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1.
Mar Drugs ; 22(6)2024 Jun 20.
Article in English | MEDLINE | ID: mdl-38921598

ABSTRACT

To promote the bioconversion of marine chitin waste into value-added products, we expressed a novel pH-stable Micromonospora aurantiaca-derived chitinase, MaChi1, in Escherichia coli and subsequently purified, characterized, and evaluated it for its chitin-converting capacity. Our results indicated that MaChi1 is of the glycoside hydrolase (GH) family 18 with a molecular weight of approximately 57 kDa, consisting of a GH18 catalytic domain and a cellulose-binding domain. We recorded its optimal activity at pH 5.0 and 55 °C. It exhibited excellent stability in a wide pH range of 3.0-10.0. Mg2+ (5 mM), and dithiothreitol (10 mM) significantly promoted MaChi1 activity. MaChi1 exhibited broad substrate specificity and hydrolyzed chitin, chitosan, cellulose, soluble starch, and N-acetyl chitooligosaccharides with polymerization degrees ranging from three to six. Moreover, MaChi1 exhibited an endo-type cleavage pattern, and it could efficiently convert colloidal chitin into N-acetyl-D-glucosamine (GlcNAc) and (GlcNAc)2 with yields of 227.2 and 505.9 mg/g chitin, respectively. Its high chitin-degrading capacity and exceptional pH tolerance makes it a promising tool with potential applications in chitin waste treatment and bioactive oligosaccharide production.


Subject(s)
Chitin , Chitinases , Micromonospora , Chitinases/metabolism , Chitinases/chemistry , Chitinases/isolation & purification , Chitinases/genetics , Chitin/analogs & derivatives , Chitin/metabolism , Chitin/chemistry , Hydrogen-Ion Concentration , Substrate Specificity , Micromonospora/enzymology , Micromonospora/genetics , Hydrolysis , Escherichia coli/genetics , Chitosan/chemistry , Enzyme Stability
2.
Chem Biodivers ; 21(6): e202400044, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38591818

ABSTRACT

Chitosan is a cationic polysaccharide derived from chitin deacetylation. This polysaccharide and its oligosaccharides have many biological activities and can be used in several fields due to their favorable characteristics, such as biodegradability, biocompatibility, and nontoxicity. This review aims to explore the antifungal potential of chitosan and chitooligosaccharides along with the conditions used for the activity and mechanisms of action they use to kill fungal cells. The sources, chemical properties, and applications of chitosan and chitooligosaccharides are discussed in this review. It also addresses the threat fungi pose to human health and crop production and how these saccharides have proven to be effective against these microorganisms. The cellular processes triggered by chitosan and chitooligosaccharides in fungal cells, and prospects for their use as potential antifungal agents are also examined.


Subject(s)
Antifungal Agents , Chitosan , Fungi , Oligosaccharides , Chitosan/chemistry , Chitosan/pharmacology , Antifungal Agents/pharmacology , Antifungal Agents/chemistry , Antifungal Agents/chemical synthesis , Oligosaccharides/chemistry , Oligosaccharides/pharmacology , Fungi/drug effects , Humans , Chitin/chemistry , Chitin/pharmacology , Chitin/analogs & derivatives , Microbial Sensitivity Tests
3.
Int J Mol Sci ; 25(12)2024 Jun 20.
Article in English | MEDLINE | ID: mdl-38928474

ABSTRACT

Chitosan is a natural polymer with numerous biomedical applications. The cellular activity of chitosan has been studied in various types of cancer, including melanoma, and indicates that these molecules can open new perspectives on antiproliferative action and anticancer therapy. This study analyzes how different chitosan conformations, such as α-chitosan (CH) or ß-oligochitosan (CO), with various degrees of deacetylation (DDA) and molar mass (MM), both in different concentrations and in CH-CO mixtures, influence the cellular processes of SK-MEL-28 melanocytes, to estimate the reactivity of these cells to the applied treatments. The in vitro evaluation was carried out, aiming at the cellular metabolism (MTT assay), cellular morphology, and chitinase-like glycoprotein YKL-40 expression. The in vitro effect of the CH-CO mixture application on melanocytes is obvious at low concentrations of α-chitosan/ß-oligochitosan (1:2 ratio), with the cell's response supporting the hypothesis that ß-oligo-chitosan amplifies the effect. This oligochitosan mixture, favored by the ß conformation and its small size, penetrates faster into the cells, being more reactive when interacting with some cellular components. Morphological effects expressed by the loss of cell adhesion and the depletion of YKL-40 synthesis are significant responses of melanocytes. ß-oligochitosan (1.5 kDa) induces an extension of cytophysiological effects and limits the cell viability compared to α-chitosan (400-900 kDa). Statistical analysis using multivariate techniques showed differences between the CH samples and CH-CO mixtures.


