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1.
Mikrochim Acta ; 191(7): 416, 2024 06 24.
Article in English | MEDLINE | ID: mdl-38913162

ABSTRACT

To realize the reutilization of waste Myrica rubra in the analytical field, we synthesized Myrica rubra-based N-doped carbon dots (MN-CDs) and further anchored them onto the surface of Fe3S4 to fabricate Fe3S4@MN-CD nanocomposites. The as-fabricated nanocomposites possessed higher peroxidase-mimetic activity than its two precursors, resulting from the synergistic effect between them, and could catalyze colorless 3,3',5,5'-tetramethylbenzidine (TMB) into deep blue oxTMB with a strong 652-nm absorption. Under optimized conditions (initial solution pH, 3.5; incubation temperature, 35 ℃; Fe3S4@MN-CD concentration, 50 µg mL-1, and 652-nm absorption), Fe3S4@MN-CDs were employed for colorimetric assay of p-aminophenol (p-AP) with wide linear range (LR, 2.9-100 µM), low detection limit (LOD, 0.87 µM), and satisfactory recoveries (86.3-105%) in environmental waters. Encouragingly, this colorimetric assay provided the relative accuracy of 97.0-99.4% as compared with  conventional HPLC-UV detection. A portable smartphone-based colorimetric application was developed by combining the Fe3S4@MN-CD-based visually chromogenic reaction with a "Thing Identify" APP software. Besides, we engineered an image-capturing device feasible for field use, in which the internal-compact sealing prevented external light source from entering photography chamber, thereby reducing light interference, and also the bottom light source enhanced the intensity of blue imaging. This colorimetric platform exhibited satisfactory LR (1-500 µM), low LOD (0.3 µM), and fortification recoveries (86.6-99.6%). In the chromogenic reaction catalyzed by Fe3S4@MN-CDs, ·O2- played a key role in concomitant with the participation of •OH and h+. Both the colorimetric assay and smartphone-based intelligent sensing show great promising in on-site monitoring of p-AP under field conditions.


Subject(s)
Aminophenols , Carbon , Colorimetry , Limit of Detection , Quantum Dots , Smartphone , Water Pollutants, Chemical , Colorimetry/methods , Aminophenols/chemistry , Aminophenols/analysis , Carbon/chemistry , Water Pollutants, Chemical/analysis , Quantum Dots/chemistry , Biomimetic Materials/chemistry , Benzidines/chemistry , Peroxidase/chemistry
2.
Biosens Bioelectron ; 261: 116470, 2024 Oct 01.
Article in English | MEDLINE | ID: mdl-38852322

ABSTRACT

The aggravation of antibiotic resistance genes (ARGs) in the environment has posed a significant global health crisis. Accurate evaluation of ARGs levels in a facile manner is a pressing issue for environmental surveillance. Here, we demonstrate a unique dumbbell-shaped cascade nanozyme for visual/photoelectrochemical (PEC) dual-mode detection of ARGs. Gold nanoparticles (AuNPs) with tunable exposed facets are controllably anchored onto ZIF-8 dodecahedrons, exhibiting glucose oxidase (GOx)-like (ZIF-8@Au/G) and peroxidase (POD)-like (ZIF-8@Au/P) activities. Upon the occurrence of ARGs, an asymmetric cascade-amplified "dumbbell" configuration is spontaneously generated via target-induced DNA hybridization, comprising GOx-like ZIF-8@Au/G with capture DNA on one side and POD-like ZIF-8@Au/P with signal DNA on the opposite side. Such a cascade nano-system can efficiently oxidize colorless 2, 2'-azino-bis (3-ethylbenzothiazoline-6-sulfonic acid) into its green oxidation state and synergistically decompose H2O2, realizing colorimetric/PEC dual-mode ARGs detection with a detection limit of 0.112 nM. The applicability of the present bioassay is validated through measuring ARGs in real sludge samples. This work suggests the possibility to rationally design task-specific nanozymes and develop target-responsive nano-cascade assays for environmental monitoring.


Subject(s)
Biosensing Techniques , Colorimetry , Electrochemical Techniques , Gold , Metal Nanoparticles , Gold/chemistry , Biosensing Techniques/methods , Metal Nanoparticles/chemistry , Electrochemical Techniques/methods , Drug Resistance, Microbial/genetics , Hydrogen Peroxide/chemistry , Glucose Oxidase/chemistry , Limit of Detection , Peroxidase/chemistry , Metal-Organic Frameworks/chemistry , Zeolites/chemistry
3.
Biosens Bioelectron ; 261: 116468, 2024 Oct 01.
Article in English | MEDLINE | ID: mdl-38852326

