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1.
ACS Appl Mater Interfaces ; 16(22): 28222-28229, 2024 Jun 05.
Article En | MEDLINE | ID: mdl-38779815

ß-Glucosidase (EC 3.2.1.21) from sweet almond was encapsulated into pH-responsive alginate-polyethylenimine (alginate-PEI) hydrogel. Then, electrochemically controlled cyclic local pH changes resulting from ascorbate oxidation (acidification) and oxygen reduction (basification) were used for the pulsatile release of the enzyme from the composite hydrogel. Activation of the enzyme was controlled by the very same pH changes used for ß-glucosidase release, separating these two processes in time. Importantly, the activity of the enzyme, which had not been released yet, was inhibited due to the buffering effect of PEI present in the gel. Thus, only a portion of the released enzyme was activated. Both enzymatic activity and release were monitored by confocal fluorescence microscopy and regular fluorescent spectroscopy. Namely, commercially available very little or nonfluorescent substrate 4-methylumbelliferyl-ß-d-glucopyranoside was hydrolyzed by ß-glucosidase to produce a highly fluorescent product 4-methylumbelliferone during the activation phase. At the same time, labeling of the enzyme with rhodamine B isothiocyanate was used for release observation. The proposed work represents an interesting smart release-activation system with potential applications in biomedical field.


Alginates , Hydrogels , Polyethyleneimine , beta-Glucosidase , Alginates/chemistry , Hydrogels/chemistry , Polyethyleneimine/chemistry , Hydrogen-Ion Concentration , beta-Glucosidase/metabolism , beta-Glucosidase/chemistry , Rhodamines/chemistry , Enzymes, Immobilized/chemistry , Enzymes, Immobilized/metabolism , Hymecromone/chemistry , Enzyme Activation/drug effects , Prunus/enzymology , Prunus/chemistry , Glucuronic Acid/chemistry , Electrochemical Techniques
2.
J Agric Food Chem ; 72(22): 12655-12664, 2024 Jun 05.
Article En | MEDLINE | ID: mdl-38775266

Using Lactiplantibacillus plantarum as a food-grade carrier to create non-GMO whole-cell biocatalysts is gaining popularity. This work evaluates the immobilization yield of a chitosanase (CsnA, 30 kDa) from Bacillus subtilis and a mannanase (ManB, 40 kDa) from B. licheniformis on the surface of L. plantarum WCFS1 using either a single LysM domain derived from the extracellular transglycosylase Lp_3014 or a double LysM domain derived from the muropeptidase Lp_2162. ManB and CsnA were fused with the LysM domains of Lp_3014 or Lp_2162, produced in Escherichia coli and anchored to the cell surface of L. plantarum. The localization of the recombinant proteins on the bacterial cell surface was successfully confirmed by Western blot and flow cytometry analysis. The highest immobilization yields (44-48%) and activities of mannanase and chitosanase on the displaying cell surface (812 and 508 U/g of dry cell weight, respectively) were obtained when using the double LysM domain of Lp_2162 as an anchor. The presence of manno-oligosaccharides or chito-oligosaccharides in the reaction mixtures containing appropriate substrates and ManB or CsnA-displaying cells was determined by high-performance anion exchange chromatography. This study indicated that non-GMO Lactiplantibacillus chitosanase- and mannanase-displaying cells could be used to produce potentially prebiotic oligosaccharides.


Bacillus subtilis , Bacterial Proteins , Glycoside Hydrolases , Peptidoglycan , Bacillus subtilis/genetics , Bacillus subtilis/enzymology , Bacillus subtilis/chemistry , Bacillus subtilis/metabolism , Bacterial Proteins/genetics , Bacterial Proteins/metabolism , Bacterial Proteins/chemistry , Glycoside Hydrolases/genetics , Glycoside Hydrolases/chemistry , Glycoside Hydrolases/metabolism , Peptidoglycan/metabolism , Peptidoglycan/chemistry , Enzymes, Immobilized/chemistry , Enzymes, Immobilized/genetics , Enzymes, Immobilized/metabolism , Protein Domains , Lactobacillus plantarum/genetics , Lactobacillus plantarum/enzymology , Lactobacillus plantarum/metabolism , Lactobacillus plantarum/chemistry , Chitin/metabolism , Chitin/chemistry
3.
Int J Biol Macromol ; 269(Pt 1): 132021, 2024 Jun.
Article En | MEDLINE | ID: mdl-38697441

Challenges in enzyme and product recovery are currently intriguing in modern biotechnology. Coping enzyme stability, shelf life and efficiency, nanomaterials-based immobilization were epitomized of industrial practice. Herein, a α-amylase from Geobacillus thermoleovorans was purified and bound effectively on to a modified 3-Aminopropyltriethoxysilane (APTES)-Fe3O4 nanoparticle. It was revealed that the carrier-bound enzyme catalysis (pH 8 and 60 °C) was significant in contrast to the free enzyme (pH 7.5 and 55 °C). Furthermore, Zn2+ and Cu2+ were shown to cause inhibitory effects in both enzyme states. Unlike chloroform, toluene, benzene, and butanol, minimal effects were observed with ethanol, acetone, and hexane. The bound enzyme retained 27.4 % of its initial activity after being stored for 36 days. In addition, the reusability of the bound enzyme showed a gradual decline in activity after the first cycle; however, after 13 cycles, its residual activity at 53 % was observed. These data proved significant enough to use this enzyme for industrial starch and analogous substrate bio-processing.


