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1.
J Agric Food Chem ; 72(20): 11652-11662, 2024 May 22.
Article in English | MEDLINE | ID: mdl-38738910

ABSTRACT

Pectin lyases (PNLs) can enhance juice clarity and flavor by degrading pectin in highly esterified fruits, but their inadequate acid resistance leads to rapid activity loss in juice. This study aimed to improve the acid resistance of Aspergillus niger PNL pelA through surface charge design. A modification platform was established by fusing pelA with a protein tag and expressing the fusion enzyme in Escherichia coli. Four single-point mutants were identified to increase the surface charge using computational tools. Moreover, the combined mutant M6 (S514D/S538E) exhibited 99.8% residual activity at pH 3.0. The M6 gene was then integrated into the A. niger genome using a multigene integration system to obtain the recombinant PNL AM6. Notably, AM6 improved the light transmittance of orange juice to 45.3%, which was 8.39 times higher than that of pelA. In conclusion, AM6 demonstrated the best-reported acid resistance, making it a promising candidate for industrial juice clarification.


Subject(s)
Aspergillus niger , Fruit and Vegetable Juices , Fungal Proteins , Polysaccharide-Lyases , Aspergillus niger/enzymology , Aspergillus niger/genetics , Fruit and Vegetable Juices/analysis , Polysaccharide-Lyases/genetics , Polysaccharide-Lyases/metabolism , Polysaccharide-Lyases/chemistry , Fungal Proteins/genetics , Fungal Proteins/metabolism , Fungal Proteins/chemistry , Hydrogen-Ion Concentration , Food Handling , Acids/chemistry , Acids/metabolism , Acids/pharmacology , Citrus sinensis/chemistry , Pectins/chemistry , Pectins/metabolism , Enzyme Stability
2.
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
3.
Mar Drugs ; 22(5)2024 May 18.
Article in English | MEDLINE | ID: mdl-38786621

ABSTRACT

Alginate oligosaccharides (AOS), products of alginate degradation by endotype alginate lyases, possess favorable biological activities and have broad applications. Although many have been reported, alginate lyases with homogeneous AOS products and secretory production by an engineered host are scarce. Herein, the alginate lyase AlyC7 from Vibrio sp. C42 was characterized as a trisaccharide-producing lyase exhibiting high activity and broad substrate specificity. With PelB as the signal peptide and 500 mM glycine as the additive, the extracellular production of AlyC7 in Escherichia coli reached 1122.8 U/mL after 27 h cultivation in Luria-Bertani medium. The yield of trisaccharides from sodium alginate degradation by the produced AlyC7 reached 758.6 mg/g, with a purity of 85.1%. The prepared AOS at 20 µg/mL increased the root length of lettuce, tomato, wheat, and maize by 27.5%, 25.7%, 9.7%, and 11.1%, respectively. This study establishes a robust foundation for the industrial and agricultural applications of AlyC7.


Subject(s)
Escherichia coli , Polysaccharide-Lyases , Trisaccharides , Vibrio , Polysaccharide-Lyases/metabolism , Trisaccharides/biosynthesis , Vibrio/enzymology , Substrate Specificity , Alginates , Zea mays , Oligosaccharides
4.
Int J Biol Macromol ; 269(Pt 1): 132084, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38719003

ABSTRACT

Pseudomonas aeruginosa biofilm enhances tolerance to antimicrobials and immune system defenses. Alginate is an important component of biofilm and a virulence factor of P. aeruginosa. The degradation of alginate by alginate lyases has come to serve as an adjunctive therapeutic strategy against P. aeruginosa biofilm, but poor stability of the enzyme limited this application. Thus, PspAlgL, an alginate lyase, can degrade acetylated alginate but has poor thermostability. The 3D structure of PspAlgL was predicted, and the thermostability of PspAlgL was rationally designed by GRAPE strategy, resulting in two variants with better stability. These variants, PspAlgLS270F/E311P and PspAlgLG291S/E311P, effectively degraded the alginate in biofilm. In addition, compared with PspAlgL, these variants were more efficient in inhibiting biofilm formation and degrading the established biofilm of P. aeruginosa PAO1, and they were also able to destroy the biofilm attached to catheters and to increase the sensitivity of P. aeruginosa to the antibiotic amikacin. This study provides one potential anti-biofilm agent for P. aeruginosa infection.


