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1.
Mar Drugs ; 22(2)2024 Jan 28.
Artigo em Inglês | MEDLINE | ID: mdl-38393040

RESUMO

In this study, an actinomycete was isolated from sea mud. The strain K1 was identified as Saccharomonospora sp. by 16S rDNA. The optimal enzyme production temperature, initial pH, time, and concentration of the inducer of this actinomycete strain K1 were 37 °C, pH 8.5, 72 h, and 2% dextran T20 of medium, respectively. Dextranase from strain K1 exhibited maximum activity at 8.5 pH and 50 °C. The molecular weight of the enzyme was <10 kDa. The metal ions Sr2+ and K+ enhanced its activity, whereas Fe3+ and Co2+ had an opposite effect. In addition, high-performance liquid chromatography showed that dextran was mainly hydrolyzed to isomaltoheptose and isomaltopentaose. Also, it could effectively remove biofilms of Streptococcus mutans. Furthermore, it could be used to prepare porous sweet potato starch. This is the first time a dextranase-producing actinomycete strain was screened from marine samples.


Assuntos
Actinobacteria , Dextranos , Dextranos/química , Dextranase/química , Concentração de Íons de Hidrogênio , Biofilmes
2.
World J Microbiol Biotechnol ; 40(7): 201, 2024 May 13.
Artigo em Inglês | MEDLINE | ID: mdl-38736020

RESUMO

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.


Assuntos
Biofilmes , Dextranase , Flavobacterium , Glicosídeo Hidrolases , Streptococcus mutans , Biofilmes/crescimento & desenvolvimento , Dextranase/metabolismo , Dextranase/genética , Flavobacterium/enzimologia , Flavobacterium/genética , Streptococcus mutans/enzimologia , Streptococcus mutans/genética , Glicosídeo Hidrolases/metabolismo , Glicosídeo Hidrolases/genética , Proteínas Recombinantes/metabolismo , Proteínas Recombinantes/genética , Proteínas de Bactérias/metabolismo , Proteínas de Bactérias/genética , Hidrólise , Biotecnologia/métodos
3.
World J Microbiol Biotechnol ; 40(4): 114, 2024 Feb 29.
Artigo em Inglês | MEDLINE | ID: mdl-38418710

RESUMO

Six lactic acid bacteria (LAB) isolated from Algerian sheep's milk, traditional butter, date palm sap and barley, which produce dextran, mannitol, oligosaccharides and vitamin B2 have been characterized. They were identified as Leuconostoc mesenteroides (A4X, Z36P, B12 and O9) and Liquorilactobacillus mali (BR201 and FR123). Their exopolysaccharides synthesized from sucrose by dextransucrase (Dsr) were characterized as dextrans with (1,6)-D-glucopyranose units in the main backbone and branched at positions O-4, O-2 and/or O-3, with D-glucopyranose units in the side chain. A4X was the best dextran producer (4.5 g/L), while the other strains synthesized 2.1-2.7 g/L. Zymograms revealed that L. mali strains have a single Dsr with a molecular weight (Mw) of ~ 145 kDa, while the Lc. mesenteroides possess one or two enzymes with 170-211 kDa Mw. As far as we know, this is the first detection of L. mali Dsr. Analysis of metabolic fluxes from sucrose revealed that the six LAB produced mannitol (~ 12 g/L). The co-addition of maltose-sucrose resulted in the production of panose (up to 37.53 mM), an oligosaccharide known for its prebiotic effect. A4X, Z36P and B12 showed dextranase hydrolytic enzymatic activity and were able to produce another trisaccharide, maltotriose, which is the first instance of a dextranase activity encoded by Lc. mesenteroides strains. Furthermore, B12 and O9 grew in the absence of riboflavin (vitamin B2) and synthesized this vitamin, in a defined medium at the level of ~ 220 µg/L. Therefore, these LAB, especially Lc. mesenteroides B12, are good candidates for the development of new fermented food biofortified with functional compounds.