Subject(s)
Chitin , Chitinase-3-Like Protein 1 , Chitosan , Melanocytes , Oligosaccharides , Chitosan/chemistry , Chitosan/pharmacology , Melanocytes/drug effects , Melanocytes/metabolism , Humans , Chitin/analogs & derivatives , Chitin/pharmacology , Chitin/chemistry , Oligosaccharides/pharmacology , Chitinase-3-Like Protein 1/metabolism , Cell Survival/drug effects , Cell Proliferation/drug effects , Cell Line, Tumor , Melanoma/drug therapy , Melanoma/metabolism , Melanoma/pathology
4.
J Sci Food Agric ; 104(9): 4977-4988, 2024 Jul.
Article in English | MEDLINE | ID: mdl-38567804

ABSTRACT

BACKGROUND: As the major protein (approximately 36%) in rice bran, globulin exhibits excellent foaming and emulsifying properties, endowing its useful application as a foaming and emulsifying agent in the food industry. However, the low water solubility restricts its commercial potential in industrial applications. The present study aimed to improve this protein's processing and functional properties. RESULTS: A novel covalent complex was fabricated by a combination of the Maillard reaction and alkaline oxidation using rice bran globulin (RBG), chitooligosaccharide (C), quercetin (Que) and resveratrol (Res). The Maillard reaction improved the solubility, emulsifying and foaming properties of RBG. The resultant glycosylated protein was covalently bonded with quercetin and resveratrol to form a (RBG-C)-Que-Res complex. (RBG-C)-Que-Res exhibited higher thermal stability and antioxidant ability than the native protein, binary globulin-chitooligosaccharide or ternary globulin-chitooligosaccharide-polyphenol (only containing quercetin or resveratrol) conjugates. (RBG-C)-Que-Res exerted better cytoprotection against the generation of malondialdehyde and reactive oxygen species in HepG2 cells, which was associated with increased activities of antioxidative enzymes superoxide dismutase (SOD), catalase (CAT) and glutathione peroxidase (GSH-Px) through upregulated genes SOD1, CAT, GPX1 (i.e. gene for glutathione peroxidase-1), GCLM (i.e. gene for glutamate cysteine ligase modifier subunit), SLC1A11 (i.e. gene for solute carrier family 7, member 11) and SRXN1 (i.e. gene for sulfiredoxin-1). The anti-apoptotic effect of (RBG-C)-Que-Res was confirmed by the downregulation of caspase-3 and p53 and the upregulation of B-cell lymphoma-2 gene expression. CONCLUSION: The present study highlights the potential of (RBG-C)-Que-Res conjugates as functional ingredients in healthy foods. © 2024 Society of Chemical Industry.


Subject(s)
Antioxidants , Chitosan , Oligosaccharides , Oryza , Quercetin , Resveratrol , Humans , Quercetin/chemistry , Quercetin/analogs & derivatives , Oryza/chemistry , Oligosaccharides/chemistry , Resveratrol/chemistry , Resveratrol/pharmacology , Antioxidants/chemistry , Antioxidants/pharmacology , Chitosan/chemistry , Hep G2 Cells , Chitin/chemistry , Chitin/analogs & derivatives , Superoxide Dismutase/metabolism , Superoxide Dismutase/genetics , Plant Proteins/chemistry , Plant Proteins/metabolism , Maillard Reaction , Catalase/metabolism , Catalase/genetics , Glutathione Peroxidase/metabolism , Glutathione Peroxidase/genetics
5.
J Struct Biol ; 213(2): 107725, 2021 06.
Article in English | MEDLINE | ID: mdl-33744410

ABSTRACT

Chitin-binding proteins (CBPs) are a versatile group of proteins found in almost every organism on earth. CBPs are involved in enzymatic carbohydrate degradation and also serve as templating scaffolds in the exoskeleton of crustaceans and insects. One specific chitin-binding motif found across a wide range of arthropods' exoskeletons is the "extended Rebers and Riddiford" consensus (R&R), whose mechanism of chitin binding remains unclear. Here, we report the 3D structure and molecular level interactions of a chitin-binding domain (CBD-γ) located in a CBP from the beak of the jumbo squid Dosidicus gigas. This CBP is one of four chitin-binding proteins identified in the beak mouthpart of D. gigas and is believed to interact with chitin to form a scaffold network that is infiltrated with a second set of structural proteins during beak maturation. We used solution state NMR spectroscopy to elucidate the molecular interactions between CBD-γ and the soluble chitin derivative pentaacetyl-chitopentaose (PCP), and find that folding of CBD-γ is triggered upon its interaction with PCP. To our knowledge, this is the first experimental 3D structure of a CBP containing the R&R consensus motif, which can be used as a template to understand in more details the role of the R&R motif found in a wide range of CBP-chitin complexes. The present structure also provides molecular information for biomimetic synthesis of graded biomaterials using aqueous-based chemistry and biopolymers.