Subject(s)
Alginates , Anti-Bacterial Agents , Biofilms , Polysaccharide-Lyases , Pseudomonas aeruginosa , Biofilms/drug effects , Biofilms/growth & development , Pseudomonas aeruginosa/drug effects , Alginates/chemistry , Alginates/pharmacology , Polysaccharide-Lyases/chemistry , Polysaccharide-Lyases/metabolism , Anti-Bacterial Agents/pharmacology , Anti-Bacterial Agents/chemistry , Enzyme Stability , Bacterial Proteins/chemistry , Bacterial Proteins/metabolism , Temperature , Glucuronic Acid/chemistry , Glucuronic Acid/pharmacology , Models, Molecular
5.
Braz J Microbiol ; 55(2): 1189-1203, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38705960

ABSTRACT

Alginate is a major extra polymeric substance in the biofilm formed by mucoid Pseudomonas aeruginosa. It is the main proven perpetrator of lung infections in patients suffering from cystic fibrosis. Alginate lyases are very important in the treatment of cystic fibrosis. This study evaluated the role of standalone and in conjugation, effect of alginate lyase of SG4 + isolated from Paenibacillus lautus in enhancing in vitro bactericidal activity of gentamicin and amikacin on mucoid P. aeruginosa. Using Response Surface Methodology (RSM) alginate lyase SG4 + production was optimized in shake flask and there 8.49-fold enhancement in enzyme production. In fermenter, maximum growth (10.15 mg/ml) and alginate lyase (1.46 International Units) production, 1.71-fold was increased using Central Composite Design (CCD). Further, fermentation time was reduced from 48 to 20 h. To the best of our knowledge this is the first report in which CCD was used for fermenter studies to optimize alginate lyase production. The Km and Vmax of purified enzyme were found to be 2.7 mg/ml and 0.84 mol/ml-min, respectively. The half-life (t 1/2) of purified alginate lyase SG4 + at 37 °C was 180 min. Alginate lyase SG4 + in combination with gentamicin and amikacin eradiated 48.4- 52.3% and 58- 64.6%, alginate biofilm formed by P. aeruginosa strains, respectively. The study proves that alginate lyase SG4 + has excellent exopolysaccharide disintegrating ability and may be useful in development of potent therapeutic agent to treat P. aeruginosa biofilms.


Subject(s)
Anti-Bacterial Agents , Biofilms , Paenibacillus , Polysaccharide-Lyases , Pseudomonas aeruginosa , Pseudomonas aeruginosa/drug effects , Pseudomonas aeruginosa/enzymology , Pseudomonas aeruginosa/genetics , Biofilms/drug effects , Biofilms/growth & development , Polysaccharide-Lyases/metabolism , Polysaccharide-Lyases/genetics , Anti-Bacterial Agents/pharmacology , Paenibacillus/genetics , Paenibacillus/enzymology , Paenibacillus/drug effects , Gentamicins/pharmacology , Amikacin/pharmacology , Fermentation , Microbial Sensitivity Tests , Bacterial Proteins/metabolism , Bacterial Proteins/genetics , Alginates/metabolism
6.
J Agric Food Chem ; 72(20): 11773-11781, 2024 May 22.
Article in English | MEDLINE | ID: mdl-38722333

ABSTRACT

Ulvan is a complex sulfated polysaccharide extracted from Ulva, and ulvan lyases can degrade ulvan through a ß-elimination mechanism to obtain oligosaccharides. In this study, a new ulvan lyase, EPL15085, which belongs to the polysaccharide lyase (PL) 28 family from Tamlana fucoidanivorans CW2-9, was characterized in detail. The optimal pH and salinity are 9.0 and 0.4 M NaCl, respectively. The Km and Vmax of recombinant EPL15085 toward ulvan are 0.80 mg·mL-1 and 11.22 µmol·min -1 mg-1·mL-1, respectively. Unexpectedly, it is very resistant to high temperatures. After treatment at 100 °C, EPL15085 maintained its ability to degrade ulvan. Molecular dynamics simulation analysis and site-directed mutagenesis analysis indicated that the strong rigidity of the disulfide bond between Cys74-Cys102 in the N-terminus is related to its thermostability. In addition, oligosaccharides with disaccharides and tetrasaccharides were the end products of EPL15085. Based on molecular docking and site-directed mutagenesis analysis, Tyr177 and Leu134 are considered to be the crucial residues for enzyme activity. In conclusion, our study identified a new PL28 family of ulvan lyases, EPL15085, with excellent heat resistance that can expand the database of ulvan lyases and provide the possibility to make full use of ulvan.


