Organic Framework-Based Nanozymes: Design, Property, and Application
Abstract
1. Introduction
2. Nanozymes Based on Metal–Organic Frameworks
2.1. Original MOF-Based Nanozymes

2.2. Chemically Modified MOF-Based Nanozymes
2.3. MOF-Based Composite Nanozymes
2.4. MOF-Derived Nanozymes
| Category | Nanozyme | Mimic Enzyme | Km | Vmax | Ref. |
|---|---|---|---|---|---|
| Original MOF-based nanozymes | ZIF-67 | Oxidase | -- | -- | [37] |
| Peroxidase | -- | -- | |||
| Ce-UiO-66 | Catalase | -- | -- | [27] | |
| MIL-101(FeII) | Peroxidase | 0.031 mM | 6.54 × 10−8 M/s | [68] | |
| FCMP@CQ/PFH | Oxidase Peroxidase | -- -- | -- -- | [39] | |
| Cu-hemin MOF | Oxidase Peroxidase | -- -- | -- -- | [29] | |
| MIL-88B | Peroxidase | 0.6950 mM | -- | [38] | |
| 2D MOFs | Catalase | -- | -- | [4] | |
| Chemically modified MOF-based nanozymes | NixFe-MOF | Peroxidase | 0.068 mM | 2.92 × 10−7 M/s | [42] |
| CeOx@fMIL | Catalase | -- | -- | [69] | |
| BCL@MTV-ZIF-8 BCL@HZIF-8 | Lipase | -- -- | -- -- | [70] | |
| CAT/mNMZIF-8 | Catalase | 0.059 ± 0.0003 M | 0.012 ± 0.0006 M/min | [71] | |
| MIL-53(Fe)-X MIL-101(Fe) MIL-53(Cr)-X | Laccase | -- -- -- | -- -- -- | [44] | |
| Cu2+-NMOFs | Peroxidase | -- | -- | [46] | |
| NO2-MIL-101(Fe) NH2-MIL-101(Fe) | Peroxidase | 0.85 × 10−3 M 1.8 × 10−3 M | 3.2 × 10−8 M/s 0.8 × 10−8 M/s | [45] | |
| SEH@UiO-66-NH2 | Hydrolase | 6.5 mM | 5.2 × 10−2 mM/min | [41] | |
| MOF-based composite nanozymes | Cu2O/Cu-MOF/Fe-MIL-88B | Peroxidase | 0.096 mmol/L | -- | [54] |
| Cu-DPATZ-POM/g-C3N4(1) | Peroxidase | 0.167 mM | 10.01 × 10−8 M/s | [72] | |
| CeOx@fZIF | Peroxidase | 0.322 mM | 19.9 × 10−8 M/s | [48] | |
| NR@H-ZIF-8@Pt | Peroxidase | -- | -- | [49] | |
| Fe3O4-MOF-Pt | Peroxidase | -- | -- | [50] | |
| SiO2@PB-IR1061 | Catalase Peroxidase Superoxide dismutase | -- -- -- | -- -- -- | [51] | |
| BSA@HRP@TMB@ZIF-8 | Peroxidase | -- | -- | [5] | |
| NH2-MIL-101(Fe)@Au@MIP | Peroxidase | -- | -- | [65] | |
| ADA@ZIF-67 | Peroxidase | 0.26 mM | 1.61 × 10−8 M/s | [73] | |
| UiO-66@GOx@Au | Glucose oxidase | -- | -- | [74] | |
| UiO-66-NH2/CeO2/Cel@HA | Catalase Superoxide dismutase | -- | -- | [63] | |
| HA-MIL-100@Pt@CyI | Catalase | -- | -- | [75] | |
| CuAuPt/Cu-TCPP(Fe) | Peroxidase | 42.3 μM | 1.86 × 10−8 M/s | [76] | |
| FA-EM@MnO2/ZIF-8/ICG | Catalase | -- | -- | [77] | |
| DOX@COD-MOF@CCM | Peroxidase | -- | -- | [64] | |
| GOx/MNP@aZIF-90 | Peroxidase | -- | -- | [78] | |
| ChOx@MOF | Peroxidase | -- | -- | [62] | |
| GOx/Hemin@NC-ZIF | Peroxidase | -- | 26.4 × 10−8 M/s | [79] | |
| Hemin@BSA@ZIF-8 | Peroxidase | 0.105 mM | -- | [80] | |
| GOx@HP-PCN-222(Fe) | Peroxidase | -- | -- | [60] | |
| ZIF-67-Au@Pt | Peroxidase | -- | -- | [52] | |
| GOx&PVI-hemin@ZIF-8 | Peroxidase | -- | -- | [55] | |
| Tb-OBBA-Hemin | Peroxidase | 0.048 mM | 0.26 Μm/s | [81] | |
| ΜFe2O4@MOF | Catalase Glutathione peroxidase | -- | -- | [53] | |
| PtNPs/Cu-TCPP(Fe) | Peroxidase | -- | -- | [82] | |
| silica@CAT/ZIF-8 | Catalase | 0.58 mM | 0.0024 Mm/min | [83] | |
| Cyt c-CuBDC | Peroxidase | 6.4 mM | 1650.3 nM/s | [59] | |
| MOF-derived nanozymes | Co-NC/Cu95 | Oxidase | 0.291 mM | -- | [3] |
| Fe–N800 CS | Catalase | -- | -- | [66] | |
| Co8FeS8@Co1-xS | Peroxidase | -- | -- | [84] | |
| Glutathione oxidase | 0.254 mM | -- | |||
| CA-CoNiMn-CLDHs | Peroxidase | 0.21 mM | 0.83 × 10−8 M/s | [85] | |
| D-Co(OH)2 | Oxidase | -- | -- | [67] | |
| Peroxidase | 3.26 mM | -- | |||
| Mn3O4-PEG@C&A | Catalase | -- | -- | [86] | |
| MnCoO-PDA-PEG | Catalase | -- | -- | [87] |
3. Nanozymes Based on Covalent Organic Frameworks
3.1. Original COF-Based Nanozymes
3.2. Chemically Modified COF-Based Nanozymes
3.3. COF-Based Composite Nanozymes
3.4. COF-Derived Nanozymes
| Category | Nanozyme | Mimic Enzyme | Km | Vmax | Ref. |
|---|---|---|---|---|---|
| Original COF-based nanozymes | p-COF | Peroxidase | 0.39 mM | 20 × 10−8 M/s | [90] |
| TAS-COF | Oxidase | 4.88 mM | 1.8 × 10−4 M/min | [89] | |
| Chemically modified COF-based nanozymes | COFtp80–SS | Reductase | -- | -- | [91] |
| Pt@COF-BDP | Peroxidase | -- | -- | [93] | |
| Au/PR-COF | Peroxidase | -- | -- | [88] | |
| Pt NPs/COF-300-AR | Oxidase | -- | -- | [92] | |
| Pd NPs/CMC-COF-LZU1 | Hydrolase | -- | -- | [94] | |
| CF | Superoxide dismutase | 0.13 mM | 0.45 × 10−8 M/s | [100] | |
| Fe3O4@COF@Os | Catalase | 1.09 mM | 1.10 × 10−6 M/s | [104] | |
| COF-based composite nanozymes | Fe-COF@GOx | Peroxidase | -- | 1.3976 mM/s | [95] |
| TpAzo COF-foam | Cellulolytic enzyme | 18.3 ± 4.0 mg/mL | 85.2 ± 9.6 mM/min | [96] | |
| GOx@COF | Glutathione oxidase | 4.10 mM | -- | [24] | |
| enzymes@COF | Glutathione oxidase Horseradish peroxidase Acetylcholinesterase | -- 2.04 mΜ -- | -- 20.4 × 10−8 M/s -- | [99] | |
| GOD@COF | Glucose oxidase | 4.74 mM | -- | [105] | |
| Fe3O4@COF-Apt-Au NCs | Peroxidase | 0.85 mM | 8.52 × 10−8 M/s | [106] | |
| COF-derived nanozymes | Fe-TAPP-TT | Peroxidase | 0.2 mM | 21.6 nM/s | [102] |
| CCOF-Fe3 | Superoxide dismutase Catalase | -- -- | -- 2.2 mg·L−1·min−1 | [103] | |
| CN-PEG | Oxidase Peroxidase Catalase | 0.074 mM 116.4 mM 66.9 mM | 1.65 × 10−8 M/s 4.12 × 10−7 M/s 3.38 × 10−7 M/s | [107] |
4. Application
4.1. Sensors

4.1.1. Colorimetric Sensors
4.1.2. Biosensors
| Category | MOF/COF | Nanozyme | Target | Linear Range | LOD | Assay Conditions (Temperature, pH, Substrate) | Detection Systems | Ref. |
