wall with arabinose decorations that impose steric restrictions on the activity of xylanases against this substrate. Enzymatic removal of the decorations by arabinofuranosidases can allow a more efficient arabinoxylan degradation by xylanases. Here we produced and characterized a recombinant Bifidobacterium longum arabinofuranosidase from glycoside hydrolase family 43 (BlAbf43) and applied it, together with GH10 and GH11 xylanases, to produce xylooligosaccharides (XOS) from wheat arabinoxylan and alkali pretreated sugarcane bagasse. The enzyme synergistically enhanced XOS production by GH10 and GH11 xylanases, being particularly efficient in combination with the latter family of enzymes, with a degree of synergism of 1.7. We also demonstrated that the enzyme is capable of not only removing arabinose decorations from the arabinoxylan and from the non-reducing end of the oligomeric substrates, but also hydrolyzing the xylan backbone yielding mostly xylobiose and xylose in particular cases. Structural studies of BlAbf43 shed light on the molecular basis of the substrate recognition and allowed hypothesizing on the structural reasons of its multifunctionality.


Subject(s)
Bifidobacterium longum , Cellulose , Endo-1,4-beta Xylanases , Glucuronates , Glycoside Hydrolases , Oligosaccharides , Saccharum , Xylans , Oligosaccharides/chemistry , Oligosaccharides/metabolism , Glycoside Hydrolases/metabolism , Glycoside Hydrolases/chemistry , Glucuronates/metabolism , Glucuronates/chemistry , Endo-1,4-beta Xylanases/metabolism , Endo-1,4-beta Xylanases/chemistry , Xylans/metabolism , Xylans/chemistry , Saccharum/chemistry , Saccharum/metabolism , Cellulose/chemistry , Cellulose/metabolism , Bifidobacterium longum/enzymology , Bifidobacterium longum/metabolism , Hydrolysis , Substrate Specificity , Recombinant Proteins/metabolism , Recombinant Proteins/chemistry , Disaccharides
2.
Food Chem ; 452: 139600, 2024 Sep 15.
Article in English | MEDLINE | ID: mdl-38744138

ABSTRACT

A naringinase complex was chemically aminated prior to its immobilization on glyoxyl-agarose to develop a robust biocatalyst for juice debittering. The effects of amination on the optimal pH and temperature, thermal stability, and debittering performance were analyzed. Concentration of amino groups on catalysts surface increased in 36 %. Amination reduced the ß-glucosidase activity of naringinase complex; however, did not affect optimal pH and temperature of the enzyme and it favored immobilization, obtaining α-l-rhamnosidase and ß-d-glucosidase activities of 1.7 and 4.2 times the values obtained when the unmodified enzymes were immobilized. Amination favored the stability of the immobilized biocatalyst, retaining 100 % of both activities after 190 h at 30 °C and pH 3, while its non-aminated counterpart retained 80 and 52 % of α-rhamnosidase and ß-glucosidase activities, respectively. The immobilized catalyst showed a better performance in grapefruit juice debittering, obtaining a naringin conversion of 7 times the value obtained with the non-aminated catalyst.


Subject(s)
Enzymes, Immobilized , Fruit and Vegetable Juices , Glyoxylates , Sepharose , Fruit and Vegetable Juices/analysis , Enzymes, Immobilized/chemistry , Enzymes, Immobilized/metabolism , Amination , Hydrogen-Ion Concentration , Sepharose/chemistry , Glyoxylates/chemistry , Citrus/chemistry , Citrus/enzymology , Enzyme Stability , Biocatalysis , Multienzyme Complexes/chemistry , Multienzyme Complexes/metabolism , Glycoside Hydrolases/chemistry , Glycoside Hydrolases/metabolism , beta-Glucosidase/chemistry , beta-Glucosidase/metabolism , Temperature , Bacterial Proteins/chemistry , Bacterial Proteins/metabolism , Flavanones/chemistry , Flavanones/metabolism , Catalysis
3.
J Biosci ; 492024.
Article in English | MEDLINE | ID: mdl-38726823

ABSTRACT

Can one design and automate a computational and experimental platform such that each platform iteratively guides and drives the other to achieve a pre-determined goal? Rapp and colleagues (2024) describe just this possibility in a paper that details a prototype of a self-driven laboratory that can navigate autonomously to yield an engineered enzyme with a desired attribute. This laboratory, rather, the automated protocol, is referred to by an acronym - SAMPLE. This refers to Self-driving Autonomous Machines for Protein Landscape Exploration. The paper describes a prototype involving the engineering of a glycoside hydrolase for enhanced thermostability. The 'brain', the computational component behind this automated system, was designed to learn protein sequence- function relationships from a curated dataset. These designer proteins were then evaluated by a fully automated robotic system that could synthesize and experimentally characterize the designed protein and provide feedback to the agent, i.e., the computational component, to fine-tune its understanding of the system. The SAMPLE agents were thus designed to continually refine their understanding of the protein landscape by actively acquiring information in the search process. As this intelligent agent learns protein sequence-function relationships from a curated, diverse dataset, this feedback is crucial to refine landscape exploration and the design of new proteins based on the updated hypothesis. In this prototype, four SAMPLE agents were tasked with this goal. The goal of each of these agents was to navigate the glycoside hydrolase landscape and identify enzymes with enhanced thermal tolerance. Differences in the search behavior of individual agents primarily arise from experimental measurement noise. However, despite differences in their search behavior, all four agents could converge on a thermostable glycoside hydrolase - a remarkable feat as it apparently did not need any human intervention.