Assuntos
Leuconostoc mesenteroides , Animais , Ovinos , Dextranos/metabolismo , Dextranase/química , Dextranase/metabolismo , Manitol/metabolismo , Mali , Glucosiltransferases/metabolismo , Oligossacarídeos/química , Sacarose/metabolismo , Vitaminas/metabolismo , Leuconostoc/metabolismo
4.
Mar Drugs ; 21(10)2023 Oct 07.
Artigo em Inglês | MEDLINE | ID: mdl-37888463

RESUMO

Dextranase, also known as glucanase, is a hydrolase enzyme that cleaves α-1,6 glycosidic bonds. In this study, a dextranase-producing strain was isolated from water samples of the Qingdao Sea and identified as Microbacterium sp. This strain was further evaluated for growth conditions, enzyme-producing conditions, enzymatic properties, and hydrolysates. Yeast extract and sodium chloride were found to be the most suitable carbon and nitrogen sources for strain growth, while sucrose and ammonium sodium were found to be suitable carbon and nitrogen sources for fermentation. The optimal pH was 7.5, with a culture temperature of 40 °C and a culture time of 48 h. Dextranase produced by strain XD05 showed good thermal stability at 40 °C by retaining more than 70% relative enzyme activity. The pH stability of the enzyme was better under a weak alkaline condition (pH 6.0-8.0). The addition of NH4+ increased dextranase activity, while Co2+ and Mn2+ had slight inhibitory effects on dextranase activity. In addition, high-performance liquid chromatography showed that dextran is mainly hydrolyzed to maltoheptanose, maltohexanose, maltopentose, and maltootriose. Moreover, it can form corn porous starch. Dextranase can be used in various fields, such as food, medicine, chemical industry, cosmetics, and agriculture.


Assuntos
Dextranase , Microbacterium , Dextranase/farmacologia , Concentração de Íons de Hidrogênio , Amido , Carbono , Nitrogênio
5.
World J Microbiol Biotechnol ; 39(9): 242, 2023 Jul 04.
Artigo em Inglês | MEDLINE | ID: mdl-37400664

RESUMO

Dextranase is a type of hydrolase that is responsible for catalyzing the breakdown of high-molecular-weight dextran into low-molecular-weight polysaccharides. This process is called dextranolysis. A select group of bacteria and fungi, including yeasts and likely certain complex eukaryotes, produce dextranase enzymes as extracellular enzymes that are released into the environment. These enzymes join dextran's α-1,6 glycosidic bonds to make glucose, exodextranases, or isomalto-oligosaccharides (endodextranases). Dextranase is an enzyme that has a wide variety of applications, some of which include the sugar business, the production of human plasma replacements, the treatment of dental plaque and its protection, and the creation of human plasma replacements. Because of this, the quantity of studies carried out on worldwide has steadily increased over the course of the past couple of decades. The major focus of this study is on the most current advancements in the production, administration, and properties of microbial dextranases. This will be done throughout the entirety of the review.


Assuntos
Dextranase , Dextranos , Humanos , Dextranase/química , Dextranase/metabolismo , Dextranos/metabolismo , Bactérias/metabolismo , Fungos/metabolismo , Polissacarídeos
6.
Molecules ; 27(17)2022 Aug 28.
Artigo em Inglês | MEDLINE | ID: mdl-36080300

RESUMO

Dextran, a renewable hydrophilic polysaccharide, is nontoxic, highly stable but intrinsically biodegradable. The α-1, 6 glycosidic bonds in dextran are attacked by dextranase (E.C. 3.2.1.11) which is an inducible enzyme. Dextranase finds many applications such as, in sugar industry, in the production of human plasma substitutes, and for the treatment and prevention of dental plaque. Currently, dextranases are obtained from terrestrial fungi which have longer duration for production but not very tolerant to environmental conditions and have safety concerns. Marine bacteria have been proposed as an alternative source of these enzymes and can provide prospects to overcome these issues. Indeed, marine bacterial dextranases are reportedly more effective and suitable for dental caries prevention and treatment. Here, we focused on properties of dextran, properties of dextran-hydrolyzing enzymes, particularly from marine sources and the biochemical features of these enzymes. Lastly the potential use of these marine bacterial dextranase to remove dental plaque has been discussed. The review covers dextranase-producing bacteria isolated from shrimp, fish, algae, sea slit, and sea water, as well as from macro- and micro fungi and other microorganisms. It is common knowledge that dextranase is used in the sugar industry; produced as a result of hydrolysis by dextranase and have prebiotic properties which influence the consistency and texture of food products. In medicine, dextranases are used to make blood substitutes. In addition, dextranase is used to produce low molecular weight dextran and cytotoxic dextran. Furthermore, dextranase is used to enhance antibiotic activity in endocarditis. It has been established that dextranase from marine bacteria is the most preferable for removing plaque, as it has a high enzymatic activity. This study lays the groundwork for the future design and development of different oral care products, based on enzymes derived from marine bacteria.