Enzyme Stability , Enzymes, Immobilized , Propylamines , alpha-Amylases , Enzymes, Immobilized/chemistry , Enzymes, Immobilized/metabolism , alpha-Amylases/chemistry , alpha-Amylases/metabolism , Propylamines/chemistry , Silanes/chemistry , Geobacillus/enzymology , Temperature , Hydrogen-Ion Concentration , Biocatalysis , Catalysis , Magnetite Nanoparticles/chemistry , Starch/chemistry
4.
Int J Biol Macromol ; 270(Pt 1): 132076, 2024 Jun.
Article En | MEDLINE | ID: mdl-38705324

The cross-linked enzyme (CLEs) of Thermomyces lanuginosa lipase (TLL) was prepared in an isocyanide-based multi-component reactions (ICMRs) platform by applying three di-acidic cross-linkers to unveil more factors contributing to the functional properties of CLEs. The linkers were 1,11-undecanedicarboxylic acid, azelaic acid, and adipic acid with 11, 7, and 4 carbon lengths, respectively, providing a proper tool to investigate the effect of linker length on the activity, stability, and selectivity of the resulting CLEs. The immobilization yields of 60-90 % and the specific activities of 168, 88.4 and 49 U/mg were obtained for the CLEs of 1,11-undecanedicarboxylic acid, azelaic acid, adipic acid, respectively. The lower activity of azelaic and adipic acid-mediated CLEs compared to the soluble TLL (110 U/mg) was explained by in silico calculations. The results revealed that as opposed to 1,11-undecanedicarboxylic acid, both linkers tended to penetrate the enzyme active site, thus resulting in a major inhibitory effect on the enzyme functionality. The thermal and co-solvent stability of the immobilized derivatives improved compared to those of free TLL. The selectivity of CLEs was also examined by catalytic release of main omega-3 fatty acids from fish oil, presenting the highest selectivity of 22 for the CLEs of azelaic acid.


Cross-Linking Reagents , Enzymes, Immobilized , Lipase , Enzymes, Immobilized/chemistry , Enzymes, Immobilized/metabolism , Lipase/chemistry , Lipase/metabolism , Cross-Linking Reagents/chemistry , Enzyme Stability , Eurotiales/enzymology , Adipates/chemistry , Carbon/chemistry , Dicarboxylic Acids/chemistry
5.
Int J Biol Macromol ; 270(Pt 2): 132245, 2024 Jun.
Article En | MEDLINE | ID: mdl-38729477

This study investigates the use of nanodiamonds (ND) as a promising carrier for enzyme immobilization and compares the effectiveness of immobilized and native enzymes. Three different enzyme types were tested, of which Rhizopus niveus lipase (RNL) exhibited the highest relative activity, up to 350 %. Under optimized conditions (1 h, pH 7.0, 40 °C), the immobilized ND-RNL showed a maximum specific activity of 0.765 U mg-1, significantly higher than native RNL (0.505 U mg-1). This study highlights a notable enhancement in immobilized lipase; furthermore, the enzyme can be recycled in the presence of a natural deep eutectic solvent (NADES), retaining 76 % of its initial activity. This aids in preserving the native conformation of the protein throughout the reusability process. A test on brine shrimp revealed that even at low concentrations, ND-RNL had minimal toxicity, indicating its low cytotoxicity. The in silico molecular dynamics simulations performed in this study offer valuable insights into the mechanism of interactions between RNL and ND, demonstrating that RNL immobilization onto NDs enhances its efficiency and stability. All told, these findings highlight the immense potential of ND-immobilized RNL as an excellent candidate for biological applications and showcase the promise of further research in this field.