|---|---|---|---|---|---|---|---|---|
| Colorimetric sensors | MOF | ZIF-67 | Dopamine | 10–1000 μM | 2.75 μM | 25 °C, pH 7.8, 4-aminoantipyrine (4-AP) | Buffer solution system | [37] |
| MIL-101(FeII) | Glucose | 1.2–300 μM | 0.87 μM | 37 °C/30 °C, pH 7.0/pH 6.0, Diethyl p-phenylenediamine (DPD) | [68] | |||
| GOx/MNP@aZIF-90 | 0.038–34 μM | 0.319 μM | 37 °C, pH 3.0, TMB | [78] | ||||
| CuAuPt/Cu-TCPP(Fe) | 10–500 μM | 4.0 μM | Room temperature, pH 4.0, TMB | [76] | ||||
| GOx/Hemin@NC-ZIF | 1–20 μM | 10 μM | 50 °C, pH 4.0, TMB | [79] | ||||
| GOx@HP-PCN-222(Fe) | 0–200 μM | 0.237 μM | 30 °C, pH 4.0, TMB | [60] | ||||
| GOx&PVI-hemin@ZIF-8 | 0–200 μM | 0.4 μM | 37 °C, pH 6.0, ABTS | [55] | ||||
| GOx&HRP@DNA/ZIF-8 | 1.10–140 μM | 0.4 μM | 37 °C, pH 7.0, ABTS | [81] | ||||
| PtNPs/Cu-TCPP(Fe) | 2–200 μM | 0.994 μM | 40 °C, pH 4.0, TMB | [82] | ||||
| GOx@HP-PCN-224(Fe) | 5–300 μM | 0.87 μM | 37 °C, pH 5.5–6.5, ABTS | [57] | ||||
| MIL-101(FeII) | H2O2 | 40–5000 nm | 18.04 nM | 30 °C, pH 6.0, DPD | [68] | |||
| NixFe-MOF | 1–80 μM | 0.31 μM | Room temperature, pH 3.6, TMB | [42] | ||||
| CuAuPt/Cu-TCPP(Fe) | 10–800 μM | 9.3 μM | Room temperature, pH near neutral, TMB | [76] | ||||
| PtNPs/Cu-TCPP(Fe) | 2–100 μM | 0.357 μM | 40 °C, pH 4.0, TMB | [82] | ||||
| MIL-88B | Doxycycline Hydrochloride | 5–135 μM | 1.0553 μM | 45 °C, pH 3.5, 3,3′,5,5′-tetramethylbenzidine (TMB) | [38] | |||
| Methyloxytetracycline hydrochloride | 5–135 μM | 0.8524 μM | ||||||
| NixFe-MOF | Glutathione | 10–400 μM | 1.88 μM | Room temperature, pH 3.6, TMB | [42] | |||
| Cu-DPATZ-POM/g-C3N4(1) | 0.1–20 μM | 0.57 μM | 40 °C, pH 3.0, TMB + H2O2 | [72] | ||||
| NH2-MIL-101(Fe)@Au@MIP | 1–50 μM | 0.231 μM | Room temperature, pH 4.0, TMB + H2O2 | [65] | ||||
| NO2-MIL-101(Fe) NH2-MIL-101(Fe) | Acetylcholinesterase | 0.2–50 mU/mL | 0.14 mU/mL | Room temperature, pH 3.0, TMB + H2O2 | [45] | |||
| Organophosphorus pesticides | 8–800 ng/mL | 1 ng/mL | ||||||
| Cu2O/Cu-MOF/Fe-MIL-88B | p-Aminophenol | 25–75 μM | 0.51 μM | 25 °C, pH 4.0, TMB + H2O2 | [54] | |||
| Barbituric acid | 5–45 μM | 0.46 μM | ||||||
| CeOx@fZIF | Chlorpyrifos | 0.01–4 μg/mL | 15 ng/mL | Room temperature, pH 4.0, TMB + H2O2 | [48] | |||
| Fe3O4-MOF-Pt | Carbofuran | 0.25–50 ng/mL | 0.15 ng/mL | Room temperature, pH 7.0, alcohol ether carboxylate (AEC) + H2O2 | [50] | |||
| ChOx@MOF | Choline | 6–300 μM | 2 μM | 30 °C, pH 7.0, ABTS | [62] | |||
| uricase@HP-PCN-224(Fe) | Uric acid | 5–100 μM | 1.8 μM | 37 °C, pH unknown, 4-AP + Sodium 2,4-dichlorobenzenesulfonate (DCPS) | [57] | |||
| Co-NC/Cu95 | Ascorbic acid | 5–90 μM | 2.37 μM | 25 °C, pH 3.0, TMB | [3] | |||
| CA-CoNiMn-CLDHs | Phenol | 1–100 μM | 0.163 μM | 30 °C, pH 5.0, 4-AP + H2O2 | [85] | |||
| COFs | p-COF | Fipronil | 5–5 × 105 ng/mL | 2.7 ng/mL | Room temperature, pH 5.0, TMB | [90] | ||
| TAS-COF | UO22+ | 0.25–25 μmol/L | 0.07 μmol/L | Room temperature, pH 3.5, TMB | [89] | |||
| Au/PR-COF | Tannic acid | 5.0–130 μM | 0.091 μM | 25 °C, pH 3.0, TMB + H2O2 | [88] | |||
| Pt NPs/COF-300-AR | Glutathione | 0.4–4.0 μM | 0.4 μM | 45 °C, pH 3.0, TMB | [92] | |||
| Fe-COF@GOx | Glucose | 10–1000 μM | 1.4 μM | 50 °C, pH 4.0, TMB | [95] | |||
| enzymes@COF | 2.83 pM–8.0 mM | 0.85 pM | Room temperature, pH 7.0 | [99] | ||||
| enzymes@COF | H202 | 9.53 nM-7.0 M | 2.81 nM | Room temperature, pH 7.0 | [99] | |||
| Malathion | 10−12 g/L–10−8 g/L | 3.0 × 10−13 g/L | Room temperature, pH 7.0, Acetylthiocholine (ATCh) | [99] | ||||
| Biosensors | MOFs | ADA@ZIF-67 | Nitrite | 1 M–100 nM | 1.67 nM | 25 °C, pH 7.0, TMB + H2O2 | [73] | |
| Fe–N800 CS | Alkaline phosphatase | 0.2–10 U/L | 0.12 U/L | 37 °C, pH 9.0, o-phenylenediamine (OPD) + H2O2 | [66] | |||
| Ascorbic acid oxidase | 1–60 U/L | 0.59 U/L | ||||||
| COFs | COFtp80–SS | Cd2+ | 0.025–095 nmol/L | 0.012 nmol/L | 80 °C, pH unknown, HAuCI4 + HCOONa | [91] | ||
| HRP-DNA-COF | Exosomes | 104 pieces/L–107 pieces/L | 7668 pieces/L | Room temperature, pH unknown, TMB + H2O2 | [137] | |||
| MB@Apt@WP5A@Au@COF@Fe3O4 | HuNOV | 100.4 copies/mL–105.4 copies/mL | 0.84 copies/mL | Room temperature, pH 7.2 | [138] | |||
| AChE/COFThi-TFPB/GCE | Carbaryl | 2.2–60 μM | 0.22 μM | Room temperature, pH 7.0, ATCh | [139] |
4.2. Medical Treatment
| MOF/COF | Nanozyme | Application | Ref. |
|---|---|---|---|
| MOFs | Ce-UiO-66 | Thrombolytic therapy | [27] |
| UiO-66-NH2/CeO2/Cel@HA | Synergistic treatment of rheumatoid arthritis | [63] | |
| NR@H-ZIF-8@Pt | Antibacterial treatment material | [49] | |
| FCMP@CQ/PFH | Oncotherapy | [39] | |
| SiO2@PB-IR1061 | [51] | ||
| ΜFe2O4@MOF | [53] | ||
| Co8FeS8@Co1−xS | [84] | ||
| Mn3O4-PEG@C&A | [86] | ||
| MnCoO-PDA-PEG | [87] | ||
| UiO-66@GOx@Au | [74] | ||
| HA-MIL-100@Pt@CyI | [75] | ||
| FA-EM@MnO2/ZIF-8/ICG | [77] | ||
| COFs | Pt@COF-BDP | Oncotherapy | [93] |
| ABTS@Fe-DhaTph | [156] | ||
| TADI-COF-Fc | [157] | ||
| CF | [100] | ||
| HF-900 | [158] | ||
| NH2-MIL-88B@TP-TA@CuSx | Antibacterial treatment | [155] | |
| CuSA-COF | Eliminate drug-resistant bacterial infection | [153] | |
| Fe-COF | Diabetic infection skin wound healing | [159] | |
| CCOF-Fe3 | Bacterial infection wound healing | [103] |
5. Conclusions and Future
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
