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1.
Microb Cell Fact ; 23(1): 150, 2024 May 24.
Article in English | MEDLINE | ID: mdl-38790055

ABSTRACT

BACKGROUND: Azo dyes represent a common textile dye preferred for its high stability on fabrics in various harsh conditions. Although these dyes pose high-risk levels for all biological forms, fungal laccase is known as a green catalyst for its ability to oxidize numerous dyes. METHODS: Trichoderma isolates were identified and tested for laccase production. Laccase production was optimized using Plackett-Burman Design. Laccase molecular weight and the kinetic properties of the enzyme, including Km and Vmax, pH, temperature, and ionic strength, were detected. Azo dye removal efficiency by laccase enzyme was detected for Congo red, methylene blue, and methyl orange. RESULTS: Eight out of nine Trichoderma isolates were laccase producers. Laccase production efficiency was optimized by the superior strain T. harzianum PP389612, increasing production from 1.6 to 2.89 U/ml. In SDS-PAGE, purified laccases appear as a single protein band with a molecular weight of 41.00 kDa. Km and Vmax values were 146.12 µmol guaiacol and 3.82 µmol guaiacol/min. Its activity was stable in the pH range of 5-7, with an optimum temperature range of 40 to 50 °C, optimum ionic strength of 50 mM NaCl, and thermostability properties up to 90 °C. The decolorization efficiency of laccase was increased by increasing the time and reached its maximum after 72 h. The highest efficiency was achieved in Congo red decolorization, which reached 99% after 72 h, followed by methylene blue at 72%, while methyl orange decolorization efficiency was 68.5%. CONCLUSION: Trichoderma laccase can be used as an effective natural bio-agent for dye removal because it is stable and removes colors very well.


Subject(s)
Azo Compounds , Coloring Agents , Laccase , Temperature , Laccase/metabolism , Laccase/chemistry , Laccase/isolation & purification , Azo Compounds/metabolism , Coloring Agents/metabolism , Coloring Agents/chemistry , Kinetics , Hydrogen-Ion Concentration , Congo Red/metabolism , Osmolar Concentration , Hypocreales/enzymology , Hypocreales/metabolism , Biodegradation, Environmental , Fungal Proteins/metabolism , Fungal Proteins/chemistry , Fungal Proteins/isolation & purification
2.
Carbohydr Polym ; 338: 122168, 2024 Aug 15.
Article in English | MEDLINE | ID: mdl-38763718

ABSTRACT

Enzymatic functionalization of oligosaccharides is a useful and environmentally friendly way to expand their structural chemical space and access to a wider range of applications in the health, food, feed, cosmetics and other sectors. In this work, we first tested the laccase/TEMPO system to generate oxidized forms of cellobiose and methyl ß-D-cellobiose, and obtained high yields of novel anionic disaccharides (>60 %) at pH 6.0. Laccase/TEMPO system was then applied to a mix of cellooligosaccharides and to pure D-cellopentaose. The occurrence of carbonyl and carboxyl groups in the oxidation products was shown by LC-HRMS, MALDI-TOF and reductive amination of the carbonyl groups was attempted with p-toluidine a low molar mass amine to form the Schiff base, then reduced by 2-picoline borane to generate a more stable amine bond. The new grafted products were characterized by LC-HRMS, LC-UV-MS/MS and covalent grafting was evidenced. Next, the same procedure was adopted to successfully graft a dye, the rhodamine 123, larger in size than toluidine. This two-step chemo-enzymatic approach, never reported before, for functionalization of oligosaccharides, offers attractive opportunities to anionic cellooligosaccharides and derived glucoconjugates of interest for biomedical or neutraceutical applications. It also paves the way for more environmentally-friendly cellulose fabric staining procedures.


Subject(s)
Amines , Laccase , Oligosaccharides , Oligosaccharides/chemistry , Amines/chemistry , Laccase/chemistry , Laccase/metabolism , Cyclic N-Oxides/chemistry , Oxidation-Reduction , Cellobiose/chemistry , Schiff Bases/chemistry
3.
Acta Biomater ; 181: 176-187, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38719158