Subject(s)
Enzyme Stability , Polysaccharide-Lyases , Polysaccharides , Polysaccharide-Lyases/genetics , Polysaccharide-Lyases/chemistry , Polysaccharide-Lyases/metabolism , Polysaccharides/chemistry , Polysaccharides/metabolism , Kinetics , Hot Temperature , Hydrogen-Ion Concentration , Mutagenesis, Site-Directed , Substrate Specificity , Molecular Docking Simulation , Bacterial Proteins/genetics , Bacterial Proteins/chemistry , Bacterial Proteins/metabolism , Ulva/chemistry , Ulva/enzymology , Ulva/genetics , Molecular Dynamics Simulation
7.
Int J Biol Macromol ; 270(Pt 1): 131968, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38704059

ABSTRACT

Enzymatic degradation of lignocellulosic biomass provides an eco-friendly approach to produce value-added macromolecules, e.g., bioactive polysaccharides. A novel acidophilic GH5 ß-1,4-endoglucanase (termed TaCel5) from Trichoderma asperellum ND-1 was efficiently expressed in Komagataella phaffii (∼1.5-fold increase, 38.42 U/mL). TaCel5 displayed both endoglucanase (486.3 U/mg) and alginate lyase (359.5 U/mg) enzyme activities. It had optimal pH 3.0 and strong pH stability (exceed 86 % activity retained over pH range 3.0-5.0). 80 % activity (both endoglucanase and alginate lyase) was retained in the presence of 15 % ethanol or 3.42 M NaCl. Analysis of action mode revealed that hydrolytic activity of TaCel5 required at least three glucose (cellotriose) residues, yielding mainly cellobiose. Glu241 and Glu352 are essential catalytic residues, while Asp106, Asp277 and Asp317 play auxiliary roles in cellulose degradation. TaCel5 displayed high hydrolysis efficiency for glucan and alginate substrates. ESI-MS analysis indicated that the enzymatic hydrolysates of alginate mainly contained disaccharides and heptasaccharides. This is the first detailed report of a bifunctional GH5 endoglucanase/alginate lyase enzyme from T. asperellum. Thus TaCel5 has strong potential in food and feed industries as a catalyst for bioconversion of cellulose- and alginate-containing waste materials into value-added products oligosaccharides, which was of great benefit both for the economy and environment.


Subject(s)
Alginates , Cellulase , Cellulose , Oligosaccharides , Alginates/metabolism , Alginates/chemistry , Cellulase/metabolism , Cellulase/chemistry , Oligosaccharides/metabolism , Oligosaccharides/chemistry , Hydrolysis , Cellulose/metabolism , Hydrogen-Ion Concentration , Hypocreales/enzymology , Substrate Specificity , Polysaccharide-Lyases/metabolism , Polysaccharide-Lyases/chemistry , Polysaccharide-Lyases/genetics
8.
Food Chem ; 453: 139695, 2024 Sep 30.
Article in English | MEDLINE | ID: mdl-38788651

ABSTRACT

Alginate lyases with high activity and good thermostability are lacking for the preparation of alginate oligosaccharides (AOS) with various biological activities. We constructed a fusion alginate lyase with both endo-and exo-activities. AlyRm6A-Zu7 was successfully constructed by connecting the highly thermostable AlyRm6A to a new exotype lyase, AlyZu7. The fusion enzyme exhibited high catalytic activity and thermostability. It transformed sodium alginate into oligosaccharides with degrees of polymerization (DP) of 2-4 while producing 4-deoxy-L-erythro-5-hexoseulose uronic acid (DEH). The maximum reducing sugar, AOS, and DP1 + DEH yields were 75 %, 45 %, and 40 %, respectively. Molecular docking confirmed the formation of a stable complex between the substrate and AlyRm6A-Zu7. Protein interactions increased the thermostability of AlyZu7. This work provides new insights into the industrial formation of AOS and monosaccharide DEH using thermally stable fusion enzymes, which has a positive effect in the fields of functional oligosaccharide production and biofuel formation.