- Ameen, S.S.M.; Bedair, A.; Hamed, M.; Mansour, F.R.; Omer, K.M. Recent Advances in Metal-Organic Frameworks as Oxidase Mimics: A Comprehensive Review on Rational Design and Modification for Enhanced Sensing Applications. ACS Appl. Mater. Interfaces 2024, 17, 110–129. [Google Scholar] [CrossRef]
- Baranwal, A.; Polash, S.A.; Aralappanavar, V.K.; Behera, B.K.; Bansal, V.; Shukla, R. Recent Progress and Prospect of Metal-Organic Framework-Based Nanozymes in Biomedical Application. Nanomaterials 2024, 14, 244. [Google Scholar] [CrossRef] [PubMed]
- Qin, H.W.; Zheng, H.H.M.; He, X.H.; Peng, D.N.; Wu, Y.; Xiao, J.; Zhang, Y. Functional metal-organic frameworks derived-nanozyme integrated sodium alginate hydrogel microspheres for visual total antioxidant capacity detection in foods. Chem. Eng. J. 2025, 513, 162756. [Google Scholar] [CrossRef]
- Zhang, R.Z.; Yang, J.; Cao, Y.G.; Zhang, Q.Y.; Xie, C.F.; Xiong, W.Y.; Luo, X.J.; He, Y. Efficient 2D MOFs nanozyme combining with magnetic SERS substrate for ultrasensitive detection of Hg2+. Spectrochim. Acta Part A Mol. Biomol. Spectrosc. 2024, 312, 124062. [Google Scholar] [CrossRef]
- Huang, W.F.; Wang, S.L.; Wu, M.; Huang, X.P.; Mo, Q.F.; Xu, J.Y.; Wang, R.; Wei, Q.M. Rational design of biomimetic-inspired nanoenzyme probes based on metal-organic frameworks (MOFs) for NIR-II window photoacoustic imaging of ultra-trace H2O2 activation in vivo. Microchem. J. 2024, 207, 112261. [Google Scholar] [CrossRef]
- Lu, L.; Chen, J.; Tang, H.; Bai, L.; Lu, C.; Wang, K.H.; Li, M.L.; Yan, Y.M.; Tang, L.; Wu, R.; et al. EGCG Suppresses ERK5 Activation to Reverse Tobacco Smoke-Triggered Gastric Epithelial-Mesenchymal Transition in BALB/c Mice. Nutrients 2016, 8, 380. [Google Scholar] [CrossRef] [PubMed]
- Wang, B.; Zhang, Y.Y.; Venkitasamy, C.; Wu, B.G.; Pan, Z.L.; Ma, H.L. Effect of pulsed light on activity and structural changes of horseradish peroxidase. Food Chem. 2017, 234, 20–25. [Google Scholar] [CrossRef]
- Ren, X.F.; Zhang, X.; Liang, Q.F.; Hou, T.; Zhou, H.J. Effects of Different Working Modes of Ultrasound on Structural Characteristics of Zein and ACE Inhibitory Activity of Hydrolysates. J. Food Qual. 2017, 2017, 7896037. [Google Scholar] [CrossRef]
- Wang, L.; Li, W.X.; Liu, Y.Y.; Zhi, W.J.; Han, J.; Wang, Y.; Ni, L. Green separation of bromelain in food sample with high retention of enzyme activity using recyclable aqueous two-phase system containing a new synthesized thermo-responsive copolymer and salt. Food Chem. 2019, 282, 48–57. [Google Scholar] [CrossRef]
- Han, J.; Wang, L.; Wang, L.; Li, C.M.; Mao, Y.L.; Wang, Y. Fabrication of a core-shell-shell magnetic polymeric microsphere with excellent performance for separation and purification of bromelain. Food Chem. 2019, 283, 1–10. [Google Scholar] [CrossRef]
- Chi, Z.M.; Gu, J.L.; Li, H.; Wang, Q. Recent progress of metal-organic framework-based nanozymes with oxidoreductase-like activity. Analyst 2024, 149, 1416–1435. [Google Scholar] [CrossRef]
- Kayani, K.F. Nanozyme based on bimetallic metal-organic frameworks and their applications: A review. Microchem. J. 2025, 208, 112363. [Google Scholar] [CrossRef]
- Deng, W.W.; Cao, X.; Wang, Y.; Yu, Q.T.; Zhang, Z.J.; Qu, R.; Chen, J.J.; Shao, G.B.; Gao, X.D.; Xu, X.M.; et al. Pleurotus eryngii Polysaccharide Promotes Pluripotent Reprogramming via Facilitating Epigenetic Modification. J. Agric. Food Chem. 2016, 64, 1264–1273. [Google Scholar] [CrossRef] [PubMed]
- Yan, J.K.; Qiu, W.Y.; Wang, Y.Y.; Wu, J.Y. Biocompatible Polyelectrolyte Complex Nanoparticles from Lactoferrin and Pectin as Potential Vehicles for Antioxidative Curcumin. J. Agric. Food Chem. 2017, 65, 5720–5730. [Google Scholar] [CrossRef] [PubMed]
- Rong, J.H.; Zhou, Z.J.; Wang, Y.; Han, J.; Li, C.M.; Zhang, W.L.; Ni, L. Immobilization of Horseradish Peroxidase on Multi-Armed Magnetic Graphene Oxide Composite: Improvement of Loading Amount and Catalytic Activity. Food Technol. Biotechnol. 2019, 57, 260–271. [Google Scholar] [CrossRef]
- Han, J.; Wang, L.; Wang, Y.; Cai, Y.F.; Mao, Y.L.; Ni, L.; Xie, X.Q. Preparation of temperature-sensitive magnetic microspheres for separation and purification of bromelain. Food Bioprod. Process. 2019, 114, 253–262. [Google Scholar] [CrossRef]
- Hong, C.Y.; Meng, X.Q.; He, J.Y.; Fan, K.L.; Yan, X.Y. Nanozyme: A promising tool from clinical diagnosis and environmental monitoring to wastewater treatment. Particuology 2022, 71, 90–107. [Google Scholar] [CrossRef]
- Li, H.P.; Cao, X.Y.; Fei, X.Y.; Zhang, S.M.; Xian, Y.Z. Nanoscaled luminescent terbium metal-organic frameworks for measuring and scavenging reactive oxygen species in living cells. J. Mater. Chem. B 2019, 7, 3027–3033. [Google Scholar] [CrossRef]
- Wang, X.; Fang, Y.T.; Yang, Y.W. Nanozymes for biomedical applications. APL Mater. 2024, 12, 100401. [Google Scholar] [CrossRef]
- Zhang, C.; Zhang, L.; Wu, W.; Gao, F.; Li, R.Q.; Song, W.; Zhuang, Z.N.; Liu, C.J.; Zhang, X.Z. Artificial Super Neutrophils for Inflammation Targeting and HClO Generation against Tumors and Infections. Adv. Mater. 2019, 31, e1901179. [Google Scholar] [CrossRef]
- Zhang, Y.A.; Jin, Y.L.; Cui, H.X.; Yan, X.Y.; Fan, K.L. Nanozyme-based catalytic theranostics. RSC Adv. 2020, 10, 10–20. [Google Scholar] [CrossRef]
- Mu, R.J.; Hong, X.; Ni, Y.S.; Li, Y.Z.; Pang, J.; Wang, Q.; Xiao, J.B.; Zheng, Y.F. Recent trends and applications of cellulose nanocrystals in food industry. Trends Food Sci. Technol. 2019, 93, 136–144. [Google Scholar] [CrossRef]