ABSTRACT

Rational design of peroxidase (POD)-like nanozymes with high activity and specificity still faces a great challenge. Besides, the investigations of nanozymes inhibitors commonly focus on inhibition efficiency, the interaction between nanozymes-involved catalytic reactions and inhibitors is rarely reported. In this work, we design a p-block metal Sn-doped Pt (p-d/PtSn) nanozymes with the selective enhancement of POD-like activity. The p-d orbital hybridization interaction between Pt and Sn can effectively optimize the electronic structure of PtSn nanozymes and thus selectively enhance POD-like activity. In addition, the antioxidants as nanozymes inhibitors can effectively inhibit the POD-like activity of p-d/PtSn nanozymes, which results in the fact that antioxidants absorbed on the p-d/PtSn surface can hinder the adsorption of hydrogen peroxide. The inhibition type (glutathione as a model molecule) is reversible mixed-inhibition with inhibition constants (Ki' and Ki) of 0.21 mM and 0.03 mM. Finally, based on the varying inhibition levels of antioxidant molecules, a colorimetric sensor array is constructed to distinguish and simultaneously detect five antioxidants. This work is expected to design highly active and specific nanozymes through p-d orbital hybrid engineering, and also provides insights into the interaction between nanozymes and inhibitors.


Subject(s)
Antioxidants , Biosensing Techniques , Colorimetry , Platinum , Colorimetry/methods , Antioxidants/chemistry , Antioxidants/pharmacology , Antioxidants/analysis , Biosensing Techniques/methods , Platinum/chemistry , Peroxidase/chemistry , Hydrogen Peroxide/chemistry , Hydrogen Peroxide/analysis , Nanostructures/chemistry , Catalysis
4.
ACS Appl Mater Interfaces ; 16(24): 30958-30966, 2024 Jun 19.
Article in English | MEDLINE | ID: mdl-38833280

ABSTRACT

Iron sulfide nanomaterials represented by FeS2 and Fe3S4 nanozymes have attracted increasing attention due to their biocompatibility and peroxidase-like (POD-like) catalytic activity in disease diagnosis and treatments. However, the mechanism responsible for their POD-like activities remains unclear. Herein, taking the oxidation of 3,3,5,5-tetramethylbenzidine (TMB) by H2O2 on FeS2(100) and Fe3S4(001) surfaces, the catalytic mechanism was investigated in detail using density functional theory (DFT) calculations and experimental characterizations. Our experimental results showed that the catalytic activity of FeS2 nanozymes was significantly higher than that of Fe3S4 nanozymes. Our DFT calculations indicated that the surface iron ions of iron sulfide nanozymes could effectively catalyze the production of HO• radicals via the interactions between Fe 3d electrons and the frontier orbitals of H2O2 in the range of -10 to 5 eV. However, FeS2 nanozymes exhibited higher POD-like activity due to the surface Fe(II) binding to H2O2, forming inner-orbital complexes, which results in a larger binding energy and a smaller energy barrier for the base-like decomposition of H2O2. In contrast, the surface iron ions of Fe3S4 nanozymes bind to H2O2, forming outer-orbital complexes, which results in a smaller binding energy and a larger energy barrier for the base-like decomposition of H2O2. The charge transfer analysis showed that FeS2 nanozymes transferred 0.12 e and Fe3S4 nanozymes transferred 0.05 e from their surface iron ions to H2O2, respectively. The simulations were consistent with the experimental observations that the FeS2 nanozymes had a greater affinity for H2O2 compared to that of Fe3S4 nanozymes. This work provides a theoretical foundation for the rational design and accurate preparation of iron sulfide functional nanozymes.


Subject(s)
Hydrogen Peroxide , Nanostructures , Catalysis , Hydrogen Peroxide/chemistry , Nanostructures/chemistry , Density Functional Theory , Sulfides/chemistry , Benzidines/chemistry , Peroxidase/chemistry , Peroxidase/metabolism , Oxidation-Reduction , Ferrous Compounds/chemistry , Iron/chemistry
5.
Anal Chem ; 96(25): 10467-10475, 2024 Jun 25.
Article in English | MEDLINE | ID: mdl-38863336