Subject(s)
Alginates , Enzyme Stability , Molecular Docking Simulation , Oligosaccharides , Polysaccharide-Lyases , Oligosaccharides/chemistry , Oligosaccharides/metabolism , Polysaccharide-Lyases/chemistry , Polysaccharide-Lyases/genetics , Polysaccharide-Lyases/metabolism , Alginates/chemistry , Alginates/metabolism , Bacterial Proteins/chemistry , Bacterial Proteins/genetics , Bacterial Proteins/metabolism , Recombinant Fusion Proteins/chemistry , Recombinant Fusion Proteins/metabolism , Recombinant Fusion Proteins/genetics , Biocatalysis
9.
Genes (Basel) ; 15(5)2024 05 08.
Article in English | MEDLINE | ID: mdl-38790228

ABSTRACT

Alginate is derived from brown algae, which can be cultivated in large quantities. It can be broken down by alginate lyase into alginate oligosaccharides (AOSs), which exhibit a higher added value and better bioactivity than alginate. In this study, metagenomic technology was used to screen for genes that code for high-efficiency alginate lyases. The candidate alginate lyase gene alg169 was detected from Psychromonas sp. SP041, the most abundant species among alginate lyase bacteria on selected rotten kelps. The alginate lyase Alg169 was heterologously expressed in Escherichia coli BL21 (DE3), Ni-IDA-purified, and characterized. The optimum temperature and pH of Alg169 were 25 °C and 7.0, respectively. Metal ions including Mn2+, Co2+, Ca2+, Mg2+, Ni2+, and Ba2+ led to significantly increased enzyme activity. Alg169 exhibited a pronounced dependence on Na+, and upon treatment with Mn2+, its activity surged by 687.57%, resulting in the highest observed enzyme activity of 117,081 U/mg. Bioinformatic analysis predicted that Alg169 would be a double-domain lyase with a molecular weight of 65.58 kDa. It is a bifunctional enzyme with substrate specificity to polyguluronic acid (polyG) and polymannuronic acid (polyM). These results suggest that Alg169 is a promising candidate for the efficient manufacturing of AOSs from brown seaweed.


Subject(s)
Alginates , Kelp , Metagenomics , Polysaccharide-Lyases , Polysaccharide-Lyases/genetics , Polysaccharide-Lyases/metabolism , Polysaccharide-Lyases/chemistry , Metagenomics/methods , Kelp/genetics , Alginates/metabolism , Bacterial Proteins/genetics , Bacterial Proteins/metabolism , Escherichia coli/genetics , Substrate Specificity , Chloroflexi/genetics , Chloroflexi/enzymology
10.
New Phytol ; 242(6): 2682-2701, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38622771

ABSTRACT

Plant cell death is regulated in plant-pathogen interactions. While some aspartic proteases (APs) participate in regulating programmed cell death or defense responses, the defense functions of most APs remain largely unknown. Here, we report on a virulence factor, PlPeL8, which is a pectate lyase found in the hemibiotrophic pathogen Peronophythora litchii. Through in vivo and in vitro assays, we confirmed the interaction between PlPeL8 and LcAP1 from litchi, and identified LcAP1 as a positive regulator of plant immunity. PlPeL8 induced cell death associated with NbSOBIR1 and NbMEK2. The 11 conserved residues of PlPeL8 were essential for inducing cell death and enhancing plant susceptibility. Twenty-three LcAPs suppressed cell death induced by PlPeL8 in Nicotiana benthamiana depending on their interaction with PlPeL8. The N-terminus of LcAP1 was required for inhibiting PlPeL8-triggered cell death and susceptibility. Furthermore, PlPeL8 led to higher susceptibility in NbAPs-silenced N. benthamiana than the GUS-control. Our results indicate the crucial roles of LcAP1 and its homologs in enhancing plant resistance via suppression of cell death triggered by PlPeL8, and LcAP1 represents a promising target for engineering disease resistance. Our study provides new insights into the role of plant cell death in the arms race between plants and hemibiotrophic pathogens.


Subject(s)
Aspartic Acid Proteases , Cell Death , Disease Resistance , Litchi , Nicotiana , Plant Diseases , Plant Proteins , Polysaccharide-Lyases , Polysaccharide-Lyases/metabolism , Polysaccharide-Lyases/genetics , Aspartic Acid Proteases/metabolism , Aspartic Acid Proteases/genetics , Disease Resistance/genetics , Plant Diseases/microbiology , Plant Diseases/immunology , Nicotiana/genetics , Plant Proteins/metabolism , Plant Proteins/genetics , Litchi/genetics , Gene Expression Regulation, Plant , Amino Acid Sequence , Ascomycota/pathogenicity , Ascomycota/physiology , Plant Immunity/genetics , Protein Binding
11.
Dev Comp Immunol ; 156: 105177, 2024 Jul.
Article in English | MEDLINE | ID: mdl-38593892