Subject(s)
Carrier Proteins/chemistry , Carrier Proteins/metabolism , Chitin/analogs & derivatives , Chitin/metabolism , Decapodiformes/chemistry , Animals , Binding Sites , Carrier Proteins/genetics , Carrier Proteins/isolation & purification , Chitin/chemistry , Circular Dichroism , Cloning, Molecular , Glucosides/chemistry , Glucosides/metabolism , Magnetic Resonance Spectroscopy/methods , Molecular Dynamics Simulation , Oligosaccharides/chemistry , Oligosaccharides/metabolism , Protein Conformation , Protein Domains , Solutions
6.
J Biol Chem ; 295(28): 9421-9432, 2020 07 10.
Article in English | MEDLINE | ID: mdl-32409576

ABSTRACT

Vibrio cholerae is a Gram-negative, facultative anaerobic bacterial species that causes serious disease and can grow on various carbon sources, including chitin polysaccharides. In saltwater, its attachment to chitin surfaces not only serves as the initial step of nutrient recruitment but is also a crucial mechanism underlying cholera epidemics. In this study, we report the first characterization of a chitooligosaccharide-specific chitoporin, VcChiP, from the cell envelope of the V. cholerae type strain O1. We modeled the structure of VcChiP, revealing a trimeric cylinder that forms single channels in phospholipid bilayers. The membrane-reconstituted VcChiP channel was highly dynamic and voltage induced. Substate openings O1', O2', and O3', between the fully open states O1, O2, and O3, were polarity selective, with nonohmic conductance profiles. Results of liposome-swelling assays suggested that VcChiP can transport monosaccharides, as well as chitooligosaccharides, but not other oligosaccharides. Of note, an outer-membrane porin (omp)-deficient strain of Escherichia coli expressing heterologous VcChiP could grow on M9 minimal medium supplemented with small chitooligosaccharides. These results support a crucial role of chitoporin in the adaptive survival of bacteria on chitinous nutrients. Our findings also suggest a promising means of vaccine development based on surface-exposed outer-membrane proteins and the design of novel anticholera agents based on chitooligosaccharide-mimicking analogs.


Subject(s)
Bacterial Outer Membrane Proteins , Microbial Viability , Porins , Vibrio cholerae , Bacterial Outer Membrane Proteins/chemistry , Bacterial Outer Membrane Proteins/genetics , Bacterial Outer Membrane Proteins/metabolism , Chitin/analogs & derivatives , Chitin/chemistry , Chitin/genetics , Chitin/metabolism , Chitosan , Escherichia coli/chemistry , Escherichia coli/genetics , Escherichia coli/metabolism , Lipid Bilayers/chemistry , Oligosaccharides , Porins/chemistry , Porins/genetics , Porins/metabolism , Vibrio cholerae/chemistry , Vibrio cholerae/genetics , Vibrio cholerae/metabolism
7.
J Exp Bot ; 72(10): 3821-3834, 2021 05 04.
Article in English | MEDLINE | ID: mdl-33675231

ABSTRACT

Lipo-chitooligosaccharides (LCOs) were originally found as symbiotic signals called Nod Factors (Nod-LCOs) controlling the nodulation of legumes by rhizobia. More recently, LCOs were also found in symbiotic fungi and, more surprisingly, very widely in the kingdom Fungi, including in saprophytic and pathogenic fungi. The LCO-V(C18:1, fucosylated/methyl fucosylated), hereafter called Fung-LCOs, are the LCO structures most commonly found in fungi. This raises the question of how legume plants such as Medicago truncatula can discriminate between Nod-LCOs and Fung-LCOs. To address this question, we performed a genome-wide association study on 173 natural accessions of M. truncatula, using a root branching phenotype and a newly developed local score approach. Both Nod-LCOs and Fung-LCOs stimulated root branching in most accessions, but the root responses to these two types of LCO molecules were not correlated. In addition, the heritability of the root response was higher for Nod-LCOs than for Fung-LCOs. We identified 123 loci for Nod-LCO and 71 for Fung-LCO responses, of which only one was common. This suggests that Nod-LCOs and Fung-LCOs both control root branching but use different molecular mechanisms. The tighter genetic constraint of the root response to Fung-LCOs possibly reflects the ancestral origin of the biological activity of these molecules.