Deep Eutectic Solvents , Enzymes, Immobilized , Lipase , Nanodiamonds , Lipase/chemistry , Lipase/metabolism , Enzymes, Immobilized/chemistry , Enzymes, Immobilized/metabolism , Nanodiamonds/chemistry , Deep Eutectic Solvents/chemistry , Molecular Dynamics Simulation , Enzyme Stability , Animals , Hydrogen-Ion Concentration , Rhizopus/enzymology , Temperature , Artemia/drug effects , Solvents/chemistry
6.
Int J Biol Macromol ; 270(Pt 1): 132101, 2024 Jun.
Article En | MEDLINE | ID: mdl-38734354

Aspergillus oryzae ß-D-galactosidase (ß-Gal) efficiently hydrolyzes sesaminol triglucoside into sesaminol, which has higher biological activity. However, ß-Gal is difficult to be separate from the reaction mixture and limited by stability. To resolve these problems, ß-Gal was immobilized on amino-functionalized magnetic nanoparticles mesoporous silica pre-activated with glutaraldehyde (Fe3O4@mSiO2-ß-Gal), which was used for the first time to prepare sesaminol. Under the optimal conditions, the immobilization yield and recovered activity of ß-Gal were 57.9 ± 0.3 % and 46.5 ± 0.9 %, and the enzymatic loading was 843 ± 21 Uenzyme/gsupport. The construction of Fe3O4@mSiO2-ß-Gal was confirmed by various characterization methods, and the results indicated it was suitable for heterogeneous enzyme-catalyzed reactions. Fe3O4@mSiO2-ß-Gal was readily separable under magnetic action and displayed improved activity in extreme pH and temperature conditions. After 45 days of storage at 4 °C, the activity of Fe3O4@mSiO2-ß-Gal remained at 92.3 ± 2.8 %, which was 1.29 times than that of free enzyme, and its activity remained above 85 % after 10 cycles. Fe3O4@mSiO2-ß-Gal displayed higher affinity and catalytic efficiency. The half-life was 1.41 longer than free enzymes at 55.0 °C. Fe3O4@mSiO2-ß-Gal was employed as a catalyst to prepare sesaminol, achieving a 96.7 % conversion yield of sesaminol. The excellent stability and catalytic efficiency provide broad benefits and potential for biocatalytic industry applications.


Aspergillus oryzae , Enzymes, Immobilized , Glutaral , Silicon Dioxide , beta-Galactosidase , Enzymes, Immobilized/chemistry , Enzymes, Immobilized/metabolism , beta-Galactosidase/chemistry , beta-Galactosidase/metabolism , Aspergillus oryzae/enzymology , Silicon Dioxide/chemistry , Glutaral/chemistry , Dioxoles/chemistry , Dioxoles/pharmacology , Magnetite Nanoparticles/chemistry , Porosity , Temperature , Hydrogen-Ion Concentration , Enzyme Stability , Furans
7.
Int J Biol Macromol ; 270(Pt 1): 132286, 2024 Jun.
Article En | MEDLINE | ID: mdl-38735612

Microbial proteases have proven their efficiency in various industrial applications; however, their application in accelerating the wound healing process has been inconsistent in previous studies. In this study, heterologous expression was used to obtain an over-yielding of the serine alkaline protease. The serine protease-encoding gene aprE was isolated from Bacillus safensis lab 418 and expressed in E. coli BL21 (DE3) using the pET28a (+) expression vector. The gene sequence was assigned the accession number OP610065 in the NCBI GenBank. The open reading frame of the recombinant protease (aprEsaf) was 383 amino acids, with a molecular weight of 35 kDa. The yield of aprEsaf increased to 300 U/mL compared with the native serine protease (SAFWD), with a maximum yield of 77.43 U/mL after optimization conditions. aprEsaf was immobilized on modified amine-functionalized films (MAFs). By comparing the biochemical characteristics of immobilized and free recombinant enzymes, the former exhibited distinctive biochemical characteristics: improved thermostability, alkaline stability over a wider pH range, and efficient reusability. The immobilized serine protease was effectively utilized to expedite wound healing. In conclusion, our study demonstrates the suitability of the immobilized recombinant serine protease for wound healing, suggesting that it is a viable alternative therapeutic agent for wound management.


Bacillus , Bacterial Proteins , Cloning, Molecular , Endopeptidases , Enzyme Stability , Enzymes, Immobilized , Recombinant Proteins , Wound Healing , Cloning, Molecular/methods , Wound Healing/drug effects , Recombinant Proteins/genetics , Recombinant Proteins/chemistry , Recombinant Proteins/isolation & purification , Bacillus/enzymology , Bacillus/genetics , Endopeptidases/genetics , Endopeptidases/chemistry , Endopeptidases/metabolism , Endopeptidases/isolation & purification , Bacterial Proteins/genetics , Bacterial Proteins/chemistry , Bacterial Proteins/metabolism , Bacterial Proteins/isolation & purification , Enzymes, Immobilized/chemistry , Enzymes, Immobilized/metabolism , Serine Proteases/genetics , Serine Proteases/chemistry , Serine Proteases/isolation & purification , Serine Proteases/metabolism , Hydrogen-Ion Concentration , Gene Expression , Escherichia coli/genetics , Temperature , Amino Acid Sequence
8.
Int J Biol Macromol ; 270(Pt 1): 132312, 2024 Jun.
Article En | MEDLINE | ID: mdl-38744370