Assuntos
Dextranase , Animais , Bactérias/enzimologia , Cárie Dentária , Placa Dentária , Dextranase/química , Dextranase/uso terapêutico , Dextranos/química , Fungos , Humanos , Açúcares
7.
Biosci Biotechnol Biochem ; 85(7): 1737-1745, 2021 Jun 24.
Artigo em Inglês | MEDLINE | ID: mdl-33836083

RESUMO

We prepared a high-molecular-weight modified dextrin (MWS-1000) from a partial hydrolysate of waxy corn starch with a weight average molecular weight of 1 × 106 (WS-1000) using Paenibacillus alginolyticus PP710 α-glucosyltransferase. The gel permeation chromatography showed that the weight average molecular weight of MWS-1000 was almost the same as that of WS-1000. The side chain lengths of WS-1000 and MWS-1000 after isomaltodextranase digestion were also shown to be similar to each other by high-performance anion exchange chromatography with pulsed amperometric detection. Since MWS-1000 confirmed the presence of α-1,6 bonds by enzyme digestibility, methylation, and 1H-NMR analyses, it was presumed that the structure of MWS-1000 was based on the introduction of α-1,6 glucosyl residues at the nonreducing ends of the partial hydrolysate of waxy corn starch. Furthermore, the MWS-1000 solution was not retrograded even during refrigerated storage or after repeated freeze-thaw cycles.


Assuntos
Dextrinas/síntese química , Glucose/química , Glucosiltransferases/metabolismo , Dextranase/química , Dextrinas/química , Peso Molecular , Espectroscopia de Prótons por Ressonância Magnética , beta-Amilase/química
8.
Chem Biodivers ; 18(1): e2000797, 2021 Jan.
Artigo em Inglês | MEDLINE | ID: mdl-33245200

RESUMO

The microbial production of dextranase using cheap carbon sources is beneficial to solve the economic loss caused by the accumulation of dextran in syrup. A food-grade microbial cell factory was constructed by introducing the dextranase encoding gene DEX from Chaetomium gracile to the chromosome of Bacillus subtilis, and the antibiotic resistance marker gene was subsequently deleted via the Cre/loxP strategy. The dual-promoter system with a sequentially arranged constitutive P43 promoter resulted in an 85 % increase in DEX expression. Under the optimal fermentation conditions of 10 g/L maltose, 15 g/L casein, 1 g/L Na2 HPO4 , 1 g/L FeSO4 and 8 g/L NaCl, DEX activity was increased from 2.625 to 64.34 U/mL. Recombinant DEX was purified 5.98-fold with a recovery ratio of 26.67 % and specific activity of 3935.02 U/mg. Enzyme activity was optimal at 55 °C and pH 5.0 and remained 80.34 % and 71.36 % of the initial activity at 55 °C and pH 4.0 after 60 min, respectively. The enzyme possessed high activity in the presence of Co2+ , while Ag+ showed the strongest inhibition ability. The optimal substrate was 20 g/L dextran T-2000. The findings could facilitate the low-cost, large-scale production of food-grade DEX for use in the sugar industry.


Assuntos
Chaetomium/enzimologia , Dextranase/metabolismo , Proteínas Fúngicas/metabolismo , Cobalto/química , Dextranase/antagonistas & inibidores , Dextranase/genética , Sucos de Frutas e Vegetais/análise , Proteínas Fúngicas/antagonistas & inibidores , Proteínas Fúngicas/genética , Concentração de Íons de Hidrogênio , Cinética , Estabilidade Proteica , Proteínas Recombinantes/biossíntese , Proteínas Recombinantes/química , Proteínas Recombinantes/isolamento & purificação , Prata/química , Especificidade por Substrato , Temperatura
9.
J Basic Microbiol ; 61(11): 1002-1015, 2021 Nov.
Artigo em Inglês | MEDLINE | ID: mdl-34528722

RESUMO

The enzyme dextranase is widely used in the sugar and food industries, as well as in the medical field. Most land-derived dextranases are produced by fungi and have the disadvantages of long production cycles, low tolerance to environmental conditions, and low safety. The use of marine bacteria to produce dextranases may overcome these problems. In this study, a dextranase-producing bacterium was isolated from the Rizhao seacoast of Shandong, China. The bacterium, denoted as PX02, was identified as Cellulosimicrobium sp. and its growing conditions and the production and properties of its dextranase were investigated. The dextranase had a molecular weight of approximately 40 kDa, maximum activity at 40°C and pH 7.5, with a stability range of up to 45°C and pH 7.0-9.0. High-performance liquid chromatography showed that the dextranase hydrolyzed dextranT20 to isomaltotriose, maltopentaose, and isomaltooligosaccharides. Hydrolysis by dextranase produced excellent antioxidant effects, suggesting its potential use in the health food industry. Investigation of the action of the dextranase on Streptococcus mutans biofilm and scanning electron microscopy showed that it to be effective both for removing and inhibiting the formation of biofilms, suggesting its potential application in the dental industry.