ABSTRACT

"Signal-off" nanozyme sensing platforms are usually employed to detect analytes (e.g., ascorbic acid (AA) and alkaline phosphatase (ALP)), which are mostly based on oxidase (OXD) nanozymes. However, their drawbacks, like dissolved oxygen-dependent catalysis capability, relatively low enzyme activity, limited amount, and kind, may not favor sensing platforms' optimization. Meanwhile, with the need for sustainable development, a reusable "signal-off" sensing platform is essential for cutting down the cost of the assay, but it is rarely developed in previous studies. Magnetic peroxidase (POD) nanozymes potentially make up the deficiencies and become reusable and better "signal-off" sensing platforms. As a proof of concept, we first construct Fe3O4@polydopamine-supported Pt/Ru alloy nanoparticles (IOP@Pt/Ru) without stabilizers. IOP@Pt/Ru shows high POD activity with Vmax of 83.24 × 10-8 M·s-1 for 3,3',5,5'-Tetramethylbenzidine (TMB) oxidation. Meanwhile, its oxidation rate for TMB is slower than the reduction of oxidized TMB by reducers, favorable for a more significant detection signal. On the other hand, IOP@Pt/Ru possesses great magnet-responsive capability, making itself be recycled and reused for at least 15-round catalysis. When applying IOP@Pt/Ru for AA (ALP) detection, it performs better detectable adaptability, with a linear range of 0.01-0.2 mM (0.1-100 U/L) and a limit of detection of 0.01 mM (0.05 U/L), superior to most of OXD nanozyme-based ALP sensing platform. Finally, IOP@Pt/Ru's reusable assay was demonstrated in real blood samples for ALP assay, which has never been explored in previous studies. Overall, this study develops a reusable "signal-off" nanozyme sensing platform with superior assay capabilities than traditional OXD nanozymes, paves a new way to optimize nanozyme-based "signal-off" sensing platforms, and provides an idea for constructing inexpensive and sustainable sensing platforms.


Subject(s)
Alloys , Peroxidase , Platinum , Platinum/chemistry , Alloys/chemistry , Peroxidase/chemistry , Peroxidase/metabolism , Benzidines/chemistry , Limit of Detection , Oxidation-Reduction , Polymers/chemistry , Humans , Catalysis , Biosensing Techniques/methods , Ascorbic Acid/analysis , Ascorbic Acid/chemistry , Indoles
6.
Mikrochim Acta ; 191(7): 384, 2024 06 11.
Article in English | MEDLINE | ID: mdl-38861028

ABSTRACT

Multifunctional N, Fe-doped carbon dots (N, Fe-CDs) were synthesized by the one-step hydrothermal method using ferric ammonium citrate and dicyandiamide as raw materials. The N, Fe-CDs exhibited peroxidase-like (POD) activity by catalyzing the oxidization of 3,3',5,5'-tetramethylbenzidine (TMB) to the green oxidation state ox-TMB in the presence of hydrogen peroxide (H2O2). Subsequently, based on the POD activity of N, Fe-CDs, an efficient and sensitive colorimetric method for the detection of H2O2 and ascorbic acid (AA) was established with a limit of detection of 0.40 µM and 2.05 µM. The proposed detection method has been successfully applied to detect AA in fruit juice, vitamin C tablets, and human serum samples and has exhibited excellent application prospects in biotechnology and food fields. Furthermore, N, Fe-CDs also showed a protective effect on the cell damage caused by H2O2 and could be used as an antioxidant agent.


Subject(s)
Ascorbic Acid , Carbon , Fruit and Vegetable Juices , Hydrogen Peroxide , Oxidation-Reduction , Quantum Dots , Hydrogen Peroxide/chemistry , Ascorbic Acid/chemistry , Humans , Carbon/chemistry , Quantum Dots/chemistry , Fruit and Vegetable Juices/analysis , Benzidines/chemistry , Colorimetry/methods , Limit of Detection , Iron/chemistry , Nitrogen/chemistry , Peroxidase/chemistry , Peroxidase/metabolism , Antioxidants/chemistry , Antioxidants/pharmacology
7.
Langmuir ; 40(24): 12671-12680, 2024 Jun 18.
Article in English | MEDLINE | ID: mdl-38853520

ABSTRACT

The design of single-atom nanozymes with dual active sites to increase their activity and for the detection and degradation of contaminants is rare and challenging. In this work, a single-atom nanozyme (FeCu-NC) based on a three-dimensional porous Fe/Cu dual active site was developed as a colorimetric sensor for both the quantitative analysis of isoniazid (INH) and the efficient degradation of levofloxacin (LEV). FeCu-NC was synthesized using a salt template and freeze-drying method with a three-dimensional hollow porous structure and dual active sites (Fe-Nx and Cu-Nx). In terms of morphology and structure, FeCu-NC exhibits excellent peroxidase-like activity and catalytic properties. Therefore, a colorimetric sensor was constructed around FeCu-NC for sensitive and rapid quantitative analysis of INH with a linear range of 0.9-10 µM and a detection limit as low as 0.3 µM, and the sensor was successfully applied to the analysis of INH in human urine. In addition, FeCu-NC promoted the efficient degradation of LEV by peroxymonosulfate activation, with a degradation rate of 90.4% for LEV at 30 min. This work sheds new light on the application of single-atom nanozymes to antibiotics for colorimetric sensing and degradation.