ABSTRACT

Bacterial infections are among the most critical global health challenges that seriously threaten the security of human. To address this issue, a biocompatible engineered living hydrogel patch was developed by co-embedding engineered photothermal bacteria (EM), photosensitizer (porphyrin) and reactive oxygen species amplifier (laccase) in a protein hydrogel. Remarkably, the genetice engineered bacteria can express melanin granules in vivo and this allows them to exhibit photothermal response upon being exposed to NIR-II laser (1064 nm) irradiation. Besides, electrostatically adhered tetramethylpyridinium porphyrin (TMPyP) on the bacterial surface and encapsulated laccase (Lac) in protein gel can generate highly toxic singlet oxygen (1O2) and hydroxyl radical (·OH) in the presence of visible light and lignin, respectively. Interestingly, the engineered bacteria hydrogel patch (EMTL@Gel) was successfully applied in synergistic photothermal, photodynamic and chemodynamic therapy, in which it was able to efficiently treat bacterial infection in mouse wounds and enhance wound healing. This work demonstrates the concept of "fighting bacteria with bacteria" combining bacterial engineering and material engineering into an engineered living hydrogel path that can synergistically boost the therapeutic outcome. STATEMENT OF SIGNIFICANCE: Genetically engineered bacteria produce melanin granules in vivo, exhibiting remarkable photothermal properties. These bacteria, along with a photosensitizer (TMPyP) and a reactive oxygen species amplifier (laccase), are incorporated into a biocompatible protein hydrogel patch. Under visible light, the patch generates toxic singlet oxygen (1O2) and hydroxyl radical (·OH), demonstrates outstanding synergistic effects in photothermal, photodynamic, and chemodynamic therapy, effectively treating bacterial infections and promoting wound healing in mice.


Subject(s)
Hydrogels , Wound Healing , Wound Healing/drug effects , Animals , Hydrogels/chemistry , Hydrogels/pharmacology , Mice , Bacterial Infections/drug therapy , Biocompatible Materials/pharmacology , Biocompatible Materials/chemistry , Photosensitizing Agents/pharmacology , Photosensitizing Agents/chemistry , Laccase/chemistry , Porphyrins/chemistry , Porphyrins/pharmacology , Escherichia coli/drug effects
4.
Anal Chim Acta ; 1311: 342739, 2024 Jul 04.
Article in English | MEDLINE | ID: mdl-38816161

ABSTRACT

BACKGROUND: Catechol (CC), a prevalent phenolic compound, is a byproduct in various agricultural, chemical, and industrial processes. CC detection is crucial for safeguarding water quality and plays a pivotal role in enhancing the overall quality of life of individuals. Electrochemical biosensors exhibit rapid responses, have small sizes, and can be used for real-time monitoring. Therefore, the development of a fast and sensitive electrochemical biosensor for CC detection is crucial. RESULT: In this study, a laccase-based electrochemical biosensor for detection of CC is successfully developed using Fe3O4 nanoparticles as medium and optimized by applying a magnetic field. This research proposes a unique strategy for biosensor enhancement by actively controlling the distribution of magnetic materials on the electrode surface through the application of a magnetic field, resulting in a visibly alternating stripe pattern. This approach effectively disperses magnetic particles, preventing their aggregation and reducing the boundary layer thickness, enhancing the electrochemical response of the biosensor. After fabrication condition optimization, CC is successfully detected using this biosensor. The fabricated sensor exhibits excellent performance with a wide linear detection range of 10-1000 µM, a low detection limit of 1.25 µM, and a sensitivity of 7.9 µA/mM. The fabricated sensor exhibits good selectivity and reliable detection in real water samples. In addition, the laccase-based sensor has the potential for the fast and accurate monitoring of CC in olive oil. SIGNIFICANCE: The magnetic field optimization in this study significantly improved the performance of the electrochemical biosensor for detecting CC in environmental samples. Overall, the sensor developed in this study has the potential for fast and accurate monitoring of CC in environmental samples, highlighting the potential importance of a magnetic field environment in improving the performance of catechol electrochemical biosensors.


Subject(s)
Biosensing Techniques , Catechols , Electrochemical Techniques , Laccase , Catechols/analysis , Catechols/chemistry , Laccase/chemistry , Laccase/metabolism , Magnetic Fields , Magnetite Nanoparticles/chemistry , Electrodes , Surface Properties , Limit of Detection , Enzymes, Immobilized/chemistry , Enzymes, Immobilized/metabolism , Water Pollutants, Chemical/analysis
5.
Proc Natl Acad Sci U S A ; 121(19): e2403049121, 2024 May 07.
Article in English | MEDLINE | ID: mdl-38691587

ABSTRACT

Molecular chaperones assist in protein refolding by selectively binding to proteins in their nonnative states. Despite progress in creating artificial chaperones, these designs often have a limited range of substrates they can work with. In this paper, we present molecularly imprinted flexible polymer nanoparticles (nanoMIPs) designed as customizable biomimetic chaperones. We used model proteins such as cytochrome c, laccase, and lipase to screen polymeric monomers and identify the most effective formulations, offering tunable charge and hydrophobic properties. Utilizing a dispersed phase imprinting approach, we employed magnetic beads modified with destabilized whole-protein as solid-phase templates. This process involves medium exchange facilitated by magnetic pulldowns, resulting in the synthesis of nanoMIPs featuring imprinted sites that effectively mimic chaperone cavities. These nanoMIPs were able to selectively refold denatured enzymes, achieving up to 86.7% recovery of their activity, significantly outperforming control samples. Mechanistic studies confirmed that nanoMIPs preferentially bind denatured rather than native enzymes, mimicking natural chaperone interactions. Multifaceted analyses support the functionality of nanoMIPs, which emulate the protective roles of chaperones by selectively engaging with denatured proteins to inhibit aggregation and facilitate refolding. This approach shows promise for widespread use in protein recovery within biocatalysis and biomedicine.