Assuntos
Actinobacteria/enzimologia , Proteínas de Bactérias/metabolismo , Dextranase/metabolismo , Actinobacteria/classificação , Actinobacteria/isolamento & purificação , Actinobacteria/fisiologia , Antioxidantes/química , Antioxidantes/metabolismo , Antioxidantes/farmacologia , Proteínas de Bactérias/química , Proteínas de Bactérias/farmacologia , Biofilmes/efeitos dos fármacos , Biofilmes/crescimento & desenvolvimento , China , Dextranase/química , Dextranase/farmacologia , Concentração de Íons de Hidrogênio , Hidrólise , Metais/metabolismo , Peso Molecular , Água do Mar/microbiologia , Streptococcus mutans/efeitos dos fármacos , Especificidade por Substrato , Temperatura
10.
Biochem Biophys Res Commun ; 523(3): 651-657, 2020 03 12.
Artigo em Inglês | MEDLINE | ID: mdl-31948759

RESUMO

Non-digestible oligosaccharides have wide food industrial applications as dietary fibers and prebiotics. The aim of this study is to realize the effective biosynthesis of isomalto-oligosaccharides (IMOs) and reduce the production of by-product dextran. In the presence of acceptors improved the dextransucrase reaction shifting to oligosaccharides formation but a number of by-products dextran appeared. Maltose acceptor performed stronger inhibition behaviors in dextran synthesis than lactose and glucose acceptor due to its higher efficiencies. Acceptors had no influence on the structure of by-product dextran which mainly composed of α-(1,6)-glycosidic linkages and low α-(1,3)-glycosidic branch. In addition, the Mw and contents of IMOs and oligodextrans synthesized by dual-enzyme were hard to control. Addition of maltose acceptor in the dual-enzyme reaction, the adequate dextranase preferentially degraded dextran than the acceptor products to yield the IMOs. Results indicated that the combined use of the dual-enzyme and the maltose acceptor is a simple and effective method to promote the high-quality of functional IMOs.


Assuntos
Dextranase/metabolismo , Glucosiltransferases/metabolismo , Leuconostoc mesenteroides/enzimologia , Maltose/metabolismo , Oligossacarídeos/metabolismo , Dextranos/química , Dextranos/metabolismo , Hidrólise , Leuconostoc mesenteroides/química , Leuconostoc mesenteroides/metabolismo , Oligossacarídeos/química , Especificidade por Substrato
11.
Protein Expr Purif ; 174: 105678, 2020 10.
Artigo em Inglês | MEDLINE | ID: mdl-32446879

RESUMO

Dental plaque is a high-incidence health concern, and it is caused by Streptococcus mutans. Dextranase can specifically hydrolyze ɑ-1,6-glycosidic linkages in dextran. It is commonly used in the sugar industry, in the production of plasma substitutes, and the treatment and prevention of dental plaque. In this research work, we successfully cloned and expressed a cold-adapted dextranase from marine bacteria Catenovulum sp. DP03 in Escherichia coli. The recombinant dextranase named Cadex2870 contained a 2511 bp intact open reading frame and encoded 836 amino acids. The expression condition of recombinant strain was 0.1 mM isopropylthio-galactoside (IPTG), and the reduced temperature was 16 °C. The purified enzyme activity was 16.2 U/mg. The optimal temperature and pH of Cadex2870 were 45 °C and pH 8, and it also had catalytic activity at 0 °C. The hydrolysates of Cadex2870 hydrolysis Dextran T70 are maltose, maltotetraose, maltopentose, maltoheptaose and higher molecular weight maltooligosaccharides. Interestingly, 0.5% sodium benzoate, 2% xylitol, 0.5% sodium fluoride, 5% propanediol, 5% glycerin and 2% sorbitol can enhance stability Cadex2870, which are additives in mouthwashes. Additionally, Cadex2870 reduced the formation of dental plaque and effectively degraded formed plaque. Therefore, Cadex2870 shows great promise in commercial applications.