This study aimed to immobilize ß-galactosidase (ß-GAL) into enhanced polystyrene (PS) electrospun nanofiber membranes (ENMs) with functionalized graphene oxide (GO). Initially, GO sheets were functionalized by salinization with 3-aminopropyl triethoxysilane (APTES). Then the ENMs (PS, PS/GO, and PS/GO-APTES) were prepared and characterized. Then, the ß-GAL was immobilized in the different ENMs to produce the ß-GAL-bound nanocomposites (PS-GAL, PS/GO-GAL, and PS/GO-APTES-GAL). Immobilization of ß-GAL into PS/GO-APTES significantly improved enzyme adsorption by up to 87 %. Also, PS/GO-APTES-GAL improved the enzyme activity, where the highest enzyme activity was obtained at enzyme concentrations of 4 mg/L, 50 °C, and pH 4.5. Likewise, the storage stability and reusability of immobilized ß-GAL were improved. Furthermore, this process led to enhanced catalytic behavior and transgalactosylation efficiency, where GOS synthesis (72 %) and lactose conversion (81 %) increased significantly compared to the free enzyme. Overall, the immobilized ß-GAL produced in this study showed potential as an effective biocatalyst in the food industry.


Enzymes, Immobilized , Graphite , Nanofibers , Oligosaccharides , beta-Galactosidase , beta-Galactosidase/chemistry , beta-Galactosidase/metabolism , Enzymes, Immobilized/chemistry , Enzymes, Immobilized/metabolism , Nanofibers/chemistry , Graphite/chemistry , Oligosaccharides/chemistry , Galactose/chemistry , Hydrogen-Ion Concentration , Enzyme Stability , Silanes/chemistry , Biocatalysis , Polystyrenes/chemistry , Temperature , Catalysis
9.
Anal Chem ; 96(22): 9228-9235, 2024 Jun 04.
Article En | MEDLINE | ID: mdl-38779801

Open-tubular immobilized enzyme microreactors (OT-IMERs) are some of the most widely used enzyme reaction devices due to the advantages of simple preparation and fast sample processing. However, the traditional approaches for OT-IMERs preparation had some defects such as limited enzyme loading amount, susceptibility to complex sample interference, and less stability. Here, we report a strategy for the preparation of highly active and stable OT-IMERs, in which the single-stranded DNA-enzyme composites were immobilized in capillaries and then encapsulated in situ in the capillaries via zeolitic imidazolate frameworks (ZIF-L). The phosphate groups of the DNA adjusted the surface potential of the enzyme to negative values, which could attract cations, such as Zn2+, to promote the formation of ZIF-L for enzyme encapsulation. Using chymotrypsin (ChT) as a model enzyme, the prepared ChT@ZIF-L-IMER has higher activity and better affinity than the free enzyme and ChT-IMER. Moreover, the thermal stability, pH stability, and organic solvent stability of ChT@ZIF-L-IMER were much higher than those of free enzyme and ChT-IMER. Furthermore, the activity of ChT@ZIF-L-IMER was much higher than that of ChT-IMER after ten consecutive reactions. To demonstrate the versatility of this preparation method, we replaced ChT with glucose oxidase (GOx). The stability of GOx@ZIF-L-IMER was also experimentally demonstrated to be superior to that of GOx and GOx-IMER. Finally, ChT@ZIF-L-IMER was used for proteolytic digestion analysis. The results showed that ChT@ZIF-L-IMER had a short digestion time and high digestive efficiency compared with the free enzyme. The present study broadened the synthesis method of OT-IMERs, effectively integrating the advantages of metal-organic frameworks and IMER, and the prepared OT-IMERs significantly improved enzyme stability. All of the results indicated that the IMER prepared by this method had a broad application prospect in capillary electrophoresis-based high-performance enzyme analysis.


Chymotrypsin , Enzyme Stability , Enzymes, Immobilized , Imidazoles , Zeolites , Enzymes, Immobilized/chemistry , Enzymes, Immobilized/metabolism , Zeolites/chemistry , Imidazoles/chemistry , Chymotrypsin/metabolism , Chymotrypsin/chemistry , Metal-Organic Frameworks/chemistry , Hydrogen-Ion Concentration
10.
Microb Cell Fact ; 23(1): 155, 2024 May 27.
Article En | MEDLINE | ID: mdl-38802857