Subject(s)
Medicago truncatula , Mycorrhizae , Chitin/analogs & derivatives , Chitosan , Genome-Wide Association Study , Lipopolysaccharides , Medicago truncatula/genetics , Oligosaccharides , Signal Transduction , Symbiosis
8.
Chemistry ; 27(7): 2321-2325, 2021 Feb 01.
Article in English | MEDLINE | ID: mdl-33290603

ABSTRACT

Chitin, a polymer composed of ß(1-4)-linked N-acetyl-glucosamine monomers, and its partially deacetylated analogue chitosan, are abundant biopolymers with outstanding mechanical as well as elastic properties. Their degradation products, chitooligosaccharides (COS), can trigger the innate immune response in humans and plants. Both material and biological properties are dependent on polymer length, acetylation, as well as the pH. Without well-defined samples, a complete molecular description of these factors is still missing. Automated glycan assembly (AGA) enabled rapid access to synthetic well-defined COS. Chitin-cellulose hybrid oligomers were prepared as important tools for a systematic structural analysis. Intramolecular interactions, identified by molecular dynamics simulations and NMR analysis, underscore the importance of the chitosan amino group for the stabilization of specific geometries.


Subject(s)
Automation , Chitin/analogs & derivatives , Acetylation , Chitin/chemical synthesis , Chitin/chemistry , Chitosan/analogs & derivatives , Chitosan/chemical synthesis , Chitosan/chemistry , Oligosaccharides
9.
Acta Pharmacol Sin ; 42(6): 942-953, 2021 Jun.
Article in English | MEDLINE | ID: mdl-33495520

ABSTRACT

Severe acute pancreatitis (SAP) is a severe acute abdominal disease. Recent evidence shows that intestinal homeostasis is essential for the management of acute pancreatitis. Chitosan oligosaccharides (COS) possess antioxidant activity that are effective in treating various inflammatory diseases. In this study we explored the potential therapeutic effects of COS on SAP and underlying mechanisms. Mice were treated with COS (200 mg·kg-1·d-1, po) for 4 weeks, then SAP was induced in the mice by intraperitoneal injection of caerulein. We found that COS administration significantly alleviated the severity of SAP: the serum amylase and lipase levels as well as pancreatic myeloperoxidase activity were significantly reduced. COS administration suppressed the production of proinflammatory cytokines (TNF-α, IL-1ß, CXCL2 and MCP1) in the pancreas and ileums. Moreover, COS administration decreased pancreatic inflammatory infiltration and oxidative stress in SAP mice, accompanied by activated Nrf2/HO-1 and inhibited TLR4/NF-κB and MAPK pathways. We further demonstrated that COS administration restored SAP-associated ileal damage and barrier dysfunction. In addition, gut microbiome analyses revealed that the beneficial effect of COS administration was associated with its ability to improve the pancreatitis-associated gut microbiota dysbiosis; in particular, probiotics Akkermansia were markedly increased, while pathogenic bacteria Escherichia-Shigella and Enterococcus were almost eliminated. The study demonstrates that COS administration remarkably attenuates SAP by reducing oxidative stress and restoring intestinal homeostasis, suggesting that COS might be a promising prebiotic agent for the treatment of SAP.


Subject(s)
Chitosan/therapeutic use , Homeostasis/drug effects , Intestines/drug effects , Oligosaccharides/therapeutic use , Oxidative Stress/drug effects , Pancreatitis/drug therapy , Acute Disease , Animals , Apoptosis/drug effects , Chitin/analogs & derivatives , Chitin/therapeutic use , Gastrointestinal Microbiome/drug effects , Male , Mice, Inbred C57BL , Pancreas/drug effects , Pancreas/pathology , Pancreatitis/pathology , Signal Transduction/drug effects
10.
Mar Drugs ; 19(3)2021 Feb 24.
Article in English | MEDLINE | ID: mdl-33668290

ABSTRACT

It is widely recognized that chitin and chitosan are potential sources of bioactive materials and that their oligosaccharides reveal various biological activities (including antimicrobial) that are correlated with their structures and physicochemical properties. This study uses the molecular docking approach to assess the interactions of small chito-oligosaccharides (MW< 1500 Da) with plasma proteins in order to obtain information regarding their fate of distribution in the human organism. There are favorable interactions of small chito-oligomers with plasma proteins, the interactions with human serum albumin being stronger than those with α-1-acid glycoprotein. The interaction energies increase with increasing the molecular weight, decrease with increasing deacetylation degrees and are reliant on the deacetylation pattern. This study could inform the application of chito-oligosaccharides with varying molecular weights, degrees, and patterns of deacetylation in human health.