Subject(s)
Glycoside Hydrolases , Protein Engineering , Protein Engineering/methods , Glycoside Hydrolases/chemistry , Glycoside Hydrolases/genetics , Glycoside Hydrolases/metabolism , Robotics , Enzyme Stability
4.
Sci Rep ; 14(1): 11454, 2024 05 20.
Article in English | MEDLINE | ID: mdl-38769105

ABSTRACT

This study focuses on pectin covalently linked in cell walls from two sources, apples and carrots, that was extracted using diluted alkali, and it describes changes in the rheological properties of diluted alkali-soluble pectin (DASP) due to enzymatic treatment. Given DASP's richness of rhamnogalacturonan I (RG-I), RG-I acetyl esterase (RGAE), rhamnogalacturonan endolyase (RGL), and arabinofuranosidase (ABF) were employed in various combinations for targeted degradation of RG-I pectin chains. Enzymatic degradations were followed by structural studies of pectin molecules using atomic force microscopy (AFM) as well as measurements of rheological and spectral properties. AFM imaging revealed a significant increase in the length of branched molecules after incubation with ABF, suggesting that arabinose side chains limit RG-I aggregation. Structural modifications were confirmed by changes in the intensity of bands in the pectin fingerprint and anomeric region on Fourier transform infrared spectra. ABF treatment led to a decrease in the stability of pectic gels, while the simultaneous use of ABF, RGAE, and RGL enzymes did not increase the degree of aggregation compared to the control sample. These findings suggest that the association of pectin chains within the DASP fraction may rely significantly on intermolecular interactions. Two mechanisms are proposed, which involve side chains as short-range attachment points or an extended linear homogalacturonan conformation favoring inter-chain interactions over self-association.


Subject(s)
Pectins , Rheology , Pectins/chemistry , Pectins/metabolism , Microscopy, Atomic Force , Alkalies/chemistry , Glycoside Hydrolases/metabolism , Glycoside Hydrolases/chemistry , Solubility , Spectroscopy, Fourier Transform Infrared , Daucus carota/chemistry , Polysaccharide-Lyases/metabolism , Polysaccharide-Lyases/chemistry , Cell Wall/chemistry , Cell Wall/metabolism
5.
Gut Microbes ; 16(1): 2353229, 2024.
Article in English | MEDLINE | ID: mdl-38752423

ABSTRACT

Members of the genus Bifidobacterium are commonly found in the human gut and are known to utilize complex carbohydrates that are indigestible by the human host. Members of the Bifidobacterium longum subsp. longum taxon can metabolize various plant-derived carbohydrates common to the human diet. To metabolize such polysaccharides, which include arabinoxylan, bifidobacteria need to encode appropriate carbohydrate-active enzymes in their genome. In the current study, we describe two GH43 family enzymes, denoted here as AxuA and AxuB, which are encoded by B. longum subsp. longum NCIMB 8809 and are shown to be required for cereal-derived arabinoxylan metabolism by this strain. Based on the observed hydrolytic activity of AxuA and AxuB, assessed by employing various synthetic and natural substrates, and based on in silico analyses, it is proposed that both AxuA and AxuB represent extracellular α-L-arabinofuranosidases with distinct substrate preferences. The variable presence of the axuA and axuB genes and other genes previously described to be involved in the metabolism of arabinose-containing glycans can in the majority cases explain the (in)ability of individual B. longum subsp. longum strains to grow on cereal-derived arabinoxylans and arabinan.


Subject(s)
Bifidobacterium longum , Edible Grain , Glycoside Hydrolases , Xylans , Xylans/metabolism , Glycoside Hydrolases/metabolism , Glycoside Hydrolases/genetics , Edible Grain/microbiology , Edible Grain/metabolism , Bifidobacterium longum/enzymology , Bifidobacterium longum/metabolism , Bifidobacterium longum/genetics , Substrate Specificity , Bacterial Proteins/metabolism , Bacterial Proteins/genetics , Humans
6.
BMC Plant Biol ; 24(1): 353, 2024 May 01.
Article in English | MEDLINE | ID: mdl-38693493