Subject(s)
Molecular Chaperones , Nanoparticles , Polymers , Protein Denaturation , Nanoparticles/chemistry , Molecular Chaperones/chemistry , Molecular Chaperones/metabolism , Polymers/chemistry , Protein Refolding , Protein Folding , Cytochromes c/chemistry , Cytochromes c/metabolism , Laccase/chemistry , Laccase/metabolism , Lipase/chemistry , Lipase/metabolism
6.
J Colloid Interface Sci ; 669: 712-722, 2024 Sep.
Article in English | MEDLINE | ID: mdl-38735253

ABSTRACT

The industrial applications of enzymes are usually hindered by the high production cost, intricate reusability, and low stability in terms of thermal, pH, salt, and storage. Therefore, the de novo design of nanozymes that possess the enzyme mimicking biocatalytic functions sheds new light on this field. Here, we propose a facile one-pot synthesis approach to construct Cu-chelated polydopamine nanozymes (PDA-Cu NPs) that can not only catalyze the chromogenic reaction of 2,4-dichlorophenol (2,4-DP) and 4-aminoantipyrine (4-AP), but also present enhanced photothermal catalytic degradation for typical textile dyes. Compared with natural laccase, the designed mimic has higher affinity to the substrate of 2,4-DP with Km of 0.13 mM. Interestingly, PDA-Cu nanoparticles are stable under extreme conditions (temperature, ionic strength, storage), are reusable for 6 cycles with 97 % activity, and exhibit superior substrate universality. Furthermore, PDA-Cu nanozymes show a remarkable acceleration of the catalytic degradation of dyes, malachite green (MG) and methylene blue (MB), under near-infrared (NIR) laser irradiation. These findings offer a promising paradigm on developing novel nanozymes for biomedicine, catalysis, and environmental engineering.


Subject(s)
Coloring Agents , Copper , Indoles , Laccase , Polymers , Copper/chemistry , Indoles/chemistry , Coloring Agents/chemistry , Laccase/chemistry , Laccase/metabolism , Catalysis , Polymers/chemistry , Particle Size , Surface Properties , Chlorophenols/chemistry , Chlorophenols/metabolism , Methylene Blue/chemistry , Methylene Blue/metabolism , Rosaniline Dyes
7.
Biosens Bioelectron ; 256: 116275, 2024 Jul 15.
Article in English | MEDLINE | ID: mdl-38603839

ABSTRACT

Constructing relatively inexpensive nanomaterials to simulate the catalytic performance of laccase is of great significance in recent years. Although research on improving laccase-like activity by regulating ligands of copper (amino acids or small organic molecules, etc.) have achieved remarkable success. There are few reports on improving laccase-like activity by adjusting the composition of metal Cu. Here, we used perovskite hydroxide AB(OH)6 as a model to evaluate the relationship between Cu based alloys and their laccase-like activity. We found that when the Cu/Mn alloy ratio of the perovskite hydroxide A point is greater than 1, the laccase-like activity of the binary alloy perovskite hydroxide is higher than that of the corresponding single Cu. Based on the measurements of XPS and ICP-MS, we deduced that the improvements of laccase-like activity mainly attribute to the ratio of Cu+/Cu2+and the content of Cu. Moreover, two types of substrates (toxic pollutants and catechol neurotransmitters) were used to successfully demonstrated such nanozymes' excellent environmental protecting function and biosensing property. This work will provide a novel approach for the construction and application of laccase-like nanozymes in the future.


Subject(s)
Biosensing Techniques , Copper , Laccase , Oxides , Titanium , Laccase/chemistry , Laccase/metabolism , Biosensing Techniques/methods , Copper/chemistry , Titanium/chemistry , Oxides/chemistry , Hydroxides/chemistry , Calcium Compounds/chemistry , Environmental Restoration and Remediation/methods , Catechols/analysis , Catechols/chemistry , Biomimetic Materials/chemistry , Catalysis
8.
Int J Biol Macromol ; 267(Pt 2): 131553, 2024 May.
Article in English | MEDLINE | ID: mdl-38621569

ABSTRACT

An alternative packaging material based on cellulose that possesses excellent barrier properties and is potentially useful for active packaging has been developed. Cellulose nanofibril was efficiently and selectively oxidized with sodium periodate generating reactive aldehyde groups. These groups formed hemiacetal and hemialdal bonds during film formation and, consequently, highly transparent, elastic and strong films were created even under moisture saturation conditions. The periodate oxidation treatment additionally decreased the polarity of the films and considerably enhanced their water barrier properties. Thus, the water contact angle of films treated for 3 and 6 h was 97° and 102°, their water drop test value was higher than in untreated film (viz., 138 and 141 min with 3 and 6 h of treatment) and their water vapour transmission rate was substantially better (3.31 and 0.78 g m-2 day-1 with 3 and 6 h, respectively). The presence of aldehyde groups facilitated immobilization of the enzyme laccase, which efficiently captures oxygen and prevents food decay as a result. Laccase-containing films oxidized 80 % of Methylene Blue colorant and retained their enzymatic activity after storage for 1 month and 12 reuse cycles, opening the door to the possible creation of a reusable packaging to replace the single-use packaging.