BACKGROUND: Rhizomucor miehei (RM) lipase is a regioselective lipase widely used in food, pharmaceutical and biofuel industries. However, the high cost and low purity of the commercial RM lipase limit its industrial applications. Therefore, it is necessary to develop cost-effective strategies for large-scale preparation of this lipase. The present study explored the high-level expression of RM lipase using superfolder green fluorescent protein (sfGFP)-mediated Escherichia coli secretion system. RESULTS: The sfGFP(-15) mutant was fused to the C-terminus of RM lipase to mediate its secretion expression. The yield of the fusion protein reached approximately 5.1 g/L with high-density fermentation in 5-L fermentors. Unlike conventional secretion expression methods, only a small portion of the target protein was secreted into the cell culture while majority of the fusion protein was still remained in the cytoplasm. However, in contrast to intracellular expression, the target protein in the cytoplasm could be transported efficiently to the supernatant through a simple washing step with equal volume of phosphate saline (PBS), without causing cell disruption. Hence, the approach facilitated the downstream purification step of the recombinant RM lipase. Moreover, contamination or decline of the engineered strain and degradation or deactivation of the target enzyme can be detected efficiently because they exhibited bright green fluorescence. Next, the target protein was immobilized with anion-exchange and macropore resins. Diethylaminoethyl sepharose (DEAE), a weak-basic anion-exchange resin, exhibited the highest bind capacity but inhibited the activity of RM lipase dramatically. On the contrary, RM lipase fixed with macropore resin D101 demonstrated the highest specific activity. Although immobilization with D101 didn't improve the activity of the enzyme, the thermostability of the immobilized enzyme elevated significantly. The immobilized RM lipase retained approximately 90% of its activity after 3-h incubation at 80 °C. Therefore, D101 was chosen as the supporting material of the target protein. CONCLUSION: The present study established a highly efficient strategy for large-scale preparation of RM lipase. This innovative technique not only provides high-purity RM lipase at a low cost but also has great potential as a platform for the preparation of lipases in the future.


Escherichia coli , Lipase , Rhizomucor , Lipase/genetics , Lipase/metabolism , Lipase/chemistry , Rhizomucor/enzymology , Rhizomucor/genetics , Escherichia coli/genetics , Escherichia coli/metabolism , Enzymes, Immobilized/metabolism , Enzymes, Immobilized/genetics , Enzymes, Immobilized/chemistry , Green Fluorescent Proteins/metabolism , Green Fluorescent Proteins/genetics , Recombinant Fusion Proteins/genetics , Recombinant Fusion Proteins/metabolism , Recombinant Fusion Proteins/chemistry , Recombinant Fusion Proteins/biosynthesis , Fermentation
11.
Biosens Bioelectron ; 259: 116417, 2024 Sep 01.
Article En | MEDLINE | ID: mdl-38795496

Assembling functional molecules on the surface of an enzyme electrode is the most basic technique for constructing a biosensor. However, precise control of electron transfer interface or electron mediator on the electrode surface remains a challenge, which is a key step that affects the stability and sensitivity of enzyme-based biosensors. In this study, we propose the use of controllable free radical polymerization to grow stable 2,2,6,6-tetramethylpiperidine-1-oxyl (TEMPO) polymer as electron mediator on enzyme surface for the first time. Through scanning electron microscopy (SEM), Raman spectroscopy, electrode surface coverage measurement, static contact angle (SCA), and a series of electrochemical methods, it has been demonstrated that the TEMPO-based enzyme electrode exhibits a uniform hydrophilic morphology and stable electrochemical performance. Furthermore, the results show that the sensor demonstrates high sensitivity for detecting glucose biomolecules in artificial sweat and serum. Attributing to the quantitative and controllable radical polymerization of TEMPO redox assembled enzyme electrode surface, the as-proposed biosensor providing a use, storage, and inter-batch sensing stability, providing a vital platform for wearable/implantable biochemical sensors.


Biosensing Techniques , Cyclic N-Oxides , Electrodes , Enzymes, Immobilized , Oxidation-Reduction , Polymerization , Biosensing Techniques/methods , Cyclic N-Oxides/chemistry , Enzymes, Immobilized/chemistry , Electrochemical Techniques/methods , Glucose/analysis , Glucose/chemistry , Glucose Oxidase/chemistry , Humans , Polymers/chemistry
12.
Int J Biol Macromol ; 269(Pt 2): 132196, 2024 Jun.
Article En | MEDLINE | ID: mdl-38723818

Enzymatic synthesis of biochemicals in vitro is vital in synthetic biology for its efficiency, minimal by-products, and easy product separation. However, challenges like enzyme preparation, stability, and reusability persist. Here, we introduced a protein scaffold and biosilicification coupled system, providing a singular process for the purification and immobilization of multiple enzymes. Using d-mannitol as a model, we initially constructed a self-assembling EE/KK protein scaffold for the co-immobilization of glucose dehydrogenase and mannitol dehydrogenase. Under an enzyme-to-scaffold ratio of 1:8, a d-mannitol yield of 0.692 mol/mol was achieved within 4 h, 2.16-fold higher than the free enzymes. The immobilized enzymes retained 70.9 % of the initial joint activity while the free ones diminished nearly to inactivity after 8 h. Furthermore, we incorporated the biosilicification peptide CotB into the EE/KK scaffold, inducing silica deposition, which enabled the one-step purification and immobilization process assisted by Spy/Snoop protein-peptide pairs. The coupled system demonstrated a comparable d-mannitol yield to that of EE/KK scaffold and 1.34-fold higher remaining activities after 36 h. Following 6 cycles of reaction, the immobilized system retained the capability to synthesize 56.4 % of the initial d-mannitol titer. The self-assembly co-immobilization platform offers an effective approach for enzymatic synthesis of d-mannitol and other biochemicals.