ABSTRACT

BACKGROUND: Wasabi, a Brassicaceae member, is well-known for its unique pungent and hot flavor which is produced from glucosinolate (GSL) degradation. Myrosinase (MYR) is a principle enzyme catalyzing the primary conversion of GSLs to GSL hydrolysis products (GHPs) which is responsible for plant defense system and food quality. Due to the limited information in relation to MYRs present in wasabi (Wasabia japonica M.), this study aimed to identify the MYR isogenes in W. japonica and analyze their roles in relation to GSL metabolism. RESULTS: In results, WjMYRI-1 was abundantly expressed in all organs, whereas WjMYRI-2 showed only trace expression levels. WjMYRII was highly expressed in the aboveground tissues. Interestingly, WjMYRII expression was significantly upregulated by certain abiotic factors, such as methyl jasmonate (more than 40-fold in petioles and 15-fold in leaves) and salt (tenfold in leaves). Young leaves and roots contained 97.89 and 91.17 µmol‧g-1 of GSL, whereas less GSL was produced in mature leaves and petioles (38.36 and 44.79 µmol‧g-1, respectively). Similar pattern was observed in the accumulation of GHPs in various plant organs. Notably, despite the non-significant changes in GSL production, abiotic factors treated samples enhanced significantly GHP content. Pearson's correlation analysis revealed that WjMYRI-1 expression significantly correlated with GSL accumulation and GHP formation, suggesting the primary role of WjMYRI-1-encoding putative protein in GSL degradation. In contrast, WjMYRII expression level showed no correlation with GSL or GHP content, suggesting another physiological role of WjMYRII in stress-induced response. CONCLUSIONS: In conclusions, three potential isogenes (WjMYRI-1, WjMYRI-2, and WjMYRII) encoding for different MYR isoforms in W. japonica were identified. Our results provided new insights related to MYR and GSL metabolism which are important for the implications of wasabi in agriculture, food and pharmaceutical industry. Particularly, WjMYRI-1 may be primarily responsible for GSL degradation, whereas WjMYRII (clade II) may be involved in other regulatory pathways induced by abiotic factors.


Subject(s)
Acetates , Glucosinolates , Glycoside Hydrolases , Glucosinolates/metabolism , Glycoside Hydrolases/metabolism , Glycoside Hydrolases/genetics , Gene Expression Regulation, Plant , Brassicaceae/genetics , Brassicaceae/metabolism , Brassicaceae/enzymology , Plant Proteins/metabolism , Plant Proteins/genetics , Cyclopentanes/metabolism , Oxylipins/metabolism , Plant Leaves/metabolism , Plant Leaves/genetics
7.
World J Microbiol Biotechnol ; 40(7): 216, 2024 May 28.
Article in English | MEDLINE | ID: mdl-38802708

ABSTRACT

Poor thermostability reduces the industrial application value of κ-carrageenase. In this study, the PoPMuSiC algorithm combined with site-directed mutagenesis was applied to improve the thermostability of the alkaline κ-carrageenase from Pseudoalteromonas porphyrae. The mutant E154A with improved thermal stability was successfully obtained using this strategy after screening seven rationally designed mutants. Compared with the wild-type κ-carrageenase (WT), E154A improved the activity by 29.4% and the residual activity by 51.6% after treatment at 50 °C for 30 min. The melting temperature (Tm) values determined by circular dichroism were 66.4 °C and 64.6 °C for E154A and WT, respectively. Molecular dynamics simulation analysis of κ-carrageenase showed that the flexibility decreased within the finger regions (including F1, F2, F3, F5 and F6) and the flexibility improved in the catalytic pocket area of the mutant E154A. The catalytic tunnel dynamic simulation analysis revealed that E154A led to enlarged catalytic tunnel volume and increased rigidity of the enzyme-substrate complex. The increasing rigidity within the finger regions and more flexible catalytic pocket of P. porphyrae κ-carrageenase might be a significant factor for improvement of the thermostability of the mutant κ-carrageenase E154A. The proposed rational design strategy could be applied to improve the enzyme kinetic stability of other industrial enzymes. Moreover, the hydrolysates of κ-carrageenan digested by the mutant E154A demonstrated increased scavenging activities against hydroxyl (OH) radicals and 2,2'-azinobis(3-ethylbenzothiazoline)-6-sulfonic acid (ABTS) radicals compared with the undigested κ-carrageenan.


Subject(s)
Catalytic Domain , Enzyme Stability , Glycoside Hydrolases , Molecular Dynamics Simulation , Mutagenesis, Site-Directed , Pseudoalteromonas , Glycoside Hydrolases/genetics , Glycoside Hydrolases/chemistry , Glycoside Hydrolases/metabolism , Pseudoalteromonas/enzymology , Pseudoalteromonas/genetics , Bacterial Proteins/genetics , Bacterial Proteins/chemistry , Bacterial Proteins/metabolism , Kinetics , Temperature , Circular Dichroism , Protein Conformation , Carrageenan/metabolism
8.
Nat Commun ; 15(1): 4452, 2024 May 24.
Article in English | MEDLINE | ID: mdl-38789482