Subject(s)
Copper , Iron , Isoniazid , Levofloxacin , Isoniazid/chemistry , Isoniazid/analysis , Levofloxacin/urine , Levofloxacin/analysis , Levofloxacin/chemistry , Iron/chemistry , Copper/chemistry , Humans , Peroxidase/chemistry , Peroxidase/metabolism , Colorimetry/methods , Nanostructures/chemistry , Catalysis
8.
Molecules ; 29(11)2024 Jun 06.
Article in English | MEDLINE | ID: mdl-38893568

ABSTRACT

We present the synthesis of a cross-linking enzyme aggregate (CLEAS) of a peroxidase from Megathyrsus maximus (Guinea Grass) (GGP). The biocatalyst was produced using 50%v/v ethanol and 0.88%w/v glutaraldehyde for 1 h under stirring. The immobilization yield was 93.74% and the specific activity was 36.75 U mg-1. The biocatalyst surpassed by 61% the free enzyme activity at the optimal pH value (pH 6 for both preparations), becoming this increase in activity almost 10-fold at pH 9. GGP-CLEAS exhibited a higher thermal stability (2-4 folds) and was more stable towards hydrogen peroxide than the free enzyme (2-3 folds). GGP-CLEAS removes over 80% of 0.05 mM indigo carmine at pH 5, in the presence of 0.55 mM H2O2 after 60 min of reaction, a much higher value than when using the free enzyme. The operational stability showed a decrease of enzyme activity (over 60% in 4 cycles), very likely related to suicide inhibition.


Subject(s)
Enzymes, Immobilized , Hydrogen Peroxide , Indigo Carmine , Peroxidase , Indigo Carmine/chemistry , Peroxidase/metabolism , Peroxidase/chemistry , Enzymes, Immobilized/chemistry , Enzymes, Immobilized/metabolism , Hydrogen-Ion Concentration , Hydrogen Peroxide/chemistry , Enzyme Stability , Cross-Linking Reagents/chemistry , Temperature , Glutaral/chemistry
9.
ACS Nano ; 18(19): 12367-12376, 2024 May 14.
Article in English | MEDLINE | ID: mdl-38695521

ABSTRACT

Bimetallic nanoparticles (NPs) with peroxidase-like (POD-like) activity play a crucial role in biosensing, disease treatment, environmental management, and other fields. However, their development is impeded by a vast range of tunable properties in components and structures, making the establishment of structure-effect relationships and the discovery of active materials challenging. Addressing this, we established robust scaling relationships by meticulously analyzing the catalytic reaction networks of pure metal NPs, which laid the volcano-shaped correlation between the activity and O* adsorption energy. Utilizing these relationships, we introduced an innovative and versatile descriptor of the NPs, which was then integrated into a machine learning-accelerated high-throughput computational workflow, significantly boosting the predictive accuracy for the POD-like activity of bimetallic NPs. Our methodological approach enabled the successful prediction of activities for 1260 bimetallic NPs, leading to the identification of several highly effective catalysts. Furthermore, we distilled several strategies for designing efficient bimetallic NPs based on our screening results.


Subject(s)
Machine Learning , Metal Nanoparticles , Metal Nanoparticles/chemistry , Catalysis , Peroxidase/chemistry , Peroxidase/metabolism , High-Throughput Screening Assays/methods
10.
Colloids Surf B Biointerfaces ; 239: 113950, 2024 Jul.
Article in English | MEDLINE | ID: mdl-38744078

ABSTRACT

High-purity carbon dots (CDs) with a highly π-conjugated sp2-hybridized graphite structure were prepared by the pulse electrolysis method using the graphite plate as raw material. Photoacoustic signal together with photothermal effect was found in the CDs-dispersed suspensions under near-infrared (NIR) irradiation. For the suspension with the CDs concentration of 500 µg/mL, the photothermal conversion efficiency is high up 64.3% and the solution's temperature can be increased to 82.2 °C under NIR irradiation. Moreover, CDs can be effectively endocytosed by human hepatoma (HepG2) cells with a few hours, act as peroxidase nanozyme to decompose H2O2 and facilitate the production of reactive oxygen species. Under NIR irradiation, CDs exhibit an outstanding apoptosis-inducing effect on HepG2 cells by the photothermal effect. In addition, in vivo experiments show that CDs can be used in photoacoustic imaging (PAI) and guiding the tumor treatment. As a result, the nucleus-targeted CDs with an unique combination of PAI and photothermal effect have potential in cancer diagnosis and treatment.