Assuntos
Alteromonadaceae , Organismos Aquáticos , Proteínas de Bactérias , Placa Dentária/tratamento farmacológico , Dextranase , Expressão Gênica , Streptococcus mutans/crescimento & desenvolvimento , Aclimatação , Alteromonadaceae/enzimologia , Alteromonadaceae/genética , Organismos Aquáticos/enzimologia , Organismos Aquáticos/genética , Proteínas de Bactérias/biossíntese , Proteínas de Bactérias/genética , Proteínas de Bactérias/isolamento & purificação , Proteínas de Bactérias/farmacologia , Temperatura Baixa , Placa Dentária/microbiologia , Dextranase/biossíntese , Dextranase/genética , Dextranase/isolamento & purificação , Dextranase/farmacologia , Humanos , Proteínas Recombinantes/biossíntese , Proteínas Recombinantes/genética , Proteínas Recombinantes/isolamento & purificação , Proteínas Recombinantes/farmacologia
12.
Molecules ; 25(20)2020 Oct 18.
Artigo em Inglês | MEDLINE | ID: mdl-33081074

RESUMO

Dextranase catalyzes the degradation of the substrate dextran, which is a component of plaque biofilm. This enzyme is involved in antiplaque accumulation, which can prevent dental caries. The activity of crude dextranase from Penicillium roquefortii TISTR 3511 was assessed, and the maximum value (7.61 unit/g) was obtained at 37 °C and pH 6. The Plackett-Burman design was used to obtain significant factors for enhancing fungal dextranase production, and three influencing factors were found: Dextran, yeast extract concentration and inoculum age. Subsequently, the significant factors were optimized with the Box-Behnken design, and the most suitable condition for dextranase activity at 30.24 unit/g was achieved with 80 g/L dextran, 30 g/L yeast extract and five day- old inoculum. The use of 0.85% alginate beads for encapsulation exhibited maximum dextranase activity at 25.18 unit/g beads, and this activity was stable in toothpaste for three months of testing. This study explored the potential production of fungal dextranase under optimal conditions and its encapsulation using alginate for the possibility of applying encapsulated dextranase as an additive in toothpaste products for preventing dental caries.


Assuntos
Cárie Dentária/terapia , Dextranase/química , Streptococcus mutans/efeitos dos fármacos , Cremes Dentais/química , Alginatos/química , Alginatos/farmacologia , Biofilmes/efeitos dos fármacos , Cárie Dentária/microbiologia , Dextranase/farmacologia , Dextranos/química , Dextranos/farmacologia , Humanos , Concentração de Íons de Hidrogênio , Streptococcus mutans/patogenicidade , Cremes Dentais/uso terapêutico
13.
Appl Environ Microbiol ; 85(21)2019 11 01.
Artigo em Inglês | MEDLINE | ID: mdl-31444203

RESUMO

This study reports that a high concentration of the endo-ß-1,3-glucanase ENG (200 µg ml-1) induced heat-inactivated stipe wall extension of Coprinopsis cinerea, whereas a high concentration of the extracellular ß-glucosidase BGL2 (1,000 µg ml-1) did not; however, in combination, low concentrations of ENG (25 µg ml-1) and BGL2 (260 µg ml-1) induced heat-inactivated stipe cell wall extension. In contrast to the previously reported chitinase-reconstituted stipe wall extension, ß-1,3-glucanase-reconstituted heat-inactivated stipe cell wall extension initially exhibited a fast extension rate that quickly decreased to zero after approximately 60 min; the stipe cell wall extension induced by a high concentration of ß-1,3-glucanase did not result in stipe breakage during measurement, and the inner surfaces of glucanase-reconstituted extended cell walls still remained as amorphous matrices that did not appear to have been damaged. These distinctive features of the ß-1,3-glucanase-reconstituted wall extension may be because chitin chains are cross-linked not only to the nonreducing termini of the side chains and the backbones of ß-1,6 branched ß-1,3-glucans but also to other polysaccharides. Remarkably, a low concentration of either the ß-1,3-glucanase ENG or of chitinase ChiE1 did not induce heat-inactivated stipe wall extension, but a combination of these two enzymes, each at a low concentration, showed stipe cell wall extension activity that exhibited a steady and continuous wall extension profile. Therefore, we concluded that the stipe cell wall extension is the result of the synergistic actions of glucanases and chitinases.IMPORTANCE We previously reported that the chitinase could induce stipe wall extension and was involved in stipe elongation growth of the mushroom Coprinopsis cinerea In this study, we explored that ß-1,3-glucanase also induced stipe cell wall extension. Interestingly, the extension profile and extended ultra-architecture of ß-1,3-glucanase-reconstituted stipe wall were different from those of chitinase-reconstituted stipe wall. However, ß-1,3-glucanase cooperated with chitinase to induce stipe cell wall extension. The significance of this synergy between glucanases and chitinases is that it enables a low concentration of active enzymes to induce wall extension, and the involvement of ß-1,3-glucanases is necessary for the cell wall remodeling and the addition of new ß-glucans during stipe elongation growth.