ABSTRACT

Mutualistic symbioses have contributed to major transitions in the evolution of life. Here, we investigate the evolutionary history and the molecular innovations at the origin of lichens, which are a symbiosis established between fungi and green algae or cyanobacteria. We de novo sequence the genomes or transcriptomes of 12 lichen algal symbiont (LAS) and closely related non-symbiotic algae (NSA) to improve the genomic coverage of Chlorophyte algae. We then perform ancestral state reconstruction and comparative phylogenomics. We identify at least three independent gains of the ability to engage in the lichen symbiosis, one in Trebouxiophyceae and two in Ulvophyceae, confirming the convergent evolution of the lichen symbioses. A carbohydrate-active enzyme from the glycoside hydrolase 8 (GH8) family was identified as a top candidate for the molecular-mechanism underlying lichen symbiosis in Trebouxiophyceae. This GH8 was acquired in lichenizing Trebouxiophyceae by horizontal gene transfer, concomitantly with the ability to associate with lichens fungal symbionts (LFS) and is able to degrade polysaccharides found in the cell wall of LFS. These findings indicate that a combination of gene family expansion and horizontal gene transfer provided the basis for lichenization to evolve in chlorophyte algae.


Subject(s)
Chlorophyta , Lichens , Phylogeny , Symbiosis , Lichens/genetics , Lichens/microbiology , Symbiosis/genetics , Chlorophyta/genetics , Gene Transfer, Horizontal , Evolution, Molecular , Biological Evolution , Transcriptome , Glycoside Hydrolases/genetics , Glycoside Hydrolases/metabolism , Genomics
9.
Viruses ; 16(5)2024 05 13.
Article in English | MEDLINE | ID: mdl-38793652

ABSTRACT

The genus Acinetobacter comprises both environmental and clinically relevant species associated with hospital-acquired infections. Among them, Acinetobacter baumannii is a critical priority bacterial pathogen, for which the research and development of new strategies for antimicrobial treatment are urgently needed. Acinetobacter spp. produce a variety of structurally diverse capsular polysaccharides (CPSs), which surround the bacterial cells with a thick protective layer. These surface structures are primary receptors for capsule-specific bacteriophages, that is, phages carrying tailspikes with CPS-depolymerizing/modifying activities. Phage tailspike proteins (TSPs) exhibit hydrolase, lyase, or esterase activities toward the corresponding CPSs of a certain structure. In this study, the data on all lytic capsule-specific phages infecting Acinetobacter spp. with genomes deposited in the NCBI GenBank database by January 2024 were summarized. Among the 149 identified TSPs encoded in the genomes of 143 phages, the capsular specificity (K specificity) of 46 proteins has been experimentally determined or predicted previously. The specificity of 63 TSPs toward CPSs, produced by various Acinetobacter K types, was predicted in this study using a bioinformatic analysis. A comprehensive phylogenetic analysis confirmed the prediction and revealed the possibility of the genetic exchange of gene regions corresponding to the CPS-recognizing/degrading parts of different TSPs between morphologically and taxonomically distant groups of capsule-specific Acinetobacter phages.


Subject(s)
Acinetobacter , Bacterial Capsules , Bacteriophages , Genome, Viral , Phylogeny , Bacteriophages/genetics , Bacteriophages/enzymology , Bacteriophages/classification , Acinetobacter/virology , Acinetobacter/genetics , Acinetobacter/enzymology , Bacterial Capsules/metabolism , Bacterial Capsules/genetics , Viral Tail Proteins/genetics , Viral Tail Proteins/metabolism , Polysaccharides/metabolism , Polysaccharides, Bacterial/metabolism , Polysaccharides, Bacterial/genetics , Acinetobacter baumannii/virology , Acinetobacter baumannii/genetics , Acinetobacter baumannii/enzymology , Glycoside Hydrolases
10.
J Agric Food Chem ; 72(20): 11617-11628, 2024 May 22.
Article in English | MEDLINE | ID: mdl-38728580

ABSTRACT

When grapes are exposed to wildfire smoke, certain smoke-related volatile phenols (VPs) can be absorbed into the fruit, where they can be then converted into volatile-phenol (VP) glycosides through glycosylation. These volatile-phenol glycosides can be particularly problematic from a winemaking standpoint as they can be hydrolyzed, releasing volatile phenols, which can contribute to smoke-related off-flavors. Current methods for quantitating these volatile-phenol glycosides present several challenges, including the requirement of expensive capital equipment, limited accuracy due to the molecular complexity of the glycosides, and the utilization of harsh reagents. To address these challenges, we proposed an enzymatic hydrolysis method enabled by a tailored enzyme cocktail of novel glycosidases discovered through genome mining, and the generated VPs from VP glycosides can be quantitated by gas chromatography-mass spectrometry (GC-MS). The enzyme cocktails displayed high activities and a broad substrate scope when using commercially available VP glycosides as the substrates for testing. When evaluated in an industrially relevant matrix of Cabernet Sauvignon wine and grapes, this enzymatic cocktail consistently achieved a comparable efficacy of acid hydrolysis. The proposed method offers a simple, safe, and affordable option for smoke taint analysis.