Subject(s)
Cellulose , Food Packaging , Nanofibers , Oxidation-Reduction , Periodic Acid , Cellulose/chemistry , Nanofibers/chemistry , Food Packaging/methods , Periodic Acid/chemistry , Laccase/chemistry , Water/chemistry , Enzymes, Immobilized/chemistry , Steam
9.
Chemosphere ; 358: 142145, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38670514

ABSTRACT

This research reported on the immobilization of environmentally friendly enzymes, such as horseradish peroxidase (HRP) and laccase (L), along with the hydrophilic zwitterionic compound l-DOPA on nano-filtration (NF) membranes. This approach introduced biocatalytic membranes, leveraging combined effects between membranes and enzymes. The aim was to systematically assess the efficacy of the enzymatic modified membrane (HRP-NF) in degrading colors in the wastewater, as well as enhancing the membrane resistance toward organic fouling. The enzymatic immobilized membrane demonstrated 96.3 ± 1.8% to 96.6 ± 1.9% removal of colors, and 65.2 ± 1.3% to 67.2 ± 1.3% removal of TOC. This result was underpinned by the insights obtained from the radical scavenger coumarin, which was employed to trap and confirm the formation of PRs through the reaction of enzymes and H2O2. Furthermore, membranes modified with enzymes exhibited significantly improved antifouling properties. The HRP-NF membrane experienced an 8% decline in flux, while the co-immobilized HRP-L-NF membrane demonstrated as low as 6% flux decline, contributed by the synergistic effect of increased hydrophilicity and biocatalytic effects. These findings confirmed that the immobilized enzymatic surface has added function of degrading contaminants in addition to separation function of nanofiltration membrane. These l-DOPA-immobilized enzymatic membranes offered a promising hybrid biocatalytic membrane to eliminate dyes and mitigate membrane fouling, which can be applied in many industrial and domestic water and wastewater treatment.


Subject(s)
Biocatalysis , Enzymes, Immobilized , Horseradish Peroxidase , Laccase , Membranes, Artificial , Wastewater , Water Pollutants, Chemical , Laccase/metabolism , Laccase/chemistry , Horseradish Peroxidase/metabolism , Horseradish Peroxidase/chemistry , Enzymes, Immobilized/chemistry , Enzymes, Immobilized/metabolism , Wastewater/chemistry , Water Pollutants, Chemical/chemistry , Biofouling/prevention & control , Hydrophobic and Hydrophilic Interactions , Filtration/methods , Levodopa/chemistry , Water Purification/methods , Hydrogen Peroxide/chemistry , Waste Disposal, Fluid/methods
10.
Chemosphere ; 358: 142112, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38677613

ABSTRACT

The treatment of waterborne micropollutants, such as diclofenac, presents a significant challenge to wastewater treatment plants due to their incomplete removal by conventional methods. Ozonation is an effective technique for the degradation of micropollutants. However, incomplete oxidation can lead to the formation of ecotoxic by-products that require a subsequent post-treatment step. In this study, we analyze the susceptibility of micropollutant ozonation products to enzymatic digestion with laccase from Trametes versicolor to evaluate the potential of enzymatic treatment as a post-ozonation step. The omnipresent micropollutant diclofenac is used as an example, and the enzymatic degradation kinetics of all 14 detected ozonation products are analyzed by high-performance liquid chromatography coupled with high-resolution mass spectrometry (HPLC-HRMS) and tandem mass spectrometry (MS2). The analysis shows that most of the ozonation products are responsive to chemo-enzymatic treatment but show considerable variation in enzymatic degradation kinetics and efficiencies. Mechanistic investigation of representative transformation products reveals that the hydroxylated aromatic nature of the ozonation products matches the substrate spectrum, facilitating their rapid recognition as substrates by laccase. However, after initiation by laccase, the subsequent chemical pathway of the enzymatically formed radicals determines the global degradability observed in the enzymatic process. Substrates capable of forming stable molecular oxidation products inhibit complete detoxification by oligomerization. This emphasizes that it is not the enzymatic uptake of the substrates but the channelling of the reaction of the substrate radicals towards the oligomerization of the substrate radicals that is the key step in the further development of an enzymatic treatment step for wastewater applications.