ABSTRACT

Horizontal gene transfer (HGT) is an important evolutionary force in the formation of prokaryotic and eukaryotic genomes. In recent years, many HGT genes horizontally transferred from prokaryotes to eukaryotes have been reported, and most of them are present in arthropods. The Pacific white shrimp Litopenaeus vannamei, an important economic species of arthropod, has close relationships with bacteria, providing a platform for horizontal gene transfer (HGT). In this study, we analyzed bacteria-derived HGT based on a high-quality genome of L. vannamei via a homology search and phylogenetic analysis, and six HGT genes were identified. Among these six horizontally transferred genes, we found one gene (LOC113799989) that contains a bacterial chondroitinase AC structural domain and encodes an unknown glycosaminoglycan (GAG) lyase in L. vannamei. The real-time quantitative PCR results showed that the mRNA expression level of LOC113799989 was highest in the hepatopancreas and heart, and after stimulation by Vibrio parahaemolyticus, its mRNA expression level was rapidly up-regulated within 12 h. Furthermore, after injecting si-RNA and stimulation by V. parahaemolyticus, we found that the experimental group had a higher cumulative mortality rate in 48 h than the control group, indicating that the bacteria-derived GAG lyase can reduce the mortality of shrimp with respect to infection by V. parahaemolyticus and might be related to the resistance of shrimp to bacterial diseases. Our findings contribute to the study of the function of GAGs and provide new insights into GAG-related microbial pathogenesis and host defense mechanisms in arthropods.


Subject(s)
Gene Transfer, Horizontal , Penaeidae , Phylogeny , Vibrio parahaemolyticus , Animals , Penaeidae/immunology , Penaeidae/microbiology , Penaeidae/genetics , Vibrio parahaemolyticus/physiology , Arthropod Proteins/genetics , Arthropod Proteins/metabolism , Hepatopancreas/microbiology , Hepatopancreas/immunology , Hepatopancreas/metabolism , Bacteria , Immunity, Innate/genetics , Polysaccharide-Lyases/genetics , Polysaccharide-Lyases/metabolism , Vibrio Infections/immunology
12.
Int J Biol Macromol ; 266(Pt 2): 131283, 2024 May.
Article in English | MEDLINE | ID: mdl-38561119

ABSTRACT

Glycosaminoglycan (GAG) lyases are important tools for investigating the structure of GAGs and preparing low-molecular-weight GAGs. The PL35 family, a recently established polysaccharide lyase family, should be further investigated. In this study, we discovered a new GAG lyase, CHa1, which belongs to the PL35 family. When expressed heterologously in Escherichia coli (BL21), CHa1 exhibited high expression levels and solubility. The optimal activity was observed in Tris-HCl buffer (pH 7.0) or sodium phosphate buffer (pH 8.0) at 30 °C. The specific activities towards HA, CSA, CSC, CSD, CSE, and HS were 3.81, 13.03, 36.47, 18.46, 6.46, and 0.50 U/mg protein, respectively. CHa1 digests substrate chains randomly that acting as an endolytic lyase and shows a significant preference for GlcA-containing structures, prefers larger oligosaccharides (≥UDP8) and can generate a series of oligosaccharides composed mainly of the A unit when digesting CSA. These oligosaccharides include ΔC-A, ΔC-A-A, ΔC-A-A-A, ΔC-A-A-A-A, and ΔC-A-A-A-A-A. The residues Tyr257 and His421 play crucial roles in the catalytic process, and Ser211, Asn212, Asn213, Trp214, Gln216, Lys360, Arg460 and Gln462 may participate in the binding process of CHa1. This study on CHa1 contributes to our understanding of the PL35 family and provides valuable tools for investigating the structure of GAGs.


Subject(s)
Polysaccharide-Lyases , Polysaccharide-Lyases/chemistry , Polysaccharide-Lyases/metabolism , Polysaccharide-Lyases/genetics , Substrate Specificity , Acetylgalactosamine/chemistry , Acetylgalactosamine/metabolism , Escherichia coli/genetics , Glycosaminoglycans/metabolism , Glycosaminoglycans/chemistry , Amino Acid Sequence , Oligosaccharides/chemistry , Oligosaccharides/metabolism
13.
Int J Biol Macromol ; 270(Pt 1): 131917, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38679252