Subject(s)
Fruit , Gas Chromatography-Mass Spectrometry , Glycoside Hydrolases , Glycosides , Phenols , Smoke , Vitis , Hydrolysis , Glycosides/chemistry , Glycosides/metabolism , Glycosides/analysis , Smoke/analysis , Glycoside Hydrolases/metabolism , Glycoside Hydrolases/chemistry , Glycoside Hydrolases/genetics , Phenols/chemistry , Phenols/metabolism , Vitis/chemistry , Fruit/chemistry , Fruit/enzymology , Wine/analysis , Wildfires , Biocatalysis
11.
Nat Commun ; 15(1): 4239, 2024 May 18.
Article in English | MEDLINE | ID: mdl-38762517

ABSTRACT

Ester-linked post-translational modifications, including serine and threonine ubiquitination, have gained recognition as important cellular signals. However, their detection remains a significant challenge due to the chemical lability of the ester bond. This is the case even for long-known modifications, such as ADP-ribosylation on aspartate and glutamate, whose role in PARP1 signaling has recently been questioned. Here, we present easily implementable methods for preserving ester-linked modifications. When combined with a specific and sensitive modular antibody and mass spectrometry, these approaches reveal DNA damage-induced aspartate/glutamate mono-ADP-ribosylation. This previously elusive signal represents an initial wave of PARP1 signaling, contrasting with the more enduring nature of serine mono-ADP-ribosylation. Unexpectedly, we show that the poly-ADP-ribose hydrolase PARG is capable of reversing ester-linked mono-ADP-ribosylation in cells. Our methodology enables broad investigations of various ADP-ribosylation writers and, as illustrated here for noncanonical ubiquitination, it paves the way for exploring other emerging ester-linked modifications.


Subject(s)
ADP-Ribosylation , Aspartic Acid , Esters , Glutamic Acid , Poly (ADP-Ribose) Polymerase-1 , Protein Processing, Post-Translational , Poly (ADP-Ribose) Polymerase-1/metabolism , Humans , Aspartic Acid/metabolism , Glutamic Acid/metabolism , Esters/chemistry , Esters/metabolism , Ubiquitination , DNA Damage , HEK293 Cells , Glycoside Hydrolases/metabolism , Signal Transduction
12.
Carbohydr Polym ; 338: 122201, 2024 Aug 15.
Article in English | MEDLINE | ID: mdl-38763726

ABSTRACT

Agarans represent a group of galactans extracted from red algae. Funoran and agarose are the two major types and commercially applied polysaccharides of agaran. Although the glycoside hydrolases targeting ß-glycosidic bonds of agaran have been widely investigated, those capable of degrading α-glycosidic bonds of agarose were limited, and the enzyme degrading α-linkages of funoran has not been reported till now. In this study, a GH96 family enzyme BiAF96A_Aq from a marine bacterium Aquimarina sp. AD1 was heterologously expressed in Escherichia coli. BiAF96A_Aq exhibited dual activities towards the characteristic structure of funoran and agarose, underscoring the multifunctionality of GH96 family members. Glycomics and NMR analysis revealed that BiAF96A_Aq hydrolyzed the α-1,3 glycosidic bonds between 3,6-anhydro-α-l-galactopyranose (LA) and ß-d-galactopyranose-6-sulfate (G6S) of funoran, as well as LA and ß-d-galactopyranose (G) of agarose, through an endo-acting manner. The end products of BiAF96A_Aq were majorly composed of disaccharides and tetrasaccharides. The identification of the activity of BiAF96A_Aq on funoran indicated the first discovery of the funoran hydrolase for α-1,3 linkage. Considering the novel catalytic reaction, we proposed to name this activity as "α-funoranase" and recommended the assignment of a dedicated EC number for its classification.


Subject(s)
Glycoside Hydrolases , Sepharose , Sepharose/chemistry , Glycoside Hydrolases/chemistry , Glycoside Hydrolases/metabolism , Glycoside Hydrolases/genetics , Hydrolysis , Bacterial Proteins/chemistry , Bacterial Proteins/genetics , Bacterial Proteins/metabolism , Escherichia coli/genetics , Galactans/chemistry , Galactans/metabolism
13.
BMC Genomics ; 25(1): 523, 2024 May 27.
Article in English | MEDLINE | ID: mdl-38802741

ABSTRACT

BACKGROUND: Members of the Planctomycetota phylum harbour an outstanding potential for carbohydrate degradation given the abundance and diversity of carbohydrate-active enzymes (CAZymes) encoded in their genomes. However, mainly members of the Planctomycetia class have been characterised up to now, and little is known about the degrading capacities of the other Planctomycetota. Here, we present a comprehensive comparative analysis of all available planctomycetotal genome representatives and detail encoded carbohydrolytic potential across phylogenetic groups and different habitats. RESULTS: Our in-depth characterisation of the available planctomycetotal genomic resources increases our knowledge of the carbohydrolytic capacities of Planctomycetota. We show that this single phylum encompasses a wide variety of the currently known CAZyme diversity assigned to glycoside hydrolase families and that many members encode a versatile enzymatic machinery towards complex carbohydrate degradation, including lignocellulose. We highlight members of the Isosphaerales, Pirellulales, Sedimentisphaerales and Tepidisphaerales orders as having the highest encoded hydrolytic potential of the Planctomycetota. Furthermore, members of a yet uncultivated group affiliated to the Phycisphaerales order could represent an interesting source of novel lytic polysaccharide monooxygenases to boost lignocellulose degradation. Surprisingly, many Planctomycetota from anaerobic digestion reactors encode CAZymes targeting algal polysaccharides - this opens new perspectives for algal biomass valorisation in biogas processes. CONCLUSIONS: Our study provides a new perspective on planctomycetotal carbohydrolytic potential, highlighting distinct phylogenetic groups which could provide a wealth of diverse, potentially novel CAZymes of industrial interest.