Assuntos
Agaricales/enzimologia , Parede Celular/metabolismo , Celulase/metabolismo , Quitinases/metabolismo , Dextranase/metabolismo , Parede Celular/química , Parede Celular/ultraestrutura , Quitina/metabolismo , Glucanos/metabolismo , Temperatura Alta , Concentração de Íons de Hidrogênio , beta-Glucanas/metabolismo , beta-Glucosidase/metabolismo
14.
Appl Microbiol Biotechnol ; 103(16): 6581-6592, 2019 Aug.
Artigo em Inglês | MEDLINE | ID: mdl-31273396

RESUMO

Paenibacillus sp. 598K produces cycloisomaltooligosaccharides (CIs) in culture from dextran and starch. CIs are cyclic oligosaccharides consisting of seven or more α-(1 → 6)-linked-D-glucose residues. The extracellular enzyme CI glucanotransferase (PsCITase), which is the member of glycoside hydrolase family 66, catalyzes the final stage of CI production and produces mainly cycloisomaltoheptaose. We have discovered a novel intracellular CI-degrading dextranase (PsDEX598) from Paenibacillus sp. 598K. The 69.7-kDa recombinant PsDEX598 does not digest isomaltotetraose or shorter isomaltooligosaccharides, but digests longer ones of at least up to isomaltoheptaose. It also digests oligoCIs of cycloisomaltoheptaose, cycloisomaltooctaose, and cycloisomaltononaose better than it does with megaloCIs of cycloisomaltodecaose, cycloisomaltoundecaose, and cycloisomaltododecaose, as well as an α-(1 → 6)-D-glucan of dextran 40. PsDEX598 is produced intracellularly when culture medium is supplemented with cycloisomaltoheptaose or dextran, but not with isomaltooligosaccharides (a mixture of isomaltose, isomaltotriose, and panose), starch, or glucose. The whole genomic DNA sequence of the strain 598K implies that it harbors two genes for enzymes belonging to glycoside hydrolase family 66 (PsCITase and PsDEX598), and PsDEX598 is the only dextranase in the strain. PsDEX598 does not have any carbohydrate-binding modules (CBMs) and has a low similarity (< 30%) with other family 66 dextranases, and the catalytic amino acids of this enzyme are predicted to be Asp191, Asp303, and Glu368. The strain Paenibacillus sp. 598K appears to take up CI-7, so these findings indicate that this bacterium can degrade CIs using a dextranase within the cells and so utilize them as a carbon source for growth.


Assuntos
Ciclodextrinas/metabolismo , Dextranase/metabolismo , Paenibacillus/enzimologia , Paenibacillus/metabolismo , Biotransformação , Biologia Computacional , Dextranase/química , Dextranase/genética , Genoma Bacteriano , Peso Molecular , Paenibacillus/genética , Paenibacillus/crescimento & desenvolvimento , Especificidade por Substrato
15.
Mar Drugs ; 17(8)2019 Aug 19.
Artigo em Inglês | MEDLINE | ID: mdl-31430863

RESUMO

A GH49 dextranase gene DexKQ was cloned from marine bacteria Arthrobacter oxydans KQ11. It was recombinantly expressed using an Escherichia coli system. Recombinant DexKQ dextranase of 66 kDa exhibited the highest catalytic activity at pH 9.0 and 55 °C. kcat/Km of recombinant DexKQ at the optimum condition reached 3.03 s-1 µM-1, which was six times that of commercial dextranase (0.5 s-1 µM-1). DexKQ possessed a Km value of 67.99 µM against dextran T70 substrate with 70 kDa molecular weight. Thin-layer chromatography (TLC) analysis showed that main hydrolysis end products were isomalto-oligosaccharide (IMO) including isomaltotetraose, isomaltopantose, and isomaltohexaose. When compared with glucose, IMO could significantly improve growth of Bifidobacterium longum and Lactobacillus rhamnosus and inhibit growth of Escherichia coli and Staphylococcus aureus. This is the first report of dextranase from marine bacteria concerning recombinant expression and application in isomalto-oligosaccharide preparation.