Subject(s)
Carbon , Photoacoustic Techniques , Phototherapy , Quantum Dots , Humans , Photoacoustic Techniques/methods , Carbon/chemistry , Carbon/pharmacology , Hep G2 Cells , Quantum Dots/chemistry , Animals , Mice , Cell Nucleus/metabolism , Peroxidase/metabolism , Peroxidase/chemistry , Particle Size , Apoptosis/drug effects , Hydrogen Peroxide/metabolism , Hydrogen Peroxide/chemistry , Mice, Inbred BALB C , Reactive Oxygen Species/metabolism
11.
J Mater Chem B ; 12(22): 5418-5430, 2024 Jun 05.
Article in English | MEDLINE | ID: mdl-38716837

ABSTRACT

Constructing metal-organic gels (MOGs) with enzyme-catalyzed activity and studying their catalytic mechanism are crucial for the development of novel nanozyme materials. In this study, a Co@Fe MOG with excellent peroxidase activity was developed by a simple and mild one-pot process. The results showed that the material exhibited almost a single peroxidase activity under optimal pH conditions, which allowed it to attract and oxidize the chromogenic substrate 3,3',5,5'-tetramethylbenzidine (TMB). Based on the active electron transfer between the metal centers and the organic ligand in the synthetic material, the Co@Fe MOG-H2O2-TMB system was verified to be able to detect H2O2 and citric acid (CA). The catalytic microenvironment formed by the adsorption and the catalytic center accelerated the electron-transfer rate, which expedited the generation of hydroxyl radicals (˙OH, a kind of reactive oxygen species (ROS)) in the presence of H2O2. The persistence and high intensity of ˙OH generation were proven, which would endow Co@Fe MOG with a certain antibacterial ability, promoting the healing of bacteria-infected wounds. In conclusion, this study contributes to the development efforts toward the application systems of nanozymes for marker detection and antibacterial activity.


Subject(s)
Anti-Bacterial Agents , Cobalt , Colorimetry , Gels , Iron , Peroxidase , Anti-Bacterial Agents/pharmacology , Anti-Bacterial Agents/chemistry , Iron/chemistry , Cobalt/chemistry , Colorimetry/methods , Gels/chemistry , Peroxidase/metabolism , Peroxidase/chemistry , Porosity , Metal-Organic Frameworks/chemistry , Metal-Organic Frameworks/pharmacology , Hydrogen Peroxide/analysis , Hydrogen Peroxide/metabolism , Hydrogen Peroxide/chemistry , Microbial Sensitivity Tests , Escherichia coli/drug effects , Escherichia coli/enzymology , Staphylococcus aureus/drug effects , Particle Size , Catalysis
12.
Mikrochim Acta ; 191(6): 331, 2024 05 15.
Article in English | MEDLINE | ID: mdl-38744722

ABSTRACT

A broad host range phage-based nanozyme (Fe-MOF@SalmpYZU47) was prepared for colorimetric detection of multiple Salmonella enterica strains. The isolation of a broad host range phage (SalmpYZU47) capable of infecting multiple S. enterica strains was achieved. Then, it was directly immobilized onto the Fe-MOF to prepare Fe-MOF@SalmpYZU47, exhibiting peroxidase-like activity. The peroxidase-like activity can be specifically inhibited by multiple S. enterica strains, benefiting from the broad host range capture ability of Fe-MOF@SalmpYZU47. Based on it, a colorimetric detection approach was developed for S. enterica in the range from 1.0 × 102 to 1.0 × 108 CFU mL-1, achieving a low limit of detection (LOD) of 11 CFU mL-1. The Fe-MOF@SalmpYZU47 was utilized for detecting S. enterica in authentic food samples, achieving recoveries ranging from 91.88 to 105.34%. Hence, our proposed broad host range phage-based nanozyme exhibits significant potential for application in the colorimetric detection of pathogenic bacteria.


Subject(s)
Colorimetry , Limit of Detection , Metal-Organic Frameworks , Salmonella enterica , Colorimetry/methods , Salmonella enterica/isolation & purification , Salmonella enterica/chemistry , Metal-Organic Frameworks/chemistry , Food Microbiology/methods , Food Contamination/analysis , Peroxidase/chemistry
13.
Anal Methods ; 16(23): 3663-3674, 2024 Jun 13.
Article in English | MEDLINE | ID: mdl-38804266

ABSTRACT

The present study describes an efficient method for the determination of polyphenol content in beverages based on a composite material of graphene oxide decorated with Prussian blue nanocubes (rGO/PBNCs). In this method, rGO/PBNCs act as a nanoenzyme with peroxidase-like catalytic activity and produce a colorimetric product in the presence of hydrogen peroxide and tetramethylbenzidine (TMB). To verify the effectiveness of the method, we used two model standards for antioxidants: gallic acid (GA) and tannic acid (TA). The method validation included a comparison of the performance of a natural enzyme and an artificial one (rGO/PBNCs) and two polyphenols in the analysis of commercial beverage samples. After optimization, a pH of 4, ambient temperature (22 °C), a reaction time of 2 minutes and an rGO/PBNCs concentration of 0.01 µg mL-1 were found to be the most favorable conditions. The detection limits obtained were 5.6 µmol L-1 for GA and 1.5 µmol L-1 for TA. Overall, rGO/PBNCs offer advantages over natural enzymes in terms of stability, versatility, scalability and durability, making them attractive candidates for a wide range of catalytic and sensory applications.