Subject(s)
Genomics , Phylogeny , Polysaccharides , Polysaccharides/metabolism , Genomics/methods , Glycoside Hydrolases/genetics , Glycoside Hydrolases/metabolism , Bacteria/genetics , Bacteria/metabolism , Bacteria/classification , Biotechnology , Genome, Bacterial , Lignin
14.
Front Cell Infect Microbiol ; 14: 1373052, 2024.
Article in English | MEDLINE | ID: mdl-38808067

ABSTRACT

Among the Acinetobacter genus, Acinetobacter pittii stands out as an important opportunistic infection causative agent commonly found in hospital settings, which poses a serious threat to human health. Recently, the high prevalence of carbapenem-resistant A. pittii isolates has created significant therapeutic challenges for clinicians. Bacteriophages and their derived enzymes are promising therapeutic alternatives or adjuncts to antibiotics effective against multidrug-resistant bacterial infections. However, studies investigating the depolymerases specific to A. pittii strains are scarce. In this study, we identified and characterized a capsule depolymerase, Dpo27, encoded by the bacteriophage IME-Ap7, which targets A. pittii. A total of 23 clinical isolates of Acinetobacter spp. were identified as A. pittii (21.91%, 23/105), and seven A. pittii strains with various K locus (KL) types (KL14, KL32, KL38, KL111, KL163, KL207, and KL220) were used as host bacteria for phage screening. The lytic phage IME-Ap7 was isolated using A. pittii 7 (KL220) as an indicator bacterium and was observed for depolymerase activity. A putative tail fiber gene encoding a polysaccharide-degrading enzyme (Dpo27) was identified and expressed. The results of the modified single-spot assay showed that both A. pittii 7 and 1492 were sensitive to Dpo27, which was assigned the KL220 type. After incubation with Dpo27, A. pittii strain was susceptible to killing by human serum; moreover, the protein displayed no hemolytic activity against erythrocytes. Furthermore, the protein exhibited sustained activity across a wide pH range (5.0-10.0) and at temperatures between 20 and 50°C. In summary, the identified capsule depolymerase Dpo27 holds promise as an alternative treatment for combating KL220-type A. pittii infections.


Subject(s)
Acinetobacter Infections , Acinetobacter , Bacteriophages , Glycoside Hydrolases , Bacteriophages/genetics , Bacteriophages/enzymology , Bacteriophages/isolation & purification , Humans , Acinetobacter/enzymology , Acinetobacter/genetics , Acinetobacter/virology , Acinetobacter/drug effects , Acinetobacter Infections/microbiology , Glycoside Hydrolases/genetics , Glycoside Hydrolases/metabolism , Bacterial Capsules/metabolism , Bacterial Capsules/genetics
15.
Vet Res ; 55(1): 59, 2024 May 07.
Article in English | MEDLINE | ID: mdl-38715095

ABSTRACT

Klebsiella pneumoniae has become one of the most intractable gram-negative pathogens infecting humans and animals due to its severe antibiotic resistance. Bacteriophages and protein products derived from them are receiving increasing amounts of attention as potential alternatives to antibiotics. In this study, we isolated and investigated the characteristics of a new lytic phage, P1011, which lyses K5 K. pneumoniae specifically among 26 serotypes. The K5-specific capsular polysaccharide-degrading depolymerase dep1011 was identified and expressed. By establishing murine infection models using bovine strain B16 (capable of supporting phage proliferation) and human strain KP181 (incapable of sustaining phage expansion), we explored the safety and efficacy of phage and dep1011 treatments against K5 K. pneumoniae. Phage P1011 resulted in a 60% survival rate of the mice challenged with K. pneumoniae supporting phage multiplication, concurrently lowering the bacterial burden in their blood, liver, and lungs. Unexpectedly, even when confronted with bacteria impervious to phage multiplication, phage therapy markedly decreased the number of viable organisms. The protective efficacy of the depolymerase was significantly better than that of the phage. The depolymerase achieved 100% survival in both treatment groups regardless of phage propagation compatibility. These findings indicated that P1011 and dep1011 might be used as potential antibacterial agents to control K5 K. pneumoniae infection.