ABSTRACT

Enzymatic degradation of alginate for the preparation of alginate oligosaccharides (AOS) is currently receiving significant attention in the field. AOS has been shown to promote crop growth and improve plant resistance to abiotic stresses. In this study, two PL6 family alginate lyases, AlyRmA and AlyRmB, were expressed and characterized. These enzymes demonstrate exceptional activity and stable thermophilicity compared to other known alginate lyases. AlyRmA (8855.34 U/mg) and AlyRmB (7879.44 U/mg) exhibited excellent degradation activity towards sodium alginate even at high temperatures (70 °C). The AlyRmA and AlyRmB were characterized and utilized to efficiently produce AOS. The study investigated the promotional effect of AOS on the growth of Brassica napus L. seedlings in a saline-alkaline environment. The results of this study demonstrate the high activity and thermal stability of AlyRmA and AlyRmB, highlighting their potential in the preparation of AOS. Moreover, the application of AOS prepared by AlyRmB could enhance the resistance of Brassica napus L. to saline-alkali environments, thereby broadening the potential applications of AOS.


Subject(s)
Alginates , Brassica napus , Oligosaccharides , Polysaccharide-Lyases , Brassica napus/enzymology , Alginates/chemistry , Oligosaccharides/chemistry , Oligosaccharides/pharmacology , Polysaccharide-Lyases/metabolism , Polysaccharide-Lyases/chemistry , Alkalies/chemistry , Enzyme Stability/drug effects , Temperature , Hydrogen-Ion Concentration , Salinity , Seedlings/drug effects , Seedlings/growth & development , Seedlings/metabolism
14.
Anal Bioanal Chem ; 416(15): 3501-3508, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38658402

ABSTRACT

Alginate is a commercially important polysaccharide composed of mannuronic acid and its C5 differential isomer guluronic acid. Comprehensive research on alginate and alginate lyases requires efficient and precise analytical methods for alginate oligosaccharides. In this research, high-performance anion exchange chromatography (HPAEC) in parallel with pulsed amperometric detection (PAD) and mass spectrometry (MS) was applied to the analysis of oligosaccharides obtained by alginate lyase. By optimizing the chromatographic conditions including mobile phase concentration, flow rate, and elution gradient, the analysis of a single sample could be completed in 30 min. Seven unsaturated alginate oligosaccharides were separated and identified through their analysis time observed with PAD, including all structurally different unsaturated disaccharides and trisaccharides. The quantitative analysis of seven oligosaccharides was performed based on the quantitative capability of PAD. The method exhibited adequate linearity and precision parameters. All the calibration curves showed good linearity at least in the concentration range of 0.002 to 0.1 mg/mL. The HPAEC-PAD/MS method provides a general and efficient online method to analyze alginate oligosaccharides.


Subject(s)
Alginates , Mass Spectrometry , Oligosaccharides , Alginates/chemistry , Oligosaccharides/analysis , Oligosaccharides/chemistry , Chromatography, Ion Exchange/methods , Mass Spectrometry/methods , Chromatography, High Pressure Liquid/methods , Polysaccharide-Lyases/chemistry , Polysaccharide-Lyases/metabolism , Hexuronic Acids/chemistry , Hexuronic Acids/analysis , Limit of Detection
15.
Carbohydr Polym ; 333: 121929, 2024 Jun 01.
Article in English | MEDLINE | ID: mdl-38494211

ABSTRACT

Polymerized guluronates (polyG)-specific alginate lyase with lower polymerized mannuronates (polyM)-degrading activity, superior stability, and clear action mode is a powerful biotechnology tool for the preparation of AOSs rich in M blocks. In this study, we expressed and characterized a polyG-specific alginate lyase OUC-FaAly7 from Formosa agariphila KMM3901. OUC-FaAly7 belonging to polysaccharide lyase (PL) family 7 had highest activity (2743.7 ± 20.3 U/µmol) at 45 °C and pH 6.0. Surprisingly, its specific activity against polyG reached 8560.2 ± 76.7 U/µmol, whereas its polyM-degrading activity was nearly 0 within 10 min reaction. Suggesting that OUC-FaAly7 was a strict polyG-specific alginate lyase. Importantly, OUC-FaAly7 showed a wide range of temperature adaptations and remarkable temperature and pH stability. Its relative activity between 20 °C and 45 °C reached >90 % of the maximum activity. The minimum identifiable substrate of OUC-FaAly7 was guluronate tetrasaccharide (G4). Action process and mode showed that it was a novel alginate lyase digesting guluronate hexaose (G6), guluronate heptaose (G7), and polymerized guluronates, with the preferential generation of unsaturated guluronate pentasaccharide (UG5), although which could be further degraded into unsaturated guluronate disaccharide (UG3) and trisaccharide (UG2). This study contributes to illustrating the catalytic properties, substrate recognition, and action mode of novel polyG-specific alginate lyases.