Subject(s)
Beverages , Ferrocyanides , Graphite , Polyphenols , Polyphenols/analysis , Polyphenols/chemistry , Ferrocyanides/chemistry , Graphite/chemistry , Beverages/analysis , Colorimetry/methods , Limit of Detection , Peroxidase/chemistry , Gallic Acid/chemistry , Gallic Acid/analysis , Tannins/chemistry , Tannins/analysis , Hydrogen Peroxide/chemistry , Benzidines/chemistry , Antioxidants/chemistry , Antioxidants/analysis
14.
Talanta ; 276: 126207, 2024 Aug 15.
Article in English | MEDLINE | ID: mdl-38718650

ABSTRACT

Metal-Organic Framework (MOF) based nanozymes with clear structure are beneficial for exploration of structural-performance and exhibit broad prospects in improving activity. In this study, the prepared bimetallic Fe3Ni-MOF nanozyme was superior to single metal MOF in the peroxidase-like activity. Subsequently, a derivative nanozyme (Fe3Ni-MOF-Ar) was prepared by pyrolysis using Fe3Ni-MOF as the precursor in argon atomoshere with controlled temperature. The investigated of Fe3Ni-MOF-Ar revealed that the irregular macroporous state and the presence of heterovalent FeIII/FeII sites of Fe3Ni-MOF-Ar enable the retention, exposure, and electronic structure regulation of active sites, promoting the dual mechanism (the generation of •OH and electron transfer mechanism) and significantly increasing the peroxidase-like activity. Fe3Ni-MOF-Ar exhibited a strong affinity for substrate H2O2, which is higher than horseradish peroxidase. Ascorbic acid and cysteine are typical substances of antioxidants. Fe3Ni-MOF-Ar was used for sensitive colorimetric detection of ascorbic acid and cysteine, and the detection limit was as low as 150 and 60 nM. In addition, the smartphone devices was used to detection of antioxidant equivalent ascorbic acid, with a detection range of 0.5-120 µM. Fe3Ni-MOF-Ar nanozyme is feasible for sensitive detection of saliva total antioxidant capacity.


Subject(s)
Antioxidants , Ascorbic Acid , Metal-Organic Frameworks , Saliva , Smartphone , Saliva/chemistry , Metal-Organic Frameworks/chemistry , Humans , Antioxidants/analysis , Antioxidants/chemistry , Ascorbic Acid/analysis , Ascorbic Acid/chemistry , Catalytic Domain , Hydrogen Peroxide/chemistry , Hydrogen Peroxide/analysis , Peroxidase/chemistry , Peroxidase/metabolism , Cysteine/analysis , Cysteine/chemistry , Colorimetry/methods , Nickel/chemistry , Limit of Detection
15.
Talanta ; 276: 126209, 2024 Aug 15.
Article in English | MEDLINE | ID: mdl-38728802

ABSTRACT

The rapid development of nanozymes has offered substantial opportunities for the fields of biomedicine, chemical sensing, and food safety. Among these applications, multichannel sensors, with the capability of simultaneously detecting multiple target analytes, hold promise for the practical application of nanozymes in chemical sensing with high detection efficiency. In this study, Rh-decorated Pd nanocubes (Pd-Rh nanocubes) with significantly enhanced peroxidase-like activity are synthesized through the mediation of underpotential deposition (UPD) and subsequently employed to develop a multichannel colorimetric sensor for discriminating tea polyphenols (TPs) and tea authentication. Based on a single reactive unit of efficient catalytic oxidation of 3,3',5,5'-tetramethylbenzidine dihydrochloride (TMB), the nanozyme-based multichannel colorimetric sensor responds to each analyte in as short as 1 min. With the aid of principal component analysis (PCA) and hierarchical cluster analysis (HCA), various TPs and types of tea can be accurately identified. This work not only provides a new type of simply structured and highly active nanozymes but also develops a concise and rapid multichannel sensor for practical application in tea authentication and quality inspection.