Enzymes, Immobilized , Mannitol , Mannitol/chemistry , Enzymes, Immobilized/chemistry , Enzymes, Immobilized/metabolism , Glucose 1-Dehydrogenase/metabolism , Glucose 1-Dehydrogenase/chemistry , Mannitol Dehydrogenases/metabolism , Mannitol Dehydrogenases/chemistry
13.
Int J Biol Macromol ; 268(Pt 2): 131939, 2024 May.
Article En | MEDLINE | ID: mdl-38692555

Human tyrosine hydroxylase (hTH) has key role in the production of catecholamine neurotransmitters. The structure, function and regulation of hTH has been extensively researched area and the possibility of enzyme replacement therapy (ERT) involving hTH through nanocarriers has been raised as well. However, our understanding on how hTH may interact with nanocarriers is still lacking. In this work, we attempted to investigate the immobilization of hTH on magnetic nanoparticles (MNPs) with various surface linkers in quantitative and mechanistic detail. Our results showed that the activity of hTH was retained after immobilization via secondary and covalent interactions as well. The colloidal stability of hTH could be also enhanced proved by Dynamic light scattering and Zeta potential analysis and a homogenous enzyme layer could be achieved, which was investigated by Raman mapping. The covalent attachment of hTH on MNPs via aldehyde or epoxy linkers provide irreversible immobilization and 38.1 % and 16.5 % recovery (ER). The hTH-MNPs catalyst had 25 % ER in average in simulated nasal electrolyte solution (SNES). This outcome highlights the relevance of immobilization applying MNPs as a potential formulation tool of sensitive therapeutic enzymes offering new opportunities for ERT related to neurodegenerative disorders.


Enzymes, Immobilized , Magnetite Nanoparticles , Tyrosine 3-Monooxygenase , Enzymes, Immobilized/chemistry , Enzymes, Immobilized/metabolism , Humans , Tyrosine 3-Monooxygenase/metabolism , Tyrosine 3-Monooxygenase/chemistry , Magnetite Nanoparticles/chemistry , Enzyme Stability
14.
Int J Biol Macromol ; 270(Pt 2): 132466, 2024 Jun.
Article En | MEDLINE | ID: mdl-38761904

Nanotechnology has become a revolutionary technique for improving the preliminary treatment of lignocellulosic biomass in the production of biofuels. Traditional methods of pre-treatment have encountered difficulties in effectively degrading the intricate lignocellulosic composition, thereby impeding the conversion of biomass into fermentable sugars. Nanotechnology has enabled the development of enzyme cascade processes that present a potential solution for addressing the limitations. The focus of this review article is to delve into the utilization of nanotechnology in the pretreatment of lignocellulosic biomass through enzyme cascade processes. The review commences with an analysis of the composition and structure of lignocellulosic biomass, followed by a discussion on the drawbacks associated with conventional pre-treatment techniques. The subsequent analysis explores the importance of efficient pre-treatment methods in the context of biofuel production. We thoroughly investigate the utilization of nanotechnology in the pre-treatment of enzyme cascades across three distinct sections. Nanomaterials for enzyme immobilization, enhanced enzyme stability and activity through nanotechnology, and nanocarriers for controlled enzyme delivery. Moreover, the techniques used to analyse nanomaterials and the interactions between enzymes and nanomaterials are introduced. This review emphasizes the significance of comprehending the mechanisms underlying the synergy between nanotechnology and enzymes establishing sustainable and environmentally friendly nanotechnology applications.


Biomass , Enzymes, Immobilized , Lignin , Nanotechnology , Nanotechnology/methods , Lignin/chemistry , Enzymes, Immobilized/chemistry , Enzymes, Immobilized/metabolism , Biofuels , Enzymes/chemistry , Enzymes/metabolism , Nanostructures/chemistry , Enzyme Stability
15.
Food Res Int ; 186: 114161, 2024 Jun.
Article En | MEDLINE | ID: mdl-38729685

In this article, the synthesis of antioxidant peptides in the enzymatic hydrolysis of caprine casein was analyzed at three different time points (60 min, 90 min, and 120 min) using immobilized pepsin on activated and modified carbon (AC, ACF, ACG 50, ACG 100). The immobilization assays revealed a reduction in the biocatalysts' activity compared to the free enzyme. Among the modified ones, ACG 50 exhibited greater activity and better efficiency for reuse cycles, with superior values after 60 min and 90 min. Peptide synthesis was observed under all studied conditions. Analyses (DPPH, ß-carotene/linoleic acid, FRAP) confirmed the antioxidant potential of the peptides generated by the immobilized enzyme. However, the immobilized enzyme in ACG 50 and ACG 100, combined with longer hydrolysis times, allowed the formation of peptides with an antioxidant capacity greater than or equivalent to those generated by the free enzyme, despite reduced enzymatic activity.