Subject(s)
Bacteriophages , Klebsiella Infections , Klebsiella pneumoniae , Animals , Klebsiella pneumoniae/virology , Klebsiella pneumoniae/physiology , Mice , Klebsiella Infections/therapy , Klebsiella Infections/veterinary , Klebsiella Infections/microbiology , Bacteriophages/physiology , Disease Models, Animal , Phage Therapy , Female , Glycoside Hydrolases/metabolism , Cattle
16.
World J Microbiol Biotechnol ; 40(7): 201, 2024 May 13.
Article in English | MEDLINE | ID: mdl-38736020

ABSTRACT

Cariogenic biofilms have a matrix rich in exopolysaccharides (EPS), mutans and dextrans, that contribute to caries development. Although several physical and chemical treatments can be employed to remove oral biofilms, those are only partly efficient and use of biofilm-degrading enzymes represents an exciting opportunity to improve the performance of oral hygiene products. In the present study, a member of a glycosyl hydrolase family 66 from Flavobacterium johnsoniae (FjGH66) was heterologously expressed and biochemically characterized. The recombinant FjGH66 showed a hydrolytic activity against an early EPS-containing S. mutans biofilm, and, when associated with a α-(1,3)-glucosyl hydrolase (mutanase) from GH87 family, displayed outstanding performance, removing more than 80% of the plate-adhered biofilm. The mixture containing FjGH66 and Prevotella melaninogenica GH87 α-1,3-mutanase was added to a commercial mouthwash liquid to synergistically remove the biofilm. Dental floss and polyethylene disks coated with biofilm-degrading enzymes also degraded plate-adhered biofilm with a high efficiency. The results presented in this study might be valuable for future development of novel oral hygiene products.


Subject(s)
Biofilms , Dextranase , Flavobacterium , Glycoside Hydrolases , Streptococcus mutans , Biofilms/growth & development , Dextranase/metabolism , Dextranase/genetics , Flavobacterium/enzymology , Flavobacterium/genetics , Streptococcus mutans/enzymology , Streptococcus mutans/genetics , Glycoside Hydrolases/metabolism , Glycoside Hydrolases/genetics , Recombinant Proteins/metabolism , Recombinant Proteins/genetics , Bacterial Proteins/metabolism , Bacterial Proteins/genetics , Hydrolysis , Biotechnology/methods
17.
Nat Commun ; 15(1): 3543, 2024 May 10.
Article in English | MEDLINE | ID: mdl-38730244

ABSTRACT

ß-N-Acetylgalactosamine-containing glycans play essential roles in several biological processes, including cell adhesion, signal transduction, and immune responses. ß-N-Acetylgalactosaminidases hydrolyze ß-N-acetylgalactosamine linkages of various glycoconjugates. However, their biological significance remains ambiguous, primarily because only one type of enzyme, exo-ß-N-acetylgalactosaminidases that specifically act on ß-N-acetylgalactosamine residues, has been documented to date. In this study, we identify four groups distributed among all three domains of life and characterize eight ß-N-acetylgalactosaminidases and ß-N-acetylhexosaminidase through sequence-based screening of deep-sea metagenomes and subsequent searching of public protein databases. Despite low sequence similarity, the crystal structures of these enzymes demonstrate that all enzymes share a prototype structure and have diversified their substrate specificities (oligosaccharide-releasing, oligosaccharide/monosaccharide-releasing, and monosaccharide-releasing) through the accumulation of mutations and insertional amino acid sequences. The diverse ß-N-acetylgalactosaminidases reported in this study could facilitate the comprehension of their structures and functions and present evolutionary pathways for expanding their substrate specificity.


Subject(s)
Acetylgalactosamine , Glycoside Hydrolases , Metagenome , Metagenome/genetics , Substrate Specificity , Acetylgalactosamine/metabolism , Acetylgalactosamine/chemistry , Glycoside Hydrolases/metabolism , Glycoside Hydrolases/genetics , Glycoside Hydrolases/chemistry , beta-N-Acetylhexosaminidases/metabolism , beta-N-Acetylhexosaminidases/genetics , beta-N-Acetylhexosaminidases/chemistry , Phylogeny , Crystallography, X-Ray , Amino Acid Sequence , Animals
18.
Int J Biol Macromol ; 269(Pt 1): 132112, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38714278

ABSTRACT

The objective of this study was to investigate the impact of anthocyanin-rich black currant extract (BCE) on the structural properties of starch and the inhibition of glycosidases, gathering data and research evidence to support the use of low glycemic index (GI) foods. The BCE induced a change in the starch crystal structure from A-type to V-type, resulting in a drop in digestibility from 81.41 % to 65.57 %. Furthermore, the inhibitory effects of BCE on glycosidases activity (α-glucosidase: IC50 = 0.13 ± 0.05 mg/mL and α-amylase: IC50 = 2.67 ± 0.16 mg/mL) by inducing a change in spatial conformation were confirmed through in vitro analysis. The presence of a 5'-OH group facilitated the interaction between anthocyanins and receptors of amylose, α-amylase, and α-glucosidase. The glycosyl moiety enhanced the affinity for amylose yet lowered the inhibitory effect on α-amylase. The in vivo analysis demonstrated that BCE resulted in a reduction of 3.96 mM·h in blood glucose levels (Area Under Curve). The significant hypoglycemic activity, particularly the decrease in postprandial blood glucose levels, highlights the potential of utilizing BCE in functional foods for preventing diabetes.