Subject(s)
Colorimetry , Palladium , Polyphenols , Tea , Tea/chemistry , Polyphenols/analysis , Polyphenols/chemistry , Colorimetry/methods , Palladium/chemistry , Benzidines/chemistry , Metal Nanoparticles/chemistry , Principal Component Analysis , Peroxidase/chemistry , Catalysis , Oxidation-Reduction
16.
Talanta ; 276: 126219, 2024 Aug 15.
Article in English | MEDLINE | ID: mdl-38733936

ABSTRACT

This study presents a potent paper-based analytical device (PAD) for quantifying various sugars using an innovative bi-nanozyme made from a 2-dimensional Fe/Ce metal-organic framework (FeCe-BTC). The MOF showed excellent bifunctional peroxidase-oxidase activities, efficiently catalyzing luminol's chemiluminescence (CL) reaction. As a peroxidase-like nanozyme, FeCe-BTC could facilitate the dissociation of hydrogen peroxide (H2O2) into hydroxyl radicals, which then oxidize luminol. Additionally, it was also discovered that when reacting with H2O2, the MOF turns into a mixed-valence MOF, and acts as an oxidase nanozyme. This activity is caused by the generated Ce4+ ions in the structure of MOF that can directly oxidize luminol. The MOF was directly synthesized on the PAD and cascaded with specific natural enzymes to establish simple, rapid, and selective CL sensors for the measurement of different sugars. A cell phone was also used to record light intensities, which were then correlated to the analyte concentration. The designed PAD showed a wide linear range of 0.1-10 mM for glucose, fructose, and sucrose, with detection limits of 0.03, 0.04, and 0.04 mM, respectively. It showed satisfactory results in food and biological samples with recovery values ranging from 95.8 to 102.4 %, which makes it a promising candidate for point-of-care (POC) testing for food control and medicinal purposes.


Subject(s)
Luminescent Measurements , Luminol , Metal-Organic Frameworks , Paper , Smartphone , Luminol/chemistry , Metal-Organic Frameworks/chemistry , Luminescent Measurements/methods , Iron/chemistry , Iron/analysis , Cerium/chemistry , Peroxidase/chemistry , Peroxidase/metabolism , Hydrogen Peroxide/chemistry , Hydrogen Peroxide/analysis , Oxidoreductases/chemistry , Oxidoreductases/metabolism , Sugars/analysis , Sugars/chemistry , Biomimetic Materials/chemistry , Luminescence
17.
Food Chem ; 454: 139757, 2024 Oct 01.
Article in English | MEDLINE | ID: mdl-38805924

ABSTRACT

Vibrio vulnificus infection caused by contaminated aquatic products and seawater can lead to severe disease and high mortality. The development of a rapid and sensitive detection method for Vibrio vulnificus is vital to effectively prevent infection in advance. In this study, CeO2@PtRu with high peroxidase activity was used to construct a colorimetric immunoassay for Vibrio vulnificus detection by conjugating polyclonal antibodies via the biotin-streptavidin system. The developed colorimetric biosensor for Vibrio vulnificus demonstrated rapid operability and good sensitivity with a detection range from 104 CFU/mL to 109 CFU/mL, and the limit of detection (LOD) is 193 CFU/mL. Moreover, the colorimetric biosensor showed excellent specificity and good recoveries from 98.70% to 102.10% with RSD < 7.45% for spiked real samples. This novel CeO2@PtRu-based colorimetric biosensor has great application potential for the sensitive detection of Vibrio vulnificus in seafood.


Subject(s)
Biosensing Techniques , Cerium , Colorimetry , Seafood , Vibrio vulnificus , Vibrio vulnificus/isolation & purification , Biosensing Techniques/instrumentation , Seafood/microbiology , Seafood/analysis , Cerium/chemistry , Peroxidase/metabolism , Peroxidase/chemistry , Limit of Detection , Food Contamination/analysis , Animals
18.
Anal Methods ; 16(22): 3530-3538, 2024 Jun 06.
Article in English | MEDLINE | ID: mdl-38779841

ABSTRACT

Biomolecules play vital roles in many biological processes and diseases, making their identification crucial. Herein, we present a colorimetric sensing method for detecting biomolecules like cysteine (Cys), homocysteine (Hcy), and glutathione (GSH). This approach is based on a reaction system whereby colorless 3,3',5,5'-tetramethylbenzidine (TMB) undergoes catalytic oxidation to form blue-colored oxidized TMB (ox-TMB) in the presence of hydrogen peroxide (H2O2), utilizing the peroxidase and catalase-mimicking activities of metal-phenolic coordination frameworks (MPNs) of Cu-TA, Co-TA, and Fe-TA nanospheres. The Fe-TA nanospheres demonstrated superior activity, more active sites and enhanced electron transport. Under optimal conditions, the Fe-TA nanospheres were used for the detection of biomolecules. When present, biomolecules inhibit the reaction between TMB and H2O2, causing various colorimetric responses at low detection limits of 0.382, 0.776 and 0.750 µM for Cys, Hcy and GSH. Furthermore, it was successfully applied to real water samples with good recovery results. The developed sensor not only offers a rapid, portable, and user-friendly technique for multi-target analysis of biomolecules at low concentrations but also expands the potential uses of MPNs for other targets in the environmental field.