- Lin, L.; Gu, Y.L.; Cui, H.Y. Moringa oil/chitosan nanoparticles embedded gelatin nanofibers for food packaging against Listeria monocytogenes and Staphylococcus aureus on cheese. Food Packag. Shelf Life 2019, 19, 86–93. [Google Scholar] [CrossRef]
- Zhang, Y.F.; Xing, C.Y.; Mu, Z.J.; Niu, Z.R.; Feng, X.; Zhang, Y.Y.; Wang, B. Harnessing Self-Repairing and Crystallization Processes for Effective Enzyme Encapsulation in Covalent Organic Frameworks. J. Am. Chem. Soc. 2023, 145, 13469–13475. [Google Scholar] [CrossRef] [PubMed]
- Feng, Y.M.; Xu, Y.; Liu, S.C.; Wu, D.; Su, Z.Q.; Chen, G.; Liu, J.H.; Li, G.L. Recent advances in enzyme immobilization based on novel porous framework materials and its applications in biosensing. Coord. Chem. Rev. 2022, 459, 214414. [Google Scholar] [CrossRef]
- Zheng, L.M.; Wang, F.Q.; Jiang, C.R.; Ye, S.J.; Tong, J.Z.; Dramou, P.; He, H. Recent progress in the construction and applications of metal-organic frameworks and covalent-organic frameworks-based nanozymes. Coord. Chem. Rev. 2022, 471, 214760. [Google Scholar] [CrossRef]
- Shan, J.G.; Du, L.; Wang, X.G.; Zhang, S.D.; Li, Y.P.; Xue, S.; Tang, Q.Y.; Liu, P.F. Ultrasound Trigger Ce-Based MOF Nanoenzyme for Efficient Thrombolytic Therapy. Adv. Sci. 2024, 11, 2304441. [Google Scholar] [CrossRef]
- Jiang, Z.W.; Gong, X.; Wang, Y.; Li, Y.F.; Huang, C.Z. Engineering metal-organic frameworks-based nanozymes for enhanced biomimetic catalytic sensing. TrAC Trends Anal. Chem. 2024, 178, 117862. [Google Scholar] [CrossRef]
- Liu, M.L.; Wang, Y.; Xiao, J.Y.; Liu, Y.Y.; Ren, Y.; Gao, X. Colorimetric immunoassay of furazolidone metabolites based on iron-copper bimetallic organic framework nanoenzyme. Microchim. Acta 2024, 191, 575. [Google Scholar] [CrossRef]
- Wang, C.E.; Liao, K.M. Recent Advances in Emerging Metal- and Covalent-Organic Frameworks for Enzyme Encapsulation. ACS Appl. Mater. Interfaces 2021, 13, 56752–56776. [Google Scholar] [CrossRef]
- Fan, X.Y.; Zhai, S.B.; Xue, S.; Zhi, L.J. Enzyme Immobilization using Covalent Organic Frameworks: From Synthetic Strategy to COFs Functional Role. ACS Appl. Mater. Interfaces 2024, 16, 40371–40390. [Google Scholar] [CrossRef]
- Yin, B.F.; Jiang, Z.; Muhammad, R.; Liu, J.; Wang, J.J. Nanozyme-Powered Multimodal Sensing for Pesticide Detection. Foods 2025, 14, 1957. [Google Scholar] [CrossRef]
- Lian, X.Z.; Fang, Y.; Joseph, E.; Wang, Q.; Li, J.L.; Banerjee, S.; Lollar, C.; Wang, X.; Zhou, H.C. Enzyme-MOF (metal-organic framework) composites. Chem. Soc. Rev. 2017, 46, 3386–3401. [Google Scholar] [CrossRef] [PubMed]
- Majewski, M.B.; Howarth, A.J.; Li, P.; Wasielewski, M.R.; Hupp, J.T.; Farha, O.K. Enzyme encapsulation in metal-organic frameworks for applications in catalysis. CrystEngComm 2017, 19, 4082–4091. [Google Scholar] [CrossRef]
- Hu, Y.L.; Dai, L.M.; Liu, D.H.; Du, W.; Wang, Y.J. Progress & prospect of metal-organic frameworks (MOFs) for enzyme immobilization (enzyme/MOFs). Renew. Sustain. Energy Rev. 2018, 91, 793–801. [Google Scholar] [CrossRef]
- Drout, R.J.; Robison, L.; Farha, O.K. Catalytic applications of enzymes encapsulated in metal-organic frameworks. Coord. Chem. Rev. 2019, 381, 151–160. [Google Scholar] [CrossRef]
- Yan, Y.K.; Huang, X.E.; Yuan, L.L.; Tang, Y.Y.; Zhu, W.L.; Du, H.C.; Nie, J.F.; Zhang, L.; Liao, S.; Tang, X.H.; et al. Single-step batch fabrication of microfluidic paper-based analytical devices with a 3D printer and their applications in nanoenzyme-enhanced visual detection of dopamine. Anal. Bioanal. Chem. 2024, 416, 4131–4141. [Google Scholar] [CrossRef]
- Sun, M.M.; Pu, K.X.; Hao, X.R.; Liu, T.; Lu, Z.W.; Su, G.H.; Wu, C.; Wang, Y.Y.; Cai, S.; Zhao, X.Q.; et al. Reasonable construction of a bimetallic organic framework MIL-88B (Fe, Ni) nanoenzyme based on deep learning assisted doxycycline hydrochloride and methyloxytetracycline hydrochloride. J. Mater. Chem. C 2023, 12, 221–231. [Google Scholar] [CrossRef]
- Yan, L.; Chen, C.; Liang, Y.; Huang, X.W.; Qian, J.Y.; Zhang, H.; Zhang, L.; Li, Y.J.; Zhang, Y.J. Autophagy-Targeting Fe-Cu Nanozyme for Tumor Immune Microenvironment Remodeling and Image-Guided Cancer Immunotherapy. Adv. Sci. 2025, 12, e12575. [Google Scholar] [CrossRef]
- Sun, L.J.; Liu, C.; Sun, J.W. Penguin with bow tie-like bimetallic metal organic framework as colorimetric biosensing for H2O2 and L-cysteine. J. Coord. Chem. 2021, 74, 1891–1906. [Google Scholar] [CrossRef]
- Cao, S.L.; Yue, D.M.; Li, X.H.; Smith, T.J.; Li, N.; Zong, M.H.; Wu, H.; Ma, Y.Z.; Lou, W.Y. Novel Nano-/Micro-Biocatalyst: Soybean Epoxide Hydrolase Immobilized on UiO-66-NH2 MOF for Efficient Biosynthesis of Enantiopure (R)-1, 2-Octanediol in Deep Eutectic Solvents. ACS Sustain. Chem. Eng. 2016, 4, 3586–3595. [Google Scholar] [CrossRef]
- Cheng, X.Q.; Zhou, X.R.; Zheng, Z.P.; Kuang, Q. Construct efficient substrate transport and catalytic sub-nanochannels in metal-organic framework-based nanozymes for boosting peroxidase-like catalytic activity. Chem. Eng. J. 2022, 430, 133079. [Google Scholar] [CrossRef]
- Yao, J.; Xie, Z.; Zeng, X.; Wang, L.; Yue, T.T. Bimetallic Eu/Fe-MOFs ratiometric fluorescent nanoenzyme for selective cholesterol detection in biological serum: Synthesis, characterization, mechanism and DFT calculations. Sens. Actuators B-Chem. 2022, 354, 130760. [Google Scholar] [CrossRef]