Subject(s)
Disaccharides , Oligosaccharides , Substrate Specificity , Oligosaccharides/metabolism , Disaccharides/metabolism , Polysaccharide-Lyases/metabolism , Alginates/metabolism , Hydrogen-Ion Concentration , Bacterial Proteins/chemistry
16.
J Agric Food Chem ; 72(6): 3045-3054, 2024 Feb 14.
Article in English | MEDLINE | ID: mdl-38307881

ABSTRACT

A novel heparinase III from Pedobacter schmidteae (PsHep-III) with high activity and good stability was successfully cloned, expressed, and characterized. PsHep-III displayed the highest specific activity ever reported of 192.8 U mg-1 using heparin as the substrate. It was stable at 25 °C with a half-life of 323 h in an aqueous solution. PsHep-III was employed for the depolymerization of heparin, and the enzymatic hydrolyzed products were analyzed with gel permeation chromatography and high-performance liquid chromatography. PsHep-III can break glycosidic bonds in heparin like →4]GlcNAc/GlcNAc6S/GlcNS/GlcNS6S/GlcN/GlcN6S(1 → 4)ΔUA/ΔUA2S[1 → and efficiently digest heparin into seven disaccharides including N-acetylated, N-sulfated, and N-unsubstituted modification, with molecular masses of 503, 605, 563, 563, 665, 360, and 563 Da, respectively. These results indicated that PsHep-III with broad substrate specificity could be combined with heparinase I to overcome the low selectivity at the N-acetylated modification binding sites of heparinase I. This work will contribute to the application of PsHep-III for characterizing heparin and producing low-molecular-weight heparin effectively.


Subject(s)
Heparin , Polysaccharide-Lyases , Heparin/analysis , Heparin/chemistry , Heparin/metabolism , Heparin Lyase/genetics , Heparin Lyase/chemistry , Heparin Lyase/metabolism , Polysaccharide-Lyases/genetics , Polysaccharide-Lyases/metabolism , Binding Sites
17.
Carbohydr Res ; 536: 109045, 2024 Feb.
Article in English | MEDLINE | ID: mdl-38340525

ABSTRACT

PelQ1 from Saccharobesus litoralis is a Ca2+-dependent pectate lyase belonging to the polysaccharide lyase family 1 (PL1). Although being an endolytic enzyme, it degraded polygalacturonate into predominantly unsaturated trimer in an exolytic manner with delayed production of dimer, tetramer and pentamer. The enzyme harbours a C-terminal domain from the carbohydrate-binding module family 13 (CBM13), whose presence facilitated the production of dimer. PelQ1's homology model showed that it possessed a well-conserved catalytic cleft, with R232 acting as the general base and R203 as the general acid. Structural comparison with DcPelC, a similar trimer-generating pectate lyase from Dickeya chrysanthemi EC16, implied that both enzymes' catalytic clefts encompassed at least eight subsites, i.e. -5 to +3. The unequal distribution of the subsites between the reducing and non-reducing ends of the cleavage site might be responsible for the exolytic generation of the trimer. As all but the -1, +1 and + 2 subsites could accommodate methylated galacturonate, this subclass of PL1 pectate lyases may function to help break up methylated pectin.


Subject(s)
Dickeya chrysanthemi , Polysaccharide-Lyases , Polysaccharide-Lyases/metabolism , Dickeya chrysanthemi/metabolism
18.
Bioresour Technol ; 397: 130481, 2024 Apr.
Article in English | MEDLINE | ID: mdl-38395233

ABSTRACT

Brown algae are rich in biostimulants that not only stimulate the overall development and growth of plants but also have great beneficial effects on the whole soil-plant system. However, alginate, the major component of brown algae, is comparatively difficult to degrade. The cost of preparing alginate oligosaccharides (AOSs) is still too high to produce seaweed fertilizer. In this work, the marine bacterium Vibrio sp. B1Z05 is found to be capable of efficient alginate depolymerization and harbors an extended pathway for alginate metabolism. The B1Z05 extracellular cell-free supernatant exhibited great potential for AOS production at low cost, which, together with cellulase, can efficiently hydrolyze seaweed. The brown algal hydrolysis rates were significantly greater than those of the commercial alginate lyase product CE201, and the obtained seaweed extracts were rich in phytohormones. This work provides a low-cost but efficient strategy for the sustainable production of desirable AOSs and seaweed fertilizer.