Subject(s)
Anthocyanins , Glycoside Hydrolases , Hypoglycemic Agents , Plant Extracts , Ribes , Starch , Ribes/chemistry , Hypoglycemic Agents/pharmacology , Hypoglycemic Agents/chemistry , Anthocyanins/chemistry , Anthocyanins/pharmacology , Plant Extracts/chemistry , Plant Extracts/pharmacology , Starch/chemistry , Starch/metabolism , Glycoside Hydrolases/chemistry , Glycoside Hydrolases/metabolism , Blood Glucose , Animals , alpha-Amylases/antagonists & inhibitors , alpha-Amylases/metabolism , alpha-Amylases/chemistry , Glycoside Hydrolase Inhibitors/pharmacology , Glycoside Hydrolase Inhibitors/chemistry , alpha-Glucosidases/metabolism , alpha-Glucosidases/chemistry , Enzyme Inhibitors/pharmacology , Enzyme Inhibitors/chemistry , Male
19.
Int J Biol Macromol ; 269(Pt 1): 132036, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38697429

ABSTRACT

Alpha-glucosidase inhibitors play an important role in Diabetes Mellitus (DM) treatment since they prevent postprandial hyperglycemia. The Glycoside Hydrolase family 13 (GH13) is the major family of enzymes acting on substrates containing α-glucoside linkages, such as maltose and amylose/amylopectin chains in starch. Previously, our group identified glycoconjugate 1H-1,2,3-triazoles (GCTs) inhibiting two GH13 α-glycosidases: yeast maltase (MAL12) and porcine pancreatic amylase (PPA). Here, we combined kinetic studies and computational methods on nine GCTs to characterize their inhibitory mechanism. They all behaved as reversible inhibitors, and kinetic models encompassed noncompetitive and various mechanisms of mixed-type inhibition for both enzymes. Most potent inhibitors displayed Ki values of 30 µM for MAL12 (GPESB16) and 37 µM for PPA (GPESB15). Molecular dynamics and docking simulations indicated that on MAL12, GPESB15 and GPESB16 bind in a cavity adjacent to the active site, while on the PPA, GPESB15 was predicted to bind at the entrance of the catalytic site. Notably, despite its putative location within the active site, the binding of GPESB15 does not obstruct the substrate's access to the cleavage site. Our study contributes to paving the way for developing novel therapeutic strategies for managing DM-2 through GH13 α-glycosidases inhibition.


Subject(s)
Molecular Docking Simulation , Molecular Dynamics Simulation , Kinetics , Ligands , Swine , Glycoside Hydrolase Inhibitors/pharmacology , Glycoside Hydrolase Inhibitors/chemistry , Animals , Catalytic Domain , alpha-Glucosidases/metabolism , alpha-Glucosidases/chemistry , Glycoside Hydrolases/chemistry , Glycoside Hydrolases/metabolism , Glycoside Hydrolases/antagonists & inhibitors , Small Molecule Libraries/pharmacology , Small Molecule Libraries/chemistry , Triazoles/chemistry , Triazoles/pharmacology , Models, Molecular
20.
Int J Mol Sci ; 25(9)2024 Apr 25.
Article in English | MEDLINE | ID: mdl-38731903

ABSTRACT

To assess the impact of Enchytraeidae (potworms) on the functioning of the decomposer system, knowledge of the feeding preferences of enchytraeid species is required. Different food preferences can be explained by variations in enzymatic activities among different enchytraeid species, as there are no significant differences in the morphology or anatomy of their alimentary tracts. However, it is crucial to distinguish between the contribution of microbial enzymes and the animal's digestive capacity. Here, we computationally analyzed the endogenous digestive enzyme genes in Enchytraeus albidus. The analysis was based on RNA-Seq of COI-monohaplotype culture (PL-A strain) specimens, utilizing transcriptome profiling to determine the trophic position of the species. We also corroborated the results obtained using transcriptomics data from genetically heterogeneous freeze-tolerant strains. Our results revealed that E. albidus expresses a wide range of glycosidases, including GH9 cellulases and a specific digestive SH3b-domain-containing i-type lysozyme, previously described in the earthworm Eisenia andrei. Therefore, E. albidus combines traits of both primary decomposers (primary saprophytophages) and secondary decomposers (sapro-microphytophages/microbivores) and can be defined as an intermediate decomposer. Based on assemblies of publicly available RNA-Seq reads, we found close homologs for these cellulases and i-type lysozymes in various clitellate taxa, including Crassiclitellata and Enchytraeidae.


Subject(s)
Gene Expression Profiling , Oligochaeta , Transcriptome , Animals , Transcriptome/genetics , Gene Expression Profiling/methods , Oligochaeta/genetics , Oligochaeta/enzymology , Digestion/genetics , Glycoside Hydrolases/genetics , Glycoside Hydrolases/metabolism
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