- Wu, J.J.; Wang, Z.Z.; Jin, X.; Zhang, S.; Li, T.; Zhang, Y.H.; Xing, H.; Yu, Y.; Zhang, H.G.; Gao, X.F.; et al. Hammett Relationship in Oxidase-Mimicking Metal-Organic Frameworks Revealed through a Protein-Engineering-Inspired Strategy. Adv. Mater. 2021, 33, 2005024. [Google Scholar] [CrossRef] [PubMed]
- Xu, W.Q.; Kang, Y.K.; Jiao, L.; Wu, Y.; Yan, H.Y.; Li, J.L.; Gu, W.L.; Song, W.Y.; Zhu, C.Z. Tuning Atomically Dispersed Fe Sites in Metal-Organic Frameworks Boosts Peroxidase-Like Activity for Sensitive Biosensing. Nano-Micro Lett. 2020, 12, 184. [Google Scholar] [CrossRef] [PubMed]
- Li, Z.; Dai, G.; Luo, F.F.; Lu, Y.Q.; Zhang, J.W.; Chu, Z.H.; He, P.G.; Zhang, F.; Wang, Q.J. An electrochemical sensor for bacterial lipopolysaccharide detection based on dual functional Cu2+-modified metal-organic framework nanoparticles. Microchim. Acta 2020, 187, 415. [Google Scholar] [CrossRef]
- Chen, W.H.; Vázquez-González, M.; Kozell, A.; Cecconello, A.; Willner, I. Cu2+-Modified Metal-Organic Framework Nanoparticles: A Peroxidase-Mimicking Nanoenzyme. Small 2018, 14, 1703149. [Google Scholar] [CrossRef]
- Liu, J.T.; Tang, J.; Mo, Y.Y.; Zhou, L.; Cai, T.T.; Yang, H. Metal-organic framework-sealed heterogeneous nanoenzyme: A dual-mode core-shell sensor for sensitive determination of the chlorpyrifos residue in environment and bioaccumulation in food. Chem. Eng. J. 2024, 501, 157693. [Google Scholar] [CrossRef]
- Li, R.; Chen, S.S.; Zhang, X.G.; Zeng, F.; Song, X.Y.; Yin, J.; Jiang, C.Z. Synergistic photothermal effect and nanoenzyme for efficient antibacterial activity. Sci. China-Mater. 2024, 67, 2985–2994. [Google Scholar] [CrossRef]
- Zhai, S.X.; Dong, H.W.; Wang, H.F.; Huang, J.C.; Li, D.H.; Li, Z.T.; Li, Z.P.; Li, P.S.; Zhang, P.W.; Zhao, M.X.; et al. Multifunctional nanoenzyme lateral flow immunoassay strip for rapid and ultrasensitive detection of carbofuran in vegetables. J. Hazard. Mater. 2024, 477, 135296. [Google Scholar] [CrossRef]
- Xue, Q.; Zeng, S.L.; Ren, Y.G.; Pan, Y.Y.; Chen, J.H.; Chen, N.B.; Wong, K.K.Y.; Song, L.; Fang, C.H.; Guo, J.H.; et al. Relief of tumor hypoxia using a nanoenzyme amplifies NIR-II photoacoustic-guided photothermal therapy. Biomed. Opt. Express 2024, 15, 59–76. [Google Scholar] [CrossRef] [PubMed]
- Wang, H.F.; Chen, W.X.; Chen, Q.Y.; Liu, N.; Cheng, H.J.; Li, T. Metal-organic framework (MOF)-Au@Pt nanoflowers composite material for electrochemical sensing of H2O2 in living cells. J. Electroanal. Chem. 2021, 897, 115603. [Google Scholar] [CrossRef]
- Yin, S.Y.; Song, G.S.; Yang, Y.; Zhao, Y.; Wang, P.; Zhu, L.M.; Yin, X.; Zhang, X.B. Persistent Regulation of Tumor Microenvironment via Circulating Catalysis of MnFe2O4@Metal-Organic Frameworks for Enhanced Photodynamic Therapy. Adv. Funct. Mater. 2019, 29, 1901417. [Google Scholar] [CrossRef]
- Song, C.; Qian, J.L.; Pu, Y.; Sun, M.M.; Zhang, X.; He, M.X. Cu2O/Cu-MOF/Fe-MIL-88B with peroxidase activity for intelligent detection of p-aminophenol and barbituric acid and virtual reality display for detection mechanism. Colloids Surf. A Physicochem. Eng. Asp. 2025, 704, 135499. [Google Scholar] [CrossRef]
- Zhang, X.L.; Zhang, F.; Lu, Z.; Xu, Q.; Hou, C.T.; Wang, Z.H. Coupling Two Sequential Biocatalysts with Close Proximity into Metal-Organic Frameworks for Enhanced Cascade Catalysis. ACS Appl. Mater. Interfaces 2020, 12, 25565–25571. [Google Scholar] [CrossRef]
- Song, J.Y.; He, W.T.; Shen, H.; Zhou, Z.X.; Li, M.Q.; Su, P.; Yang, Y. Construction of multiple enzyme metal-organic frameworks biocatalyst via DNA scaffold: A promising strategy for enzyme encapsulation. Chem. Eng. J. 2019, 363, 174–182. [Google Scholar] [CrossRef]
- Liu, X.; Qi, W.; Wang, Y.F.; Lin, D.W.; Yang, X.J.; Su, R.X.; He, Z.M. Rational Design of Mimic Multienzyme Systems in Hierarchically Porous Biomimetic Metal-Organic Frameworks. ACS Appl. Mater. Interfaces 2018, 10, 33407–33415. [Google Scholar] [CrossRef]
- Chen, S.J.; Wen, L.Y.; Svec, F.; Tan, T.W.; Lv, Y.Q. Magnetic metal-organic frameworks as scaffolds for spatial co-location and positional assembly of multi-enzyme systems enabling enhanced cascade biocatalysis. RSC Adv. 2017, 7, 21205–21213. [Google Scholar] [CrossRef]
- Li, Z.X.; Xia, H.; Li, S.M.; Pang, J.F.; Zhu, W.; Jiang, Y.B. In situ hybridization of enzymes and their metal-organic framework analogues with enhanced activity and stability by biomimetic mineralisation. Nanoscale 2017, 9, 15298–15302. [Google Scholar] [CrossRef]
- Li, S.F.; Chen, Y.; Wang, Y.S.; Mo, H.L.; Zang, S.Q. Integration of enzyme immobilization and biomimetic catalysis in hierarchically porous metal-organic frameworks for multi-enzymatic cascade reactions. Sci. China Chem. 2022, 65, 1122–1128. [Google Scholar] [CrossRef]
- Jordahl, D.; Armstrong, Z.; Li, Q.B.; Gao, R.X.; Liu, W.; Johnson, K.; Brown, W.; Scheiwiller, A.; Feng, L.; Ugrinov, A.; et al. Expanding the “Library” of Metal-Organic Frameworks for Enzyme Biomineralization. ACS Appl. Mater. Interfaces 2022, 14, 51619–51629. [Google Scholar] [CrossRef] [PubMed]
- Huang, H.; Song, D.H.; Zhang, W.J.; Fang, S.Z.; Zhou, Q.X.; Zhang, H.Y.; Liang, Z.; Li, Y.X. Choline Oxidase-Integrated Copper Metal-Organic Frameworks as Cascade Nanozymes for One-Step Colorimetric Choline Detection. J. Agric. Food Chem. 2022, 70, 5228–5236. [Google Scholar] [CrossRef] [PubMed]