Subject(s)
Diclofenac , Laccase , Oxidation-Reduction , Ozone , Wastewater , Water Pollutants, Chemical , Diclofenac/chemistry , Diclofenac/metabolism , Laccase/metabolism , Laccase/chemistry , Ozone/chemistry , Water Pollutants, Chemical/chemistry , Water Pollutants, Chemical/metabolism , Wastewater/chemistry , Kinetics , Chromatography, High Pressure Liquid , Tandem Mass Spectrometry , Waste Disposal, Fluid/methods , Water Purification/methods , Polyporaceae
11.
Food Chem ; 449: 139192, 2024 Aug 15.
Article in English | MEDLINE | ID: mdl-38583404

ABSTRACT

The synergistic effects of ultrafine grinding and enzymolysis (cellulase and Laccase hydrolysis) alone or combined with carboxymethylation or acetylation on the hypoglycemic and antioxidant activities of oil palm kernel fibre (OPKEF) were studied for the first time. After these synergistic modifications, the microstructure of OPKEF became more porous, and its soluble fibre and total polyphenols contents, and surface area were all improved (P < 0.05). Superfine-grinding and enzymolysis combined with carboxymethylation treated OPKEF exhibited the highest viscosity (13.9 mPa∙s), inhibition ability to glucose diffusion (38.18%), and water-expansion volume (3.58 mL∙g-1). OPKEF treated with superfine-grinding and enzymolysis combined with acetylation showed the highest surface hydrophobicity (50.93) and glucose adsorption capacity (4.53 µmol∙g-1), but a lower α-amylase-inhibition ability. Moreover, OPKEF modified by superfine-grinding and enzymolysis had the highest inhibiting activity against α-amylase (25.78%). Additionally, superfine-grinding and enzymolysis combined with carboxymethylation or acetylation both improved the content and antioxidant activity of OPEKF's bounding polyphenols (P < 0.05).


Subject(s)
Antioxidants , Hypoglycemic Agents , Antioxidants/chemistry , Hypoglycemic Agents/chemistry , Hypoglycemic Agents/pharmacology , Acetylation , Palm Oil/chemistry , alpha-Amylases/chemistry , alpha-Amylases/metabolism , Laccase/chemistry , Laccase/metabolism , Methylation , Cellulase/chemistry , Cellulase/metabolism , Hydrolysis , Viscosity , Seeds/chemistry , Food Handling , Polyphenols/chemistry , Polyphenols/pharmacology
12.
Molecules ; 29(5)2024 Feb 24.
Article in English | MEDLINE | ID: mdl-38474502

ABSTRACT

Enzymes play an important role in numerous natural processes and are increasingly being utilized as environmentally friendly substitutes and alternatives to many common catalysts. Their essential advantages are high catalytic efficiency, substrate specificity, minimal formation of byproducts, and low energy demand. All of these benefits make enzymes highly desirable targets of academic research and industrial development. This review has the modest aim of briefly overviewing the classification, mechanism of action, basic kinetics and reaction condition effects that are common across all six enzyme classes. Special attention is devoted to immobilization strategies as the main tools to improve the resistance to environmental stress factors (temperature, pH and solvents) and prolong the catalytic lifecycle of these biocatalysts. The advantages and drawbacks of methods such as macromolecular crosslinking, solid scaffold carriers, entrapment, and surface modification (covalent and physical) are discussed and illustrated using numerous examples. Among the hundreds and possibly thousands of known and recently discovered enzymes, hydrolases and oxidoreductases are distinguished by their relative availability, stability, and wide use in synthetic applications, which include pharmaceutics, food and beverage treatments, environmental clean-up, and polymerizations. Two representatives of those groups-laccase (an oxidoreductase) and lipase (a hydrolase)-are discussed at length, including their structure, catalytic mechanism, and diverse usage. Objective representation of the current status and emerging trends are provided in the main conclusions.


Subject(s)
Laccase , Lipase , Lipase/chemistry , Laccase/chemistry , Enzymes, Immobilized/chemistry , Catalysis , Macromolecular Substances
13.
Int J Biol Macromol ; 266(Pt 1): 131168, 2024 May.
Article in English | MEDLINE | ID: mdl-38552694

ABSTRACT

Pharmaceuticals, designed for treating diseases, ironically endanger humans and aquatic ecosystems as pollutants. Adsorption-based wastewater treatment could address this problem, however, creating efficient adsorbents remains a challenge. Recent efforts have shifted towards sustainable bio-based adsorbents. Here, cryogels from lignin-containing cellulose nanofibrils (LCNF) and lignin nanoparticles (LNPs) were explored as pharmaceuticals adsorbents. An enzyme-based approach using laccase was used for crosslinking instead of fossil-based chemical modification. The impact of laccase treatment on LNPs alone produced surface-crosslinked water-insoluble LNPs with preserved morphology and a hemicellulose-rich, water-soluble LNP fraction. The water-insoluble LNPs displayed a significant increase in adsorption capacity, up to 140 % and 400 % for neutral and cationic drugs, respectively. The crosslinked cryogel prepared by one-pot incubation of LNPs, LCNF and laccase showed significantly higher adsorption capacities for various pharmaceuticals in a multi-component system than pure LCNF or unmodified cryogels. The crosslinking minimized the leaching of LNPs in water, signifying enhanced binding between LNPs and LCNF. In real wastewater, the laccase-modified cryogel displayed 8-44 % removal for cationic pharmaceuticals. Overall, laccase treatment facilitated the production of bio-based adsorbents by improving the deposition of LNPs to LCNF. Finally, this work introduces a sustainable approach for engineering adsorbents, while aligning with global sustainability goals.