Antioxidants , Caseins , Enzymes, Immobilized , Glutaral , Goats , Iridoids , Pepsin A , Peptides , Antioxidants/chemistry , Enzymes, Immobilized/chemistry , Enzymes, Immobilized/metabolism , Caseins/chemistry , Animals , Pepsin A/metabolism , Pepsin A/chemistry , Glutaral/chemistry , Peptides/chemistry , Iridoids/chemistry , Hydrolysis , Charcoal/chemistry
16.
Langmuir ; 40(19): 10261-10269, 2024 May 14.
Article En | MEDLINE | ID: mdl-38693862

Carnosine is a natural bioactive dipeptide with important physiological functions widely used in food and medicine. Dipeptidase (PepD) from Serratia marcescens can catalyze the reverse hydrolytic reaction of ß-alanine with l-histidine to synthesize carnosine in the presence of Mn2+. However, it remains challenging to practice carnosine biosynthesis due to the low activity and high cost of the enzyme. Therefore, the development of biocatalysts with high activity and stability is of significance for carnosine synthesis. Here, we proposed to chelate Mn2+ to polyethylenimine (PEI) that induced rapid formation of calcium phosphate nanocrystals (CaP), and Mn-PEI@CaP was used for PepD immobilization via electrostatic interaction. Mn-PEI@CaP as the carrier enhanced the stability of the immobilized enzyme. Moreover, Mn2+ loaded in the carrier acted as an in situ activator of the immobilized PepD for facilitating the biocatalytic process of carnosine synthesis. The as-prepared immobilized enzyme (PepD-Mn-PEI@CaP) kept similar activity with free PepD plus Mn2+ (activity recovery, 102.5%), while exhibiting elevated thermal stability and pH tolerance. Moreover, it exhibited about two times faster carnosine synthesis than the free PepD system. PepD-Mn-PEI@CaP retained 86.8% of the original activity after eight cycles of batch catalysis without the addition of free Mn2+ ions during multiple cycles. This work provides a new strategy for the co-immobilization of PepD and Mn2+, which greatly improves the operability of the biocatalysis and demonstrates the potential of the immobilized PepD system for efficient carnosine synthesis.


Calcium Phosphates , Carnosine , Dipeptidases , Enzymes, Immobilized , Manganese , Nanoparticles , Polyethyleneimine , Carnosine/chemistry , Carnosine/metabolism , Polyethyleneimine/chemistry , Manganese/chemistry , Enzymes, Immobilized/chemistry , Enzymes, Immobilized/metabolism , Calcium Phosphates/chemistry , Nanoparticles/chemistry , Dipeptidases/metabolism , Dipeptidases/chemistry , Serratia marcescens/enzymology , Biocatalysis
17.
Molecules ; 29(9)2024 Apr 27.
Article En | MEDLINE | ID: mdl-38731512

Bioremediation uses the degradation abilities of microorganisms and other organisms to remove harmful pollutants that pollute the natural environment, helping return it to a natural state that is free of harmful substances. Organism-derived enzymes can degrade and eliminate a variety of pollutants and transform them into non-toxic forms; as such, they are expected to be used in bioremediation. However, since enzymes are proteins, the low operational stability and catalytic efficiency of free enzyme-based degradation systems need improvement. Enzyme immobilization methods are often used to overcome these challenges. Several enzyme immobilization methods have been applied to improve operational stability and reduce remediation costs. Herein, we review recent advancements in immobilized enzymes for bioremediation and summarize the methods for preparing immobilized enzymes for use as catalysts and in pollutant degradation systems. Additionally, the advantages, limitations, and future perspectives of immobilized enzymes in bioremediation are discussed.