Assuntos
Organismos Aquáticos/genética , Arthrobacter/genética , Dextranase/genética , Oligossacarídeos/genética , Sequência de Aminoácidos , Catálise , Escherichia coli/genética , Hidrólise
16.
Mar Drugs ; 17(10)2019 Oct 18.
Artigo em Inglês | MEDLINE | ID: mdl-31635432

RESUMO

Dextranase, a hydrolase that specifically hydrolyzes α-1,6-glucosidic bonds, has been used in the pharmaceutical, food, and biotechnology industries. In this study, the strain of Catenovulum agarivorans MNH15 was screened from marine samples. When the temperature, initial pH, NaCl concentration, and inducer concentration were 30 °C, 8.0, 5 g/L, and 8 g/L, respectively, it yielded more dextranase. The molecular weight of the dextranase was approximately 110 kDa. The maximum enzyme activity was achieved at 40 °C and a pH of 8.0. The enzyme was stable at 30 °C and a pH of 5-9. The metal ion Sr2+ enhanced its activity, whereas NH4+, Co2+, Cu2+, and Li+ had the opposite effect. The dextranase effectively inhibited the formation of biofilm by Streptococcus mutans. Moreover, sodium fluoride, xylitol, and sodium benzoate, all used in dental care products, had no significant effect on dextranase activity. In addition, high-performance liquid chromatography (HPLC) showed that dextran was mainly hydrolyzed to glucose, maltose, and maltoheptaose. The results indicated that dextranase has high application potential in dental products such as toothpaste and mouthwash.


Assuntos
Alteromonadaceae/metabolismo , Organismos Aquáticos/metabolismo , Placa Dentária/tratamento farmacológico , Dextranase/farmacologia , Biofilmes/efeitos dos fármacos , Dextranase/química , Dextranos/química , Glucanos/química , Glucanos/farmacologia , Glucose/química , Concentração de Íons de Hidrogênio , Hidrólise , Maltose/química , Peso Molecular , Antissépticos Bucais/química , Streptococcus mutans/efeitos dos fármacos , Dente/efeitos dos fármacos , Cremes Dentais/química
17.
Bioprocess Biosyst Eng ; 42(10): 1681-1693, 2019 Oct.
Artigo em Inglês | MEDLINE | ID: mdl-31286218

RESUMO

The genes for dextransucrase and dextranase were cloned from the genomic regions of Leuconostoc mesenteroides MTCC 10508 and Streptococcus mutans MTCC 497, respectively. Heterologous expression of genes was performed in Escherichia coli. The purified enzyme fractions were entrapped in the alginate-pectin beads. A high immobilization yield of dextransucrase (~ 96%), and dextranase (~ 85%) was achieved. Alginate-pectin immobilization did not affect the optimum temperature and pH of the enzymes; rather, the thermal tolerance and storage stability of the enzymes was improved. The repetitive batch experiments suggested substantially good operational stability of the co-immobilized enzyme system. The synergistic catalytic reactions of alginate-pectin co-entrapped enzyme system were able to produce 7-10 g L-1 oligosaccharides of a high degree of polymerization (DP 3-9) from sucrose (~ 20 g L-1) containing feedstocks, e.g., table sugar and cane molasses. The alginate-pectin-based co-immobilized enzyme system is a useful catalytic tool to bioprocess the agro-industrial bio-resource for the production of prebiotic biomolecules.


Assuntos
Alginatos/química , Proteínas de Bactérias/química , Dextranase/química , Enzimas Imobilizadas/química , Glucosiltransferases/química , Leuconostoc mesenteroides/enzimologia , Oligossacarídeos/química , Pectinas/química , Streptococcus mutans/enzimologia , Proteínas de Bactérias/genética , Dextranase/genética , Estabilidade Enzimática , Enzimas Imobilizadas/genética , Escherichia coli/enzimologia , Escherichia coli/genética , Glucosiltransferases/genética , Concentração de Íons de Hidrogênio , Leuconostoc mesenteroides/genética , Proteínas Recombinantes/química , Proteínas Recombinantes/genética , Streptococcus mutans/genética
18.
Int J Mol Sci ; 20(6)2019 Mar 18.
Artigo em Inglês | MEDLINE | ID: mdl-30889875