- Zhang, L.Y.; Meng, W.; Chen, X.T.; Wu, L.B.; Chen, M.W.; Zhou, Z.X.; Chen, Y.J.; Yuan, L.X.; Chen, M.; Chen, J.X.; et al. Multifunctional Nanoplatform for Mild Microwave-Enhanced Thermal, Antioxidative, and Chemotherapeutic Treatment of Rheumatoid Arthritis. ACS Appl. Mater. Interfaces 2023, 15, 10341–10355. [Google Scholar] [CrossRef] [PubMed]
- Guo, J.L.; Du, X.M.; Huang, J.S.; Liu, C.X.; Zhou, Y.Y.; Li, Y.; Du, B. Robust Dual Enzyme Cascade-Catalytic Cholesterol Depletion for Reverse Tumor Multidrug Resistance. Adv. Healthc. Mater. 2022, 11, 2200859. [Google Scholar] [CrossRef]
- Lu, X.L.; Yan, L.Q.; Zhou, X.X.; Qu, T.L. Highly selective colorimetric determination of glutathione based on sandwich-structured nanoenzymes composed of gold nanoparticle-coated molecular imprinted metal-organic frameworks. Microchim. Acta 2024, 191, 140. [Google Scholar] [CrossRef]
- Han, Z.X.; Fu, Q.J.; Lv, Y.T.; Wang, N.; Su, X.G. A two-dimensional iron-doped carbon-based nanoenzyme with catalase-like activity for the detection of alkaline phosphatase and ascorbate oxidase. Talanta 2024, 272, 125704. [Google Scholar] [CrossRef]
- Hu, P.Y.; Qin, H.C.; Hu, K.L.; Dai, R.; Wang, Z.P.; Huang, K. Constructing a defect-rich hydroxide nanoenzyme sensor based on dielectric barrier discharge microplasma etching for sensitive detection of thiamine hydrochloride and hydrogen peroxide. J. Colloid Interface Sci. 2022, 628, 597–606. [Google Scholar] [CrossRef]
- Huang, P.P.; Chang, Q.; Jiang, G.D.; Wang, X.; Zhu, H.P.; Liu, Q.Q. Rapidly and ultra-sensitive colorimetric detection of H2O2 and glucose based on ferrous-metal organic framework with enhanced peroxidase-mimicking activity. Spectrochim. Acta Part A Mol. Biomol. Spectrosc. 2023, 285, 121943. [Google Scholar] [CrossRef]
- Liu, J.T.; Ye, L.Y.; Xiong, W.H.; Liu, T.R.; Yang, H.; Lei, J.P. A cerium oxide@metal-organic framework nanoenzyme as a tandem catalyst for enhanced photodynamic therapy. Chem. Commun. 2021, 57, 2820–2823. [Google Scholar] [CrossRef]
- Li, Y.M.; Yuan, J.; Ren, H.; Ji, C.Y.; Tao, Y.; Wu, Y.H.; Chou, L.Y.; Zhang, Y.B.; Cheng, L. Fine-Tuning the Micro-Environment to Optimize the Catalytic Activity of Enzymes Immobilized in Multivariate Metal-Organic Frameworks. J. Am. Chem. Soc. 2021, 143, 15378–15390. [Google Scholar] [CrossRef]
- Feng, Y.X.; Hu, H.T.; Wang, Z.C.; Du, Y.J.; Zhong, L.; Zhang, C.X.; Jiang, Y.J.; Jia, S.R.; Cui, J.D. Three-dimensional ordered magnetic macroporous metal-organic frameworks for enzyme immobilization. J. Colloid Interface Sci. 2021, 590, 436–445. [Google Scholar] [CrossRef]
- Liu, Y.X.; Liang, Q.M.; Yang, H.; Xiao, S.Q.; Wang, H.J.; Bu, M.; Zhang, H.Y.; Sun, J.W. Preparation of POMOF/g-C3N4 peroxidase-like artificial enzyme and its colorimetric sensing towards H2O2 and glutathione. Inorg. Chem. Commun. 2025, 173, 113833. [Google Scholar] [CrossRef]
- Zeng, M.H.; Zhang, C.; Yao, Q.H.; Jin, J.W.; Ye, T.X.; Chen, X.M.; Guo, Z.Y.; Chen, X. Multifunction nanoenzyme-assisted ion-selective and oxidation catalysis SERS biosensors for point-of-care nitrite testing. Sens. Actuators B Chem. 2024, 405, 135352. [Google Scholar] [CrossRef]
- Gong, P.W.; Cui, H.Y.; Li, C.; Song, S.H.; Gong, Y.W.; Li, J.Y.; Wang, B.R.; Liu, F.X.; Wang, D.D.; Liu, Z. Self-stablized monodispersing nano-MOFs for controlled enzyme delivery. Chem. Eng. J. 2024, 489, 150941. [Google Scholar] [CrossRef]
- Ye, Y.Y.; Yu, H.L.; Chen, B.H.; Zhao, Y.F.; Lv, B.; Xue, G.H.; Sun, Y.; Cao, J. Engineering nanoenzymes integrating Iron-based metal organic frameworks with Pt nanoparticles for enhanced Photodynamic-Ferroptosis therapy. J. Colloid Interface Sci. 2023, 645, 882–894. [Google Scholar] [CrossRef] [PubMed]
- Wu, P.; Gong, F.J.; Feng, X.L.; Xia, Y.; Xia, L.H.; Kai, T.H.; Ding, P. Multimetallic nanoparticles decorated metalorganic framework for boosting peroxidaselike catalytic activity and its application in point-of-care testing. J. Nanobiotechnol. 2023, 21, 185. [Google Scholar] [CrossRef]
- Li, X.Y.; Ji, Q.; Yan, C.; Zhu, Z.Y.; Yan, Z.H.; Chen, P.; Wang, Y.S.; Song, L. H2O2/pH Dual-Responsive Biomimetic Nanoenzyme Drugs Delivery System for Enhanced Tumor Photodynamic Therapy. Nanoscale Res. Lett. 2022, 17, 103. [Google Scholar] [CrossRef]
- Ji, Y.; Gao, W.N.; Zhang, S.L.; Li, B.Z.; Huang, H.; Zhang, X. Confining Natural/Mimetic Enzyme Cascade in an Amorphous Metal-Organic Framework for the Construction of Recyclable Biomaterials with Catalytic Activity. Langmuir 2022, 38, 927–936. [Google Scholar] [CrossRef]
- Wang, Q.P.; Chen, M.; Xiong, C.; Zhu, X.F.; Chen, C.; Zhou, F.Y.; Dong, Y.; Wang, Y.; Xu, J.; Li, Y.M.; et al. Dual confinement of high-loading enzymes within metal-organic frameworks for glucose sensor with enhanced cascade biocatalysis. Biosens. Bioelectron. 2022, 196, 113695. [Google Scholar] [CrossRef]
- Zhu, N.F.; Liu, C.B.; Liu, R.; Niu, X.H.; Xiong, D.H.; Wang, K.; Yin, D.Q.; Zhang, Z. Biomimic Nanozymes with Tunable Peroxidase-like Activity Based on the Confinement Effect of Metal-Organic Frameworks (MOFs) for Biosensing. Anal. Chem. 2022, 94, 4821–4830. [Google Scholar] [CrossRef]
- Wang, L.; Chen, Y. Luminescence-Sensing Tb-MOF Nanozyme for the Detection and Degradation of Estrogen Endocrine Disruptors. ACS Appl. Mater. Interfaces 2020, 12, 8351–8358. [Google Scholar] [CrossRef] [PubMed]