Biodegradation, Environmental , Environmental Pollutants , Enzymes, Immobilized , Enzymes, Immobilized/chemistry , Enzymes, Immobilized/metabolism , Environmental Pollutants/metabolism , Environmental Pollutants/chemistry , Bioreactors , Hazardous Substances/metabolism
18.
ACS Sens ; 9(5): 2662-2672, 2024 May 24.
Article En | MEDLINE | ID: mdl-38689483

Dopamine (DA) signaling is critically important in striatal function, and this metabolically demanding process is fueled largely by glucose. However, DA and glucose are typically studied independently and, as such, the precise relationship between DA release and glucose availability remains unclear. Fast-scan cyclic voltammetry (FSCV) is commonly coupled with carbon-fiber microelectrodes to study DA transients. These microelectrodes can be modified with glucose oxidase (GOx) to generate microbiosensors capable of simultaneously quantifying real-time and physiologically relevant fluctuations of glucose, a nonelectrochemically active substrate, and DA, which is readily oxidized and reduced at the electrode surface. A chitosan hydrogel can be electrodeposited to entrap the oxidase enzyme on the sensor surface for stable, sensitive, and selective codetection of glucose and DA using FSCV. This strategy can also be used to entrap lactate oxidase on the carbon-fiber surface for codetection of lactate and DA. However, these custom probes are individually fabricated by hand, and performance is variable. This study characterizes the physical nature of the hydrogel and its effects on the acquired electrochemical data in the detection of glucose (2.6 mM) and DA (1 µM). The results demonstrate that the electrodeposition of the hydrogel membrane is improved using a linear potential sweep rather than a direct step to the target potential. Electrochemical impedance spectroscopy data relate information on the physical nature of the electrode/solution interface to the electrochemical performance of bare and enzyme-modified carbon-fiber microelectrodes. The electrodeposition waveform and scan rate were characterized for optimal membrane formation and performance. Finally, codetection of both DA/glucose and DA/lactate was demonstrated in intact rat striatum using probes fabricated according to the optimized protocol. Overall, this work improves the reliable fabrication of carbon-fiber microbiosensors for codetection of DA and important energetic substrates that are locally delivered to the recording site to meet metabolic demand.


Biosensing Techniques , Carbon Fiber , Dopamine , Glucose Oxidase , Glucose , Microelectrodes , Dopamine/analysis , Glucose/analysis , Carbon Fiber/chemistry , Biosensing Techniques/methods , Glucose Oxidase/chemistry , Glucose Oxidase/metabolism , Animals , Carbon/chemistry , Electrochemical Techniques/methods , Electrochemical Techniques/instrumentation , Hydrogels/chemistry , Rats , Rats, Sprague-Dawley , Brain/metabolism , Chitosan/chemistry , Mixed Function Oxygenases/chemistry , Mixed Function Oxygenases/metabolism , Enzymes, Immobilized/chemistry , Enzymes, Immobilized/metabolism
19.
Bioelectrochemistry ; 158: 108725, 2024 Aug.
Article En | MEDLINE | ID: mdl-38714062

An enzymatic amperometric uric acid (UA) biosensor was successfully developed by modifying a screen-printed carbon electrode (SPCE) with Prussian blue-poly(3,4-ethylene dioxythiophene) polystyrene sulfonate composite (PB-PEDOT:PSS). The modified SPCE was coated with gold nanoparticles-graphene oxide-chitosan composite cryogel (AuNPs-GO-CS cry). Uricase (UOx) was directly immobilized via chemisorption on AuNPs. The nanocomposite was characterized by scanning electron microscopy, transmission electron microscopy, ultraviolet-visible spectroscopy, and Fourier transform infrared spectroscopy. The electrochemical characterization of the modified electrode was performed by cyclic voltammetry and electrochemical impedance spectroscopy. UA was determined using amperometric detection based on the reduction current of PB which was correlated with the amount of H2O2 produced during the enzymatic reaction. Under optimal conditions, the fabricated UA biosensor in a flow injection analysis (FIA) system produced a linear range from 5.0 to 300 µmol L-1 with a detection limit of 1.88 µmol L-1. The proposed sensor was stable for up to 221 cycles of detection and analysis was rapid (2 min), with good reproducibility (RSDs < 2.90 %, n = 6), negligible interferences, and recoveries from 94.0 ± 3.9 to 101.1 ± 2.6 %. The results of UA detection in blood plasma were in agreement with the enzymatic colorimetric method (P > 0.05).


Biosensing Techniques , Cryogels , Electrodes , Gold , Graphite , Limit of Detection , Metal Nanoparticles , Uric Acid , Biosensing Techniques/methods , Uric Acid/blood , Uric Acid/analysis , Gold/chemistry , Graphite/chemistry , Cryogels/chemistry , Metal Nanoparticles/chemistry , Carbon/chemistry , Polymers/chemistry , Porosity , Flow Injection Analysis , Bridged Bicyclo Compounds, Heterocyclic/chemistry , Chitosan/chemistry , Polystyrenes/chemistry , Enzymes, Immobilized/chemistry , Enzymes, Immobilized/metabolism , Humans , Urate Oxidase/chemistry , Electrochemical Techniques/methods , Nanocomposites/chemistry , Ferrocyanides/chemistry
20.
Anal Chim Acta ; 1311: 342739, 2024 Jul 04.
Article En | MEDLINE | ID: mdl-38816161

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.


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
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