Subject(s)
Blood Proteins/metabolism , Chitin/analogs & derivatives , Molecular Docking Simulation , Acetylation , Chitin/chemistry , Chitin/metabolism , Chitosan , Humans , Molecular Weight , Oligosaccharides , Serum Albumin, Human/metabolism
11.
Mar Drugs ; 19(2)2021 Feb 12.
Article in English | MEDLINE | ID: mdl-33673266

ABSTRACT

The global rise of infectious disease outbreaks and the progression of microbial resistance reinforce the importance of researching new biomolecules. Obtained from the hydrolysis of chitosan, chitooligosaccharides (COSs) have demonstrated several biological properties, including antimicrobial, and greater advantage over chitosan due to their higher solubility and lower viscosity. Despite the evidence of the biotechnological potential of COSs, their effects on trypanosomatids are still scarce. The objectives of this study were the enzymatic production, characterization, and in vitro evaluation of the cytotoxic, antibacterial, antifungal, and antiparasitic effects of COSs. NMR and mass spectrometry analyses indicated the presence of a mixture with 81% deacetylated COS and acetylated hexamers. COSs demonstrated no evidence of cytotoxicity upon 2 mg/mL. In addition, COSs showed interesting activity against bacteria and yeasts and a time-dependent parasitic inhibition. Scanning electron microscopy images indicated a parasite aggregation ability of COSs. Thus, the broad biological effect of COSs makes them a promising molecule for the biomedical industry.


Subject(s)
Anti-Infective Agents/pharmacology , Antiparasitic Agents/pharmacology , Chitin/analogs & derivatives , Anti-Infective Agents/chemistry , Antineoplastic Agents/chemistry , Antineoplastic Agents/pharmacology , Antiparasitic Agents/chemistry , Chitin/chemistry , Chitin/pharmacokinetics , Chitosan , Microscopy, Electron, Scanning , Oligosaccharides , Time Factors
12.
Int J Mol Sci ; 22(13)2021 Jun 26.
Article in English | MEDLINE | ID: mdl-34206764

ABSTRACT

Plant-parasitic nematodes cause severe economic losses annually which has been a persistent problem worldwide. As current nematicides are highly toxic, prone to drug resistance, and have poor stability, there is an urgent need to develop safe, efficient, and green strategies. Natural active polysaccharides such as chitin and chitosan with good biocompatibility and biodegradability and inducing plant disease resistance have attracted much attention, but their application is limited due to their poor solubility. Here, we prepared 6-oxychitin with good water solubility by introducing carboxylic acid groups based on retaining the original skeleton of chitin and evaluated its potential for nematode control. The results showed that 6-oxychitin is a better promoter of the nematicidal potential of Purpureocillium lilacinum than other water-soluble chitin derivatives. After treatment, the movement of J2s and egg hatching were obviously inhibited. Further plant experiments found that it can destroy the accumulation and invasion of nematodes, and has a growth-promoting effect. Therefore, 6-oxychitin has great application potential in the nematode control area.


Subject(s)
Antinematodal Agents/pharmacology , Chitin/analogs & derivatives , Hypocreales/chemistry , Tylenchoidea/drug effects , Animals , Antinematodal Agents/chemistry , Cucumis sativus/parasitology , Locomotion , Reproduction , Tylenchoidea/pathogenicity , Tylenchoidea/physiology
13.
Int J Mol Sci ; 22(15)2021 Jul 27.
Article in English | MEDLINE | ID: mdl-34360756

ABSTRACT

This study focuses on a commercial plant elicitor based on chitooligosaccharides (BIG®), which aids in rice plant growth and disease resistance to bacterial leaf blight (BLB). When the pathogen (Xoo) vigorously attacks rice that has suffered yield losses, it can cause damage in up to 20% of the plant. Furthermore, Xoo is a seed-borne pathogen that can survive in rice seeds for an extended period. In this study, when rice seeds were soaked and sprayed with BIG®, there was a significant increase in shoot and root length, as well as plant biomass. Furthermore, BIG®-treated rice plants showed a significant reduction in BLB severity of more than 33%. Synchrotron radiation-based Fourier transform infrared (SR-FTIR) analysis was used to characterize BIG®'s mechanism in the chemical structure of rice leaves. The SR-FTIR results at 1650, 1735, and 1114 cm-1 indicated changes in biochemical components such as pectins, lignins, proteins, and celluloses. These findings demonstrated that commercial BIG® not only increased rice growth but also induced resistance to BLB. The drug's target enzyme, Xoo 1075 from Xanthomonas oryzae (PDB ID: 5CY8), was analyzed for its interactions with polymer ingredients, specifically chitooligosaccharides, to gain molecular insights down to the atomic level. The results are intriguing, with a strong binding of the chitooligosaccharide polymer with the drug target, revealing 10 hydrogen bonds between the protein and polymer. Overall, the computational analysis supported the experimentally demonstrated strong binding of chitooligosaccharides to the drug target.