Subject(s)
Cellulose , Cryogels , Laccase , Lignin , Nanoparticles , Water Pollutants, Chemical , Adsorption , Cryogels/chemistry , Lignin/chemistry , Laccase/chemistry , Cellulose/chemistry , Nanoparticles/chemistry , Water Pollutants, Chemical/chemistry , Water Purification/methods , Pharmaceutical Preparations/chemistry , Wastewater/chemistry , Cross-Linking Reagents/chemistry
14.
Biomolecules ; 14(3)2024 Mar 08.
Article in English | MEDLINE | ID: mdl-38540743

ABSTRACT

Laccase from Trametes versicolor was applied to produce phenolic polymeric compounds with enhanced properties, using a wine lees extract as the phenolic source. The influence of the incubation time on the progress of the enzymatic oxidation and the yield of the formed polymers was examined. The polymerization process and the properties of the polymeric products were evaluated with a variety of techniques, such as high-pressure liquid chromatography (HPLC) and gel permeation chromatography (GPC), Fourier-transform infrared (FTIR) and nuclear magnetic resonance (NMR) spectroscopies, differential scanning calorimetry (DSC), and thermogravimetric analysis (TGA). The enzymatic polymerization reaction resulted in an 82% reduction in the free phenolic compounds of the extract. The polymeric product recovery (up to 25.7%) and the molecular weight of the polymer depended on the incubation time of the reaction. The produced phenolic polymers exhibited high antioxidant activity, depending on the enzymatic oxidation reaction time, with the phenolic polymer formed after one hour of enzymatic reaction exhibiting the highest antioxidant activity (133.75 and 164.77 µg TE mg-1 polymer) towards the ABTS and DPPH free radicals, respectively. The higher thermal stability of the polymeric products compared to the wine lees phenolic extract was confirmed with TGA and DSC analyses. Finally, the formed phenolic polymeric products were incorporated into chitosan films, providing them with increased antioxidant activity without affecting the films' cohesion.


Subject(s)
Antioxidants , Wine , Antioxidants/chemistry , Laccase/chemistry , Wine/analysis , Polymers/chemistry , Trametes , Food Packaging , Phenols/chemistry , Plant Extracts/analysis
15.
Bioprocess Biosyst Eng ; 47(4): 475-482, 2024 Apr.
Article in English | MEDLINE | ID: mdl-38480583

ABSTRACT

Use of white-rot fungi for enzyme-based bioremediation of wastewater is of high interest. These fungi produce considerable amounts of extracellular ligninolytic enzymes during solid-state fermentation on lignocellulosic materials such as straw and sawdust. We used pure sawdust colonized by Pleurotus ostreatus, Trametes versicolor, and Ganoderma lucidum for extraction of ligninolytic enzymes in aqueous suspension. Crude enzyme suspensions of the three fungi, with laccase activity range 12-43 U/L and manganese peroxidase activity range 5-55 U/L, were evaluated for degradation of 11 selected pharmaceuticals spiked at environmentally relevant concentrations. Sulfamethoxazole was removed significantly in all treatments. The crude enzyme suspension from P. ostreatus achieved degradation of wider range of pharmaceuticals when the enzyme activity was increased. Brief homogenization of the colonized sawdust was also observed to be favorable, resulting in significant reductions after a short exposure of 5 min. The highest reduction was observed for sulfamethoxazole which was reduced by 84% compared to an autoclaved control without enzyme activity and for trimethoprim which was reduced by 60%. The compounds metoprolol, lidocaine, and venlafaxine were reduced by approximately 30% compared to the control. Overall, this study confirmed the potential of low-cost lignocellulosic material as a substrate for production of enzymes from white-rot fungi. However, monitoring over time in bioreactors revealed a rapid decrease in enzymatic ligninolytic activity.