Subject(s)
Benzidines , Colorimetry , Cysteine , Glutathione , Hydrogen Peroxide , Colorimetry/methods , Hydrogen Peroxide/chemistry , Glutathione/chemistry , Glutathione/analysis , Cysteine/chemistry , Cysteine/analysis , Benzidines/chemistry , Homocysteine/analysis , Homocysteine/chemistry , Metal-Organic Frameworks/chemistry , Limit of Detection , Phenols/chemistry , Phenols/analysis , Oxidation-Reduction , Catalysis , Peroxidase/chemistry , Catalase/chemistry
19.
Anal Methods ; 16(22): 3562-3576, 2024 Jun 06.
Article in English | MEDLINE | ID: mdl-38780406

ABSTRACT

In this study, we proposed a colorimetric probe as S, N-carbon dot-decorated Ce-MOF (S, N-CD@Ce-MOF) for the dual detection of mercury and thiophanate methyl (TM), which are simultaneously present pollutants in the environment and foodstuffs. These pollutants cause serious threats to human health, such as carcinogenicity and neurovirulence. Herein, we synthesized S, N-CD@Ce-MOF using the hydrothermal method and applied it to a "turn-off-on" probe to detect mercury and TM using the colorimetric method in water and food samples. S, N-CD@Ce-MOF shows excellent peroxidase activity by catalyzing the chromogenic substrate of 3,3',5,5'-tetramethylbenzidine (TMB), resulting in deep blue-colored oxidized TMB product (ox TMB) in the presence of H2O2 with a UV absorption wavelength at 654 nm. However, the addition of Hg(II) ions prohibits the oxidation of TMB by an electron transfer effect and easily binds with -S, -N-containing sites on the surface of carbon dots, obstructing the catalytic active sites and decreasing catalytic efficiency with weak UV absorption at 654 nm as a "turn-off". Subsequently, the addition of TM to the above sensing solution as a "turn-on" was triggered by the TM-Hg complex formation and permitted TMB oxidation with a strong absorption peak at 654 nm. Furthermore, this proposed sensor demonstrates a superior linear response to mercury ions and TM in the ranges from 0 to 15 µM and 0 to 14 µM, respectively. The developed colorimetric assay exhibits good sensitivity and selectivity against various possible interferences. Furthermore, we found that the limits of detection for Hg2+ and TM were as low as 0.01 µM and 0.03 µM, respectively. The developed sensor provides various benefits, such as cost-effectiveness, simplicity without a complex detection process, and naked-eye detection. Consequently, our proposed colorimetric technique worked well for the detection of Hg2+ in real water samples and TM in real apple and tomato juice.


Subject(s)
Carbon , Cerium , Colorimetry , Mercury , Quantum Dots , Colorimetry/methods , Mercury/analysis , Mercury/chemistry , Carbon/chemistry , Cerium/chemistry , Quantum Dots/chemistry , Metal-Organic Frameworks/chemistry , Limit of Detection , Peroxidase/chemistry , Peroxidase/metabolism , Water Pollutants, Chemical/analysis , Water Pollutants, Chemical/chemistry , Oxidation-Reduction
20.
J Phys Chem Lett ; 15(22): 5804-5813, 2024 Jun 06.
Article in English | MEDLINE | ID: mdl-38781458

ABSTRACT

Nanozymes are unique materials with many valuable properties for applications in biomedicine, biosensing, environmental monitoring, and beyond. In this work, we developed a machine learning (ML) approach to search for new nanozymes and deployed a web platform, DiZyme, featuring a state-of-the-art database of nanozymes containing 1210 experimental samples, catalytic activity prediction, and DiZyme Assistant interface powered by a large language model (LLM). For the first time, we enable the prediction of multiple catalytic activities of nanozymes by training an ensemble learning algorithm achieving R2 = 0.75 for the Michaelis-Menten constant and R2 = 0.77 for the maximum velocity on unseen test data. We envision an accurate prediction of multiple catalytic activities (peroxidase, oxidase, and catalase) promoting novel applications for a wide range of surface-modified inorganic nanozymes. The DiZyme Assistant based on the ChatGPT model provides users with supporting information on experimental samples, such as synthesis procedures, measurement protocols, etc. DiZyme (dizyme.aicidlab.itmo.ru) is now openly available worldwide.


Subject(s)
Machine Learning , Catalysis , Catalase/chemistry , Catalase/metabolism , Nanostructures/chemistry , Oxidoreductases/chemistry , Oxidoreductases/metabolism , Peroxidase/chemistry , Peroxidase/metabolism , Algorithms
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