Subject(s)
Chitin/analogs & derivatives , Disease Resistance/drug effects , Oryza/microbiology , Plant Diseases/microbiology , Xanthomonas/growth & development , Chitin/chemistry , Chitin/pharmacology , Chitosan , Oligosaccharides
14.
Int J Mol Sci ; 22(2)2021 Jan 12.
Article in English | MEDLINE | ID: mdl-33445801

ABSTRACT

This study focused on the interactions of pea (Pisum sativum L.) plants with phytopathogenic and beneficial fungi. Here, we examined whether the lysin-motif (LysM) receptor-like kinase PsLYK9 is directly involved in the perception of long- and short-chain chitooligosaccharides (COs) released after hydrolysis of the cell walls of phytopathogenic fungi and identified in arbuscular mycorrhizal (AM) fungal exudates. The identification and analysis of pea mutants impaired in the lyk9 gene confirmed the involvement of PsLYK9 in symbiosis development with AM fungi. Additionally, PsLYK9 regulated the immune response and resistance to phytopathogenic fungi, suggesting its bifunctional role. The existence of co-receptors may provide explanations for the potential dual role of PsLYK9 in the regulation of interactions with pathogenic and AM fungi. Co-immunoprecipitation assay revealed that PsLYK9 and two proposed co-receptors, PsLYR4 and PsLYR3, can form complexes. Analysis of binding capacity showed that PsLYK9 and PsLYR4, synthesized as extracellular domains in insect cells, were able to bind the deacetylated (DA) oligomers CO5-DA-CO8-DA. Our results suggest that the receptor complex consisting of PsLYK9 and PsLYR4 can trigger a signal pathway that stimulates the immune response in peas. However, PsLYR3 seems not to be involved in the perception of CO4-5, as a possible co-receptor of PsLYK9.


Subject(s)
Chitin/analogs & derivatives , Pisum sativum/metabolism , Plant Proteins/metabolism , Animals , Cell Line , Cell Wall/metabolism , Cell Wall/microbiology , Chitin/metabolism , Chitosan , Hydrolysis , Insecta/metabolism , Mycorrhizae/metabolism , Oligosaccharides , Pisum sativum/microbiology , Plant Immunity/physiology , Plant Roots/metabolism , Plant Roots/microbiology , Sf9 Cells , Signal Transduction/physiology , Symbiosis/physiology
15.
Molecules ; 26(9)2021 Apr 28.
Article in English | MEDLINE | ID: mdl-33924816

ABSTRACT

In this paper, chitooligosaccharides in different salt forms, such as chitooligosaccharide lactate, citrate, adipate, etc., were prepared by the microwave method. They were characterized by SEM, FTIR, NMR, etc., and the nitric oxide (NO) expression was determined in RAW 264.7 cells. The results showed that pure chitooligosaccharide was an irregular spherical shape with rough surface, and its different salt type products are amorphous solid with different honeycomb sizes. In addition to the characteristic absorption peaks of chitooligosaccharides, in FTIR, the characteristic absorption of carboxyl group, methylene group, and aromatic group in corresponding acid appeared. The characteristic absorption peaks of carbon in carboxyl group, hydrogen and carbon in methyl, methylene group, and aromatic group in corresponding acid also appeared in NMR. Therefore, the sugar ring structure and linking mode of chitooligosaccharides did not change after salt formation of chitooligosaccharides. Different salt chitooligosaccharides are completely different in promoting NO secretion by macrophages, and pure chitooligosaccharides are the best.


Subject(s)
Chitin/analogs & derivatives , Macrophages/drug effects , Macrophages/metabolism , Nitric Oxide/biosynthesis , Salts/chemistry , Animals , Cell Survival , Chitin/chemistry , Chitin/pharmacology , Chitin/ultrastructure , Chitosan , Magnetic Resonance Imaging , Mice , Molecular Structure , Oligosaccharides , RAW 264.7 Cells , Spectroscopy, Fourier Transform Infrared , Thermogravimetry , X-Ray Diffraction
16.
J Sci Food Agric ; 101(3): 1065-1075, 2021 Feb.
Article in English | MEDLINE | ID: mdl-32767558

ABSTRACT

BACKGROUND: The functionality of pea proteins is relatively weak relative to that of soybean proteins, which limits the application of pea proteins in food and nutritional applications. Glycosylation is a promising approach to influence the protein structure and in turn change the functional properties of pea proteins. RESULTS: In this study, the effect of transglutaminase-induced oligochitosan glycosylation on the structural and functional properties of pea seed legumin was studied. Different oligochitosan-modified legumin complexes (OLCs) were prepared by applying different molar ratios of legumin to oligochitosan (1:1 to 1:4) induced by transglutaminase (10 U g-1 protein). Results of sodium dodecyl sulfate-polyacrylamide gel electrophoresis (SDS-PAGE), glucosamine, and free amino analysis showed that the legumin could be covalently bonded with the oligochitosan and were influenced by the applying dose of the oligochitosan. Infrared spectroscopy, fluorescence, and scanning electron microscopy analysis indicated that the structure of the different OLC samples could be changed to different extents. Moreover, although the emulsifying activity decreased, the emulsification stability, thermal stability, and in vitro digestive stability of the OLCs were remarkably improved relative to that of the untreated legumin. CONCLUSION: Oligochitosan glycosylation could change the structure of the legumin and consequently improve its emulsification stability, thermal stability, and in vitro digestive stability. This study will facilitate the legumin functionalization by the glycosylation approach to fabricate protein-oligochitosan complex for potential food and nutritional applications. © 2020 Society of Chemical Industry.