- Chen, H.Y.; Qiu, Q.M.; Sharif, S.; Ying, S.N.; Wang, Y.X.; Ying, Y.B. Solution-Phase Synthesis of Platinum Nanoparticle-Decorated Metal-Organic Framework Hybrid Nanomaterials as Biomimetic Nanoenzymes for Biosensing Applications. ACS Appl. Mater. Interfaces 2018, 10, 24108–24115. [Google Scholar] [CrossRef] [PubMed]
- Cui, J.D.; Feng, Y.X.; Jia, S.R. Silica encapsulated catalase@metal-organic framework composite: A highly stable and recyclable biocatalyst. Chem. Eng. J. 2018, 351, 506–514. [Google Scholar] [CrossRef]
- Wang, L.L.; Wang, T.; Zhuo, Y.; Xu, S.Y.; Liu, H.H.; Jiang, X.M.; Lu, Z.W.; Wang, X.X.; Rao, H.B.; Wu, D.; et al. Cascade Co8FeS8@Co1-xS nano-enzymes trigger efficiently apoptosis-ferroptosis combination tumor therapy. J. Colloid Interface Sci. 2024, 662, 962–975. [Google Scholar] [CrossRef]
- Tan, W.J.; Xin, R.; Zhang, J.R.; Yang, L.L.; Jing, M.; Ma, F.K.; Yang, J. Co(II)-Based Metal-Organic Framework Derived CA-CoNiMn-CLDHs with Peroxidase-like Activity for Colorimetric Detection of Phenol. Materials 2023, 16, 6212. [Google Scholar] [CrossRef]
- Zeng, X.M.; Yan, S.Q.; Chen, P.; Du, W.; Liu, B.F. Modulation of tumor microenvironment by metal-organic-framework-derived nanoenzyme for enhancing nucleus-targeted photodynamic therapy. Nano Res. 2020, 13, 1527–1535. [Google Scholar] [CrossRef]
- Wang, D.D.; Wu, H.H.; Lim, W.Q.; Phua, S.Z.F.; Xu, P.P.; Chen, Q.W.; Guo, Z.; Zhao, Y.L. A Mesoporous Nanoenzyme Derived from Metal-Organic Frameworks with Endogenous Oxygen Generation to Alleviate Tumor Hypoxia for Significantly Enhanced Photodynamic Therapy. Adv. Mater. 2019, 31, 1901893. [Google Scholar] [CrossRef]
- Zhang, Y.; Qin, H.W.; Peng, D.N.; Han, M.H.; Xiao, J.; Wu, Y.; Yang, N. Au confined covalent organic frameworks nanoenzyme integrated with sodium alginate microsphere for portable colorimetric tannic acid detection. Int. J. Biol. Macromol. 2025, 308, 142556. [Google Scholar] [CrossRef]
- Xu, Y.L.; Wei, J.H.; Chen, X.W. Visible Light-Responsive Sulfone-Based Covalent Organic Framework as Metal-Free Nanoenzyme for Visual Colorimetric Determination of Uranium. Chemosensors 2022, 10, 248. [Google Scholar] [CrossRef]
- Liu, Q.J.; Zhu, J.Y.; Wang, H.; Luan, Y.X.; Zhang, Z.K. Porphyrin-based covalent organic framework as oxidase mimic for highly sensitive colorimetric detection of pesticides. Microchim. Acta 2024, 191, 296. [Google Scholar] [CrossRef]
- Li, J.J.; Shu, Y.Y.; Li, C.N.; Jiang, Z.L. Highly catalytic nanoenzyme of covalent organic framework loaded starch- surface-enhanced Raman scattering/absorption bi-mode peptide as biosensor for ultratrace determination of cadmium. Front. Nutr. 2023, 9, 1075296. [Google Scholar] [CrossRef] [PubMed]
- Jin, P.; Niu, X.Y.; Gao, Z.X.; Xue, X.Q.; Zhang, F.; Cheng, W.; Ren, C.L.; Du, H.Y.; Manyande, A.; Chen, H.L. Ultrafine Platinum Nanoparticles Supported on Covalent Organic Frameworks as Stable and Reusable Oxidase-Like Catalysts for Cellular Glutathione Detection. ACS Appl. Nano Mater. 2021, 4, 5834–5841. [Google Scholar] [CrossRef]
- Zhang, K.X.; Wang, B.; Li, W.Y.; Song, Y.; Song, T.; Li, Y.A.; Dong, Y.B. A Pt nanoenzyme- and BODIPY-loaded nanoscale covalent organic framework for relieving intratumoural hypoxia to enhance photodynamic therapy. Dalton Trans. 2024, 53, 11242–11246. [Google Scholar] [CrossRef] [PubMed]
- Sun, P.P.; Hai, J.; Sun, S.H.; Lu, S.Y.; Liu, S.; Liu, H.W.; Chen, F.J.; Wang, B.D. Aqueous stable Pd nanoparticles/covalent organic framework nanocomposite: An efficient nanoenzyme for colorimetric detection and multicolor imaging of cancer cells. Nanoscale 2020, 12, 825–831. [Google Scholar] [CrossRef]
- Lu, T.; Lu, S.L.; Yao, H.Z.; Sun, H.M.; Hu, H.Y.; Song, J.S.; Duan, F.; Du, M.L. Biological Cascade Catalysts Based on Structurally Regulated Covalent Organic Framework for Intuitive Glucose Colorimetric Sensing. ACS Appl. Mater. Interfaces 2025, 17, 30664–30672. [Google Scholar] [CrossRef]
- Paul, S.; Gupta, M.; Dey, K.; Mahato, A.K.; Bag, S.; Torris, A.; Gowd, E.B.; Sajid, H.; Addicoat, M.A.; Datta, S.; et al. Hierarchical covalent organic framework-foam for multi-enzyme tandem catalysis. Chem. Sci. 2023, 14, 6643–6653. [Google Scholar] [CrossRef]
- Liang, J.Y.; Ruan, J.F.; Njegic, B.; Rawal, A.; Scott, J.; Xu, J.T.; Boyer, C.; Liang, K. Insight into Bioactivity of In-situ Trapped Enzyme-Covalent-Organic Frameworks. Angew. Chem. Int. Ed. 2023, 62, e202303001. [Google Scholar] [CrossRef]
- Sicard, C. In Situ Enzyme Immobilization by Covalent Organic Frameworks. Angew. Chem. Int. Ed. 2023, 62, e202213405. [Google Scholar] [CrossRef]
- Liang, H.H.; Wang, L.Y.; Yang, Y.X.; Song, Y.H.; Wang, L. A novel biosensor based on multienzyme microcapsules constructed from covalent-organic framework. Biosens. Bioelectron. 2021, 193, 113553. [Google Scholar] [CrossRef]
- Lv, W.X.; Jiang, G.W.; Lin, X.J.; Qian, M.; Huang, R.; Li, Z.C.; Liu, H.; Lin, D.; Wang, Y. An Unusual Application of Multifunctional Nanozyme Derived from COF: Augmenting Chemoimmunotherapy while Attenuating Cardiotoxicity. Adv. Funct. Mater. 2025, 35, 113553. [Google Scholar] [CrossRef]
- Zhou, S.N.; Tian, T.; Meng, T.; Wu, J.; Hu, D.Y.; Liao, Q.B.; Zhuang, J.L.; Wang, H.; Zhang, G.Y. Tumor-derived covalent organic framework nanozymes for targeted chemo-photothermal combination therapy. Iscience 2023, 26, 107348. [Google Scholar] [CrossRef] [PubMed]