Subject(s)
Pleurotus , Trametes , Laccase/chemistry , Lignin/metabolism , Fermentation , Sulfamethoxazole/metabolism , Pharmaceutical Preparations/metabolism , Biodegradation, Environmental
16.
J Agric Food Chem ; 72(11): 6019-6027, 2024 Mar 20.
Article in English | MEDLINE | ID: mdl-38447069

ABSTRACT

Malachite green (MG) poses a formidable threat to ecosystems and human health. Laccase emerges as a promising candidate for MG degradation, prompting an investigation into the catalytic activity modulation of a small laccase (SLAC) from Streptomyces coelicolor, with a focus on amino acid position 228. Through saturation mutagenesis, five mutants with a 50% increase in the specific activity were generated. Characterization revealed notable properties, Km of E228F was 8.8% of the wild type (WT), and E288T exhibited a 133% kcat compared to WT. Structural analyses indicated improved hydrophobicity and electrostatic potential on the mutants' surfaces, with the stable E228F-ABTS complex exhibiting reduced flexibility, possibly contributing to the observed decrease in turnover rate. Mutants demonstrated enhanced MG decolorization, particularly E228G. Site 228 acts as a crucial functional control switch, suggesting its potential role in SLAC engineering. This study provides insights into laccase modulation and offers promising avenues for enzymatic bioremediation applications.


Subject(s)
Laccase , Streptomyces coelicolor , Humans , Laccase/chemistry , Streptomyces coelicolor/genetics , Streptomyces coelicolor/metabolism , Ecosystem , Biodegradation, Environmental
17.
Cell Mol Biol (Noisy-le-grand) ; 70(2): 1-9, 2024 Feb 29.
Article in English | MEDLINE | ID: mdl-38430048

ABSTRACT

Production of a thermostable laccase from Pleurotus florida was reported for the first time, both in submerged and solid-state fermentation using agro-industrial residues. This enzyme was purified using ammonium sulphate precipitation (60-90%), Sephadex G-100 and DEAE column ion exchange chromatography, respectively. The laccase was purified to 21.49 fold with an apparent molecular weight of 66 kDa and had an optimal pH of 5 with temperature stability at 60°C. Metal ions such as Cu2+ (91.26 µmole/mL/min), Mg2+ (68.15 µmole/mL/min), and Fe2+ (1.73 µmole/mL/min) enhanced the laccase activity, but Fe2+ (1.73µmole/mL/min) inhibited the enzyme activity. The purified laccase had Km and Vmax of 16.68 mM and 26.73 µmole/mL/min for guaiacol as a substrate. The isolated enzyme was characterized by FT-IR which revealed bands at 3655.0 cm-1, 2894.7 cm-1, and 1151.7 cm-1 corresponding to primary amines, C-H stretch, and amide -III, respectively. The enzymatic bio bleaching of paddy straw pulp was found to be most effective which resulted in a lowering of kappa number and yellowness by 19.47% & 17.84% whereas an increase in brightness and whiteness by 41.92%. & -19.61%. Thus, this might be stated that the crude laccase from P. florida can be exploited to reduce the toxic waste load for managing environmental pollution and helps in enhancing the yield and quality of the paper.


Subject(s)
Laccase , Pleurotus , Laccase/chemistry , Spectroscopy, Fourier Transform Infrared , Molecular Weight , Sodium Compounds
18.
Environ Res ; 251(Pt 1): 118565, 2024 Jun 15.
Article in English | MEDLINE | ID: mdl-38431073

ABSTRACT

This study endeavors to develop cost-effective environmentally friendly technology for removing harmful residual pharmaceuticals from water and wastewater by utilizing the effective adsorption of pistachio shell (PS) biochar and the degradation potency of laccase immobilized on the biochar (L@PSAC). The carbonatization and activation of the shells were optimized regarding temperature, time, and NH4NO3/PS ratio. This step yielded an optimum PS biochar (PSAC) with the highest porosity and surface area treated at 700 °C for 3 h using an NH4NO3/PS ratio of 3% wt. The immobilization of laccase onto PSAC (L@PSAC) was at its best level at pH 5, 60 U/g, and 30 °C. The optimum L@PSAC maintained a high level of enzyme activity over two months. Almost a complete removal (>99%) of diclofenac, carbamazepine, and ciprofloxacin in Milli-Q (MQ) water and wastewater was achieved. Adsorption was responsible for >80% of the removal and the rest was facilitated by laccase degradation. L@PSAC maintained effective removal of pharmaceuticals of ≥60% for up to six treatment cycles underscoring the promising application of this material for wastewater treatment. These results indicate that activated carbon derived from the pistachio shell could potentially be utilized as a carrier and adsorbent to efficiently remove pharmaceutical compounds. This enzymatic physical elimination approach has the potential to be used on a large-scale.