Subject(s)
Chitin/analogs & derivatives , Pea Proteins/chemistry , Pisum sativum/chemistry , Amino Acid Sequence , Chitin/chemistry , Chitosan , Electrophoresis, Polyacrylamide Gel , Glycosylation , Hot Temperature , Oligosaccharides , Protein Stability , Seeds/chemistry
17.
World J Microbiol Biotechnol ; 37(5): 83, 2021 Apr 15.
Article in English | MEDLINE | ID: mdl-33855634

ABSTRACT

A novel chitosanase gene, designated as PbCsn8, was cloned from Paenibacillus barengoltzii. It shared the highest identity of 73% with the glycoside hydrolase (GH) family 8 chitosanase from Bacillus thuringiensis JAM-GG01. The gene was heterologously expressed in Bacillus subtilis as an extracellular protein, and the highest chitosanase yield of 1, 108 U/mL was obtained by high-cell density fermentation in a 5-L fermentor. The recombinant chitosanase (PbCsn8) was purified to homogeneity and biochemically characterized. PbCsn8 was most active at pH 5.5 and 70 °C, respectively. It was stable in a wide pH range of 5.0-11.0 and up to 55 °C. PbCsn8 was a bifunctional enzyme, exhibiting both chitosanase and glucanase activities, with the highest specificity towards chitosan (360 U/mg), followed by barley ß-glucan (72 U/mg) and lichenan (13 U/mg). It hydrolyzed chitosan to release mainly chitooligosaccharides (COSs) with degree of polymerization (DP) 2-3, while hydrolyzed barley ß-glucan to yield mainly glucooligosaccharides with DP > 5. PbCsn8 was further applied in COS production, and the highest COS yield of 79.3% (w/w) was obtained. This is the first report on a GH family 8 chitosanase from P. barengoltzii. The high yield and remarkable hydrolysis properties may make PbCsn8 a good candidate in industrial application.


Subject(s)
Chitin/analogs & derivatives , Glycoside Hydrolases/metabolism , Paenibacillus/enzymology , Paenibacillus/genetics , Paenibacillus/metabolism , Amino Acid Sequence , Bacterial Proteins/genetics , Bacterial Proteins/metabolism , Chitin/biosynthesis , Chitosan/metabolism , Cloning, Molecular , Glucans/metabolism , Glycoside Hydrolases/genetics , Hydrolysis , Industrial Microbiology , Oligosaccharides , Recombinant Proteins/genetics , Recombinant Proteins/metabolism , Substrate Specificity , beta-Glucans/metabolism
18.
Biochemistry ; 59(48): 4581-4590, 2020 12 08.
Article in English | MEDLINE | ID: mdl-33213137

ABSTRACT

Chito-oligosaccharides (CHOS) are homo- or hetero-oligomers of N-acetylglucosamine (GlcNAc, A) and d-glucosamine (GlcN, D). Production of well-defined CHOS-mixtures, or even pure CHOS, with specific lengths and sugar compositions, is of great interest since these oligosaccharides have interesting bioactivities. While direct chemical synthesis of CHOS is not straightforward, chemo-enzymatic approaches have shown some promise. We have used engineered glycoside hydrolases to catalyze oligomerization of activated DA building blocks through transglycosylation reactions. The building blocks were generated from readily available (GlcNAc)2-para-nitrophenol through deacetylation of the nonreducing end sugar with a recombinantly expressed deacetylase from Aspergillus niger (AnCDA9). This approach, using a previously described hyper-transglycosylating variant of ChiA from Serratia marcescens (SmChiA) and a newly generated transglycosylating variant of Chitinase D from Serratia proteamaculans (SpChiD), led to production of CHOS containing up to ten alternating D and A units [(DA)2, (DA)3, (DA)4, and (DA)5]. The most abundant compounds were purified and characterized. Finally, we demonstrate that (DA)3 generated in this study may serve as a specific inhibitor of the human chitotriosidase. Inhibition of this enzyme has been suggested as a therapeutic strategy against systemic sclerosis.