RESUMO

A novel dextranase was purified from Penicillium cyclopium CICC-4022 by ammonium sulfate fractional precipitation and gel filtration chromatography. The effects of temperature, pH and some metal ions and chemicals on dextranase activity were investigated. Subsequently, the dextranase was used to produce dextran with specific molecular mass. Weight-average molecular mass (Mw) and the ratio of weight-average molecular mass/number-average molecular mass, or polydispersity index (Mw/Mn), of dextran were measured by multiple-angle laser light scattering (MALS) combined with gel permeation chromatography (GPC). The dextranase was purified to 16.09-fold concentration; the recovery rate was 29.17%; and the specific activity reached 350.29 U/mg. Mw of the dextranase was 66 kDa, which is similar to dextranase obtained from other Penicillium species reported previously. The highest activity was observed at 55 °C and a pH of 5.0. This dextranase was identified as an endodextranase, which specifically degraded the α-1,6 glucosidic bonds of dextran. According to metal ion dependency tests, Li⁺, Na⁺ and Fe2+ were observed to effectively improve the enzymatic activity. In particular, Li⁺ could improve the activity to 116.28%. Furthermore, the dextranase was efficient at degrading dextran and the degradation rate can be well controlled by the dextranase activity, substrate concentration and reaction time. Thus, our results demonstrate the high potential of this dextranase from Penicillium cyclopium CICC-4022 as an efficient enzyme to produce specific clinical dextrans.


Assuntos
Dextranase/isolamento & purificação , Dextranase/metabolismo , Penicillium/enzimologia , Cromatografia em Gel , Dextranos/metabolismo , Estabilidade Enzimática/efeitos dos fármacos , Concentração de Íons de Hidrogênio , Íons , Cinética , Metais/farmacologia , Padrões de Referência , Espalhamento de Radiação , Especificidade por Substrato/efeitos dos fármacos , Temperatura , Fatores de Tempo
19.
Prep Biochem Biotechnol ; 49(6): 606-615, 2019.
Artigo em Inglês | MEDLINE | ID: mdl-30929565

RESUMO

Most of the reported bioprocesses carried out by the methylotrophic yeast Pichia pastoris have been performed at laboratory scale using high power inputs and pure oxygen, such conditions are not feasible for industrial large-scale processes. In this study, volumetric mass transfer (kLa) and volumetric gassed power input (Pg/V) were evaluated within values attainable in large-scale production as scale-up criteria for recombinant dextranase production by MutS P. pastoris strain. Cultures were oxygen limited when the volumetric gassed power supply was limited to 2 kW m-3. Specific growth rate, and then dextranase production, increased as kLa and Pg/V did. Meanwhile, specific production and methanol consumption rates were constant, due to the limited methanol condition also achieved at 2 L bioprocesses. The specific dextranase production rate was two times higher than the values previously reported for a Mut+ strain. After a scale-up process, at constant kLa, the specific growth rate was kept at 30 L bioprocess, whereas dextranase production decreased, due to the effect of methanol accumulation. Results obtained at 30 L bioprocesses suggest that even under oxygen-limited conditions, methanol saturated conditions are not adequate to express dextranase with the promoter alcohol oxidase. Bioprocesses developed within feasible and scalable operational conditions are of high interest for the commercial production of recombinant proteins from Pichia pastoris.


Assuntos
Dextranase/biossíntese , Pichia/genética , Proteínas Recombinantes/biossíntese , Oxirredutases do Álcool/genética , Biomassa , Reatores Biológicos , Dextranase/genética , Fermentação , Proteínas Fúngicas/análise , Glicerol/análise , Glicerol/metabolismo , Engenharia Metabólica/métodos , Metanol/análise , Metanol/metabolismo , Regiões Promotoras Genéticas , Proteínas Recombinantes/genética , Talaromyces/enzimologia , Talaromyces/genética
20.
Pak J Pharm Sci ; 32(6): 2761-2764, 2019 Nov.
Artigo em Inglês | MEDLINE | ID: mdl-31969313

RESUMO

Hydrothermal spring isolate Bacillus megaterium KIBGE-IB31was utilized to produce dextranase. Enzyme was partially purified up to 11.8 fold after dialysis. Different metals ions were tested to explore their behavior with dextranase. It was noticed that cobalt (Co+2), copper (Cu+2), magnesium (Mg+2), manganese (Mn+2), nickle (Ni+2) and zinc (Zn+2) act as activator whilst potassium (K+), sodium (Na+), barium (Ba+), calcium (Ca+), mercury (Hg+), vanadium (V+2), aluminum (Al+3) and ferric (Fe+3) ions display inhibitory action.


Assuntos
Biocatálise/efeitos dos fármacos , Dextranos/metabolismo , Metais/metabolismo , Bacillus megaterium/metabolismo , Bário/metabolismo , Cálcio/metabolismo , Cobalto/metabolismo , Cobre/metabolismo , Dextranase/metabolismo , Hidrólise , Magnésio/metabolismo , Manganês/metabolismo , Mercúrio/metabolismo , Níquel/metabolismo , Potássio/metabolismo , Sódio/metabolismo , Zinco/metabolismo
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