Subject(s)
Cellulase , Phaeophyceae , Seaweed , Cellulase/metabolism , Hydrolysis , Fertilizers , Polysaccharide-Lyases/metabolism , Seaweed/metabolism , Alginates/metabolism , Oligosaccharides/metabolism
19.
Nat Commun ; 15(1): 22, 2024 01 02.
Article in English | MEDLINE | ID: mdl-38167822

ABSTRACT

Cell wall degrading enzymes, including pectate lyases (PeLs), released by plant pathogens, break down protective barriers and/or activate host immunity. The direct interactions between PeLs and plant immune-related proteins remain unclear. We identify two PeLs, PlPeL1 and PlPeL1-like, critical for full virulence of Peronophythora litchii on litchi (Litchi chinensis). These proteins enhance plant susceptibility to oomycete pathogens in a PeL enzymatic activity-dependent manner. However, LcPIP1, a plant immune regulator secreted by litchi, binds to PlPeL1/PlPeL1-like, and attenuates PlPeL1/PlPeL1-like induced plant susceptibility to Phytophthora capsici. LcPIP1 also induces cell death and various immune responses in Nicotiana benthamiana. Conserved in plants, LcPIP1 homologs bear a conserved "VDMASG" motif and exhibit immunity-inducing activity. Furthermore, SERK3 interacts with LcPIP1 and is required for LcPIP1-induced cell death. NbPIP1 participates in immune responses triggered by the PAMP protein INF1. In summary, our study reveals the dual roles of PlPeL1/PlPeL1-like in plant-pathogen interactions: enhancing pathogen virulence through PeL enzymatic activity while also being targeted by LcPIP1, thus enhancing plant immunity.


Subject(s)
Litchi , Phytophthora , Litchi/metabolism , Phytophthora/physiology , Polysaccharide-Lyases/metabolism , Proteins/metabolism , Plant Immunity , Cell Death , Plant Diseases
20.
Ann Bot ; 133(4): 547-558, 2024 Apr 23.
Article in English | MEDLINE | ID: mdl-38180460

ABSTRACT

BACKGROUND AND AIMS: The softening of ripening fruit involves partial depolymerization of cell-wall pectin by three types of reaction: enzymic hydrolysis, enzymic elimination (lyase-catalysed) and non-enzymic oxidative scission. Two known lyase activities are pectate lyase and rhamnogalacturonan lyase (RGL), potentially causing mid-chain cleavage of homogalacturonan and rhamnogalacturonan-I (RG-I) domains of pectin respectively. However, the important biological question of whether RGL exhibits action in vivo had not been tested. METHODS: We developed a method for specifically and sensitively detecting in-vivo RGL products, based on Driselase digestion of cell walls and detection of a characteristic unsaturated 'fingerprint' product (tetrasaccharide) of RGL action. KEY RESULTS: In model experiments, potato RG-I that had been partially cleaved in vitro by commercial RGL was digested by Driselase, releasing an unsaturated tetrasaccharide ('ΔUA-Rha-GalA-Rha'), taken as diagnostic of RGL action. This highly acidic fingerprint compound was separated from monosaccharides (galacturonate, galactose, rhamnose, etc.) by electrophoresis at pH 2, then separated from ΔUA-GalA (the fingerprint of pectate lyase action) by thin-layer chromatography. The 'ΔUA-Rha-GalA-Rha' was confirmed as 4-deoxy-ß-l-threo-hex-4-enopyranuronosyl-(1→2)-l-rhamnosyl-(1→4)-d-galacturonosyl-(1→2)-l-rhamnose by mass spectrometry and acid hydrolysis. Driselase digestion of cell walls from diverse ripe fruits [date, sea buckthorn, cranberry, yew (arils), mango, plum, blackberry, apple, pear and strawberry] yielded the same fingerprint compound, demonstrating that RGL had been acting in vivo in these fruits prior to harvest. The 'fingerprint' : (galacturonate + rhamnose) ratio in digests from ripe dates was approximately 1 : 72 (mol/mol), indicating that ~1.4 % of the backbone Rha→GalA bonds in endogenous RG-I had been cleaved by in-vivo RGL action. CONCLUSIONS: The results provide the first demonstration that RGL, previously known from studies of fruit gene expression, proteomic studies and in-vitro enzyme activity, exhibits enzyme action in the walls of soft fruits and may thus be proposed to contribute to fruit softening.


Subject(s)
Cell Wall , Fruit , Pectins , Polysaccharide-Lyases , Polysaccharide-Lyases/metabolism , Fruit/enzymology , Cell Wall/metabolism , Pectins/metabolism
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