Subject(s)
Chitin/analogs & derivatives , Oligosaccharides/biosynthesis , Oligosaccharides/chemical synthesis , Acetylglucosamine/chemistry , Aspergillus niger/enzymology , Bacterial Proteins/genetics , Bacterial Proteins/metabolism , Carbohydrate Sequence , Chitin/biosynthesis , Chitin/chemical synthesis , Chitinases/genetics , Chitinases/metabolism , Crystallography, X-Ray , Glucosamine/chemistry , Hexosaminidases/metabolism , Humans , Models, Molecular , Molecular Structure , Mutagenesis, Site-Directed , Mutant Proteins/genetics , Mutant Proteins/metabolism , Oligosaccharides/chemistry , Serratia/enzymology , Serratia/genetics , Serratia marcescens/enzymology , Serratia marcescens/genetics , Spectrometry, Mass, Matrix-Assisted Laser Desorption-Ionization
19.
J Biol Chem ; 294(50): 19066-19080, 2019 12 13.
Article in English | MEDLINE | ID: mdl-31690626

ABSTRACT

Bacillus subtilis PdaC (BsPdaC) is a membrane-bound, multidomain peptidoglycan N-deacetylase acting on N-acetylmuramic acid (MurNAc) residues and conferring lysozyme resistance to modified cell wall peptidoglycans. BsPdaC contains a C-terminal family 4 carbohydrate esterase (CE4) catalytic domain, but unlike other MurNAc deacetylases, BsPdaC also has GlcNAc deacetylase activity on chitooligosaccharides (COSs), characteristic of chitin deacetylases. To uncover the molecular basis of this dual activity, here we determined the X-ray structure of the BsPdaC CE4 domain at 1.54 Å resolution and analyzed its mode of action on COS substrates. We found that the minimal substrate is GlcNAc3 and that activity increases with the degree of glycan polymerization. COS deacetylation kinetics revealed that BsPdaC operates by a multiple-chain mechanism starting at the internal GlcNAc units and leading to deacetylation of all but the reducing-end GlcNAc residues. Interestingly, BsPdaC shares higher sequence similarity with the peptidoglycan GlcNAc deacetylase SpPgdaA than with other MurNAc deacetylases. Therefore, we used ligand-docking simulations to analyze the dual GlcNAc- and MurNAc-binding specificities of BsPdaC and compared them with those of SpPgdA and BsPdaA, representing peptidoglycan deacetylases highly specific for GlcNAc or MurNAc residues, respectively. BsPdaC retains the conserved Asp-His-His metal-binding triad characteristic of CE4 enzymes acting on GlcNAc residues, differing from MurNAc deacetylases that lack the metal-coordinating Asp residue. BsPdaC contains short loops similar to those in SpPgdA, resulting in an open binding cleft that can accommodate polymeric substrates. We propose that PdaC is the first member of a new subclass of peptidoglycan MurNAc deacetylases.


Subject(s)
Acetylglucosamine/metabolism , Amidohydrolases/metabolism , Bacillus subtilis/enzymology , Chitin/metabolism , Muramic Acids/metabolism , Acetylglucosamine/chemistry , Amidohydrolases/chemistry , Chitin/analogs & derivatives , Chitin/chemistry , Crystallography, X-Ray , Models, Molecular , Muramic Acids/chemistry , Phylogeny , Structure-Activity Relationship , Substrate Specificity
20.
J Cell Physiol ; 235(3): 3022-3032, 2020 03.
Article in English | MEDLINE | ID: mdl-31541460

ABSTRACT

Considering the high rate of osteoclast-related diseases worldwide, research targeting osteoclast formation/function is crucial. In vitro, we demonstrated that chitooligosaccharide (CS) dramatically inhibited osteoclastogenesis as well as osteoclast function dose-dependently. CS suppressed osteoclast-specific genes expression during osteoclastogenesis. Furthermore, we found that CS attenuated receptor activator of nuclear factor kappa B ligand (RANKL)-mediated mitogen-activated protein kinase (MAPK) pathway involving p38, erk1/2, and jnk, leading to the reduced expression of c-fos and nuclear factor of activated T cells c1 (NFATc1) during osteoclast differentiation. In vivo, we found CS protected rats from periodontitis-induced alveolar bone loss by micro-computerized tomography and histological analysis. Overall, CS inhibited RANKL-induced osteoclastogenesis and ligature-induced rat periodontitis model, probably by suppressing the MAPK/c-fos/NFATc1 signaling pathway. Therefore, CS may be a safe and promising treatment for osteoclast-related diseases.


Subject(s)
Chitin/analogs & derivatives , Osteogenesis/drug effects , RANK Ligand/drug effects , Signal Transduction/drug effects , Animals , Bone Marrow Cells/drug effects , Bone Marrow Cells/metabolism , Cell Differentiation/drug effects , Chitin/pharmacology , Chitosan , Mitogen-Activated Protein Kinases/metabolism , Mitogens/pharmacology , NFATC Transcription Factors/metabolism , Oligosaccharides , Osteoclasts/metabolism , Proto-Oncogene Proteins c-fos/metabolism , RANK Ligand/metabolism , Rats
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