Subject(s)
Charcoal , Laccase , Water Pollutants, Chemical , Water Purification , Water Pollutants, Chemical/chemistry , Charcoal/chemistry , Laccase/chemistry , Water Purification/methods , Adsorption , Pistacia/chemistry , Pharmaceutical Preparations/chemistry , Enzymes, Immobilized/chemistry , Wastewater/chemistry , Waste Disposal, Fluid/methods , Diclofenac/chemistry , Diclofenac/isolation & purification , Carbamazepine/chemistry , Carbamazepine/isolation & purification
19.
Int J Biol Macromol ; 266(Pt 1): 130986, 2024 May.
Article in English | MEDLINE | ID: mdl-38508564

ABSTRACT

Laccases play a crucial role in neutralizing environmental pollutants, including antibiotics and phenolic compounds, by converting them into less harmful substances via a unique oxidation process. This study introduces an environmentally sustainable remediation technique, utilizing NiO nanoparticles (NPs) synthesized through green chemistry to immobilize a metagenome-derived laccase, PersiLac1, enhancing its application in pollutant detoxification. Salvadora persica leaf extract was used for the synthesis of NiO nanoparticles, utilizing its phytochemical constituents as reducing and capping agents, followed by characterization through different analyses. Characterization of NiO nanoparticles revealed distinctive FTIR absorption peaks indicating the nanoparticulate structure, while FESEM showed structured NiO with robust interconnections and dimensionality of about 50nm, confirmed by EDX analysis to have a consistent distribution of Ni and O. The immobilized PersiLac1 demonstrated enhanced thermal stability, with 85.55 % activity at 80 °C and reduced enzyme leaching, retaining 67.93 % activity across 15 biocatalytic cycles. It efficiently reduced rice straw (RS) phenol by 67.97 % within 210 min and degraded 70-78 % of tetracycline (TC) across a wide pH range (4.0-8.0), showing superior performance over the free enzyme. Immobilized laccase achieved up to 71 % TC removal at 40-80 °C, significantly outperforming the free enzyme. Notably, 54 % efficiency was achieved at 500 mg/L TC by immobilized laccase at 120 min. This research showed the potential of green-synthesized NiO nanoparticles to effectively immobilize laccase, presenting an eco-friendly approach to purify pollutants such as phenols and antibiotics. The durability and reusability of the immobilized enzyme, coupled with its ability to reduce pollutants, indicates a viable method for cleaning the environment. Nonetheless, the production costs and scalability of NiO nanoparticles for widespread industrial applications pose significant challenges. Future studies should focus on implementation at an industrial level and examine a wider range of pollutants to fully leverage the environmental clean-up capabilities of this innovative technology.


Subject(s)
Enzymes, Immobilized , Green Chemistry Technology , Laccase , Metagenome , Metal Nanoparticles , Nickel , Laccase/chemistry , Laccase/genetics , Laccase/metabolism , Nickel/chemistry , Green Chemistry Technology/methods , Enzymes, Immobilized/chemistry , Enzymes, Immobilized/metabolism , Metal Nanoparticles/chemistry , Enzyme Stability , Biodegradation, Environmental , Hydrogen-Ion Concentration , Environmental Pollutants/chemistry
20.
J Microbiol Biotechnol ; 34(4): 930-939, 2024 Apr 28.
Article in English | MEDLINE | ID: mdl-38314447

ABSTRACT

Mushroom laccases play a crucial role in lignin depolymerization, one of the most critical challenges in lignin utilization. Importantly, laccases can utilize a wide range of substrates, such as toxicants and antibiotics. This study isolated a novel laccase, named HeLac4c, from endophytic white-rot fungi Hericium erinaceus mushrooms. The cDNAs for this enzyme were 1569 bp in length and encoded a protein of 523 amino acids, including a 20 amino-acid signal peptide. Active extracellular production of glycosylated laccases from Saccharomyces cerevisiae was successfully achieved by selecting an optimal translational fusion partner. We observed that 5 and 10 mM Ca2+, Zn2+, and K+ increased laccase activity, whereas 5 mM Fe2+ and Al3+ inhibited laccase activity. The laccase activity was inhibited by the addition of low concentrations of sodium azide and L-cysteine. The optimal pH for the 2,2'-Azino-bis(3-ethylbenzothiazoline-6-sulfonic acid) diammonium salt was 4.4. Guaiacylglycerol-ß-guaiacyl ether, a lignin model compound, was polymerized by the HeLac4c enzyme. These results indicated that HeLac4c is a novel oxidase biocatalyst for the bioconversion of lignin into value-added products for environmental biotechnological applications.


Subject(s)
Hericium , Laccase , Lignin , Saccharomyces cerevisiae , Laccase/metabolism , Laccase/genetics , Laccase/chemistry , Saccharomyces cerevisiae/genetics , Saccharomyces cerevisiae/enzymology , Saccharomyces cerevisiae/metabolism , Hericium/metabolism , Hericium/genetics , Hericium/enzymology , Hydrogen-Ion Concentration , Lignin/metabolism , Fungal Proteins/genetics , Fungal Proteins/metabolism , Fungal Proteins/chemistry , Amino Acid Sequence , Cloning, Molecular , Sodium Azide/pharmacology , Agaricales/enzymology , Agaricales/genetics , Glycosylation
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