- Zhan, J.M.; Wu, X.L.; Qiu, X.Q.; Li, Z.X. Biomimetic Dual-Coordination-Sphere Porphyrin-Based Covalent Organic Frameworks Enable Efficient and Selective Furfural Oxidation. ACS Appl. Mater. Interfaces 2025, 17, 51043–51052. [Google Scholar] [CrossRef] [PubMed]
- Li, J.; Zhang, M.; Wang, Y.Y.; Lv, W.X.; Xu, Z.R.; Wang, B.B.; Huang, R.Q.; Mei, B.B.; Wang, Y. Regulating the Atomic Active Center by Covalent Organic Framework-Derived Photothermal Nanozyme to Arm Self-Gelling Powder for Bacterial Wound Healing. ACS Nano 2024, 18, 35606–35619. [Google Scholar] [CrossRef] [PubMed]
- Zhou, P.Y.; Dai, Y.W.; Lin, X.R.; Song, Y.X.; Pang, Y.F.; Chen, R.; Xiao, R. Specific and Magnetic Covalent Organic Framework Confined Os Nanoclusterzyme for Interference-Free and Ultrasensitive Biosensing. Adv. Funct. Mater. 2024, 34, 2400875. [Google Scholar] [CrossRef]
- Li, T.T.; Deng, D.L.; Tan, D.D.; Chen, S.Q.; Ji, Y.B.; Li, R.J. Immobilized glucose oxidase on hierarchically porous COFs and integrated nanozymes: A cascade reaction strategy for ratiometric fluorescence sensors. Anal. Bioanal. Chem. 2022, 414, 6247–6257. [Google Scholar] [CrossRef]
- Sun, P.; Yang, J.; Gao, C.L.; Wang, S.Y.; Zhang, Y.J.; Wang, N.X.; Luan, M.M.; Zhou, M.Y. A triple-mode (fluorescence/colorimetric/smartphone) sensor for efficient detection of enrofloxacin based on aptamers modified Fe3O4@COF NPs. Microchem. J. 2025, 216, 114647. [Google Scholar] [CrossRef]
- Wan, X.Y.; Ge, Y.L.; Zhang, J.; Pan, W.; Li, N.; Tang, B. A Covalent Organic Framework Derived N-doped Carbon Nanozyme as the All-rounder for Targeted Catalytic Therapy and NIR-II Photothermal Therapy of Cancer. ACS Appl. Mater. Interfaces 2023, 15, 44763–44772. [Google Scholar] [CrossRef]
- Zhou, C.S.; Yu, X.J.; Qin, X.P.; Ma, H.L.; Yagoub, A.E.; Hu, J.L. Hydrolysis of rapeseed meal protein under simulated duodenum digestion: Kinetic modeling and antioxidant activity. LWT Food Sci. Technol. 2016, 68, 523–531. [Google Scholar] [CrossRef]
- Liu, H.; Zhu, H. Evaluation of a Laser Scanning Sensor in Detection of Complex-Shaped Targets for Variable-Rate Sprayer Development. Trans. Asabe 2016, 59, 1181–1192. [Google Scholar] [CrossRef]
- Wu, S.J.; Liu, L.H.; Duan, N.; Li, Q.; Zhou, Y.; Wang, Z.P. Aptamer-Based Lateral Flow Test Strip for Rapid Detection of Zearalenone in Corn Samples. J. Agric. Food Chem. 2018, 66, 1949–1954. [Google Scholar] [CrossRef]
- Li, Y.; Ouyang, Q.; Li, H.H.; Chen, M.; Zhan, Z.Z.; Chen, Q.S. Turn-On Fluoresence Sensor for Hg2+ in Food Based on FRET between Aptamers-Functionalized Upconversion Nanoparticles and Gold Nanoparticles. J. Agric. Food Chem. 2018, 66, 6188–6195. [Google Scholar] [CrossRef]
- Duan, N.; Chang, B.Y.; Zhang, H.; Wang, Z.P.; Wu, S.J. Salmonella typhimurium detection using a surface-enhanced Raman scattering-based aptasensor. Int. J. Food Microbiol. 2016, 218, 38–43. [Google Scholar] [CrossRef] [PubMed]
- Xiao-Wei, H.; Zhi-Hua, L.; Xiao-Bo, Z.; Ji-Yong, S.; Han-Ping, M.; Jie-Wen, Z.; Li-Min, H.; Holmes, M. Detection of meat-borne trimethylamine based on nanoporous colorimetric sensor arrays. Food Chem. 2016, 197, 930–936. [Google Scholar] [CrossRef] [PubMed]
- Zeng, K.; Wei, W.; Jiang, L.; Zhu, F.; Du, D.L. Use of Carbon Nanotubes as a Solid Support to Establish Quantitative (Centrifugation) and Qualitative (Filtration) Immunoassays to Detect Gentamicin Contamination in Commercial Milk. J. Agric. Food Chem. 2016, 64, 7874–7881. [Google Scholar] [CrossRef] [PubMed]
- Qin, C.C.; Guo, W.L.; Liu, Y.; Liu, Z.C.; Qiu, J.; Peng, J.B. A Novel Electrochemical Sensor Based on Graphene Oxide Decorated with Silver Nanoparticles-Molecular Imprinted Polymers for Determination of Sunset Yellow in Soft Drinks. Food Anal. Methods 2017, 10, 2293–2301. [Google Scholar] [CrossRef]
- Xie, G.; Zhu, M.; Liu, Z.J.; Zhang, B.; Shi, M.J.; Wang, S. Development and evaluation of the magnetic particle-based chemiluminescence immunoassay for rapid and quantitative detection of Aflatoxin B1 in foodstuff. Food Agric. Immunol. 2018, 29, 564–576. [Google Scholar] [CrossRef]
- Tahir, H.E.; Zou, X.B.; Huang, X.W.; Shi, J.Y.; Mariod, A.A. Discrimination of honeys using colorimetric sensor arrays, sensory analysis and gas chromatography techniques. Food Chem. 2016, 206, 37–43. [Google Scholar] [CrossRef]
- Chen, Q.S.; Hu, W.W.; Su, J.; Li, H.H.; Ouyang, Q.; Zhao, J.W. Nondestructively sensing of total viable count (TVC) in chicken using an artificial olfaction system based colorimetric sensor array. J. Food Eng. 2016, 168, 259–266. [Google Scholar] [CrossRef]
- Li, H.H.; Kutsanedzie, F.; Zhao, J.W.; Chen, Q.S. Quantifying Total Viable Count in Pork Meat Using Combined Hyperspectral Imaging and Artificial Olfaction Techniques. Food Anal. Methods 2016, 9, 3015–3024. [Google Scholar] [CrossRef]
- Li, L.Q.; Xie, S.M.; Zhu, F.Y.; Ning, J.M.; Chen, Q.S.; Zhang, Z.Z. Colorimetric sensor array-based artificial olfactory system for sensing Chinese green tea’s quality: A method of fabrication. Int. J. Food Prop. 2017, 20, 1762–1773. [Google Scholar] [CrossRef]
- Huang, X.Y.; Lv, R.Q.; Wang, S.; Aheto, J.H.; Dai, C.X. Integration of computer vision and colorimetric sensor array for nondestructive detection of mango quality. J. Food Process Eng. 2018, 41, e12873. [Google Scholar] [CrossRef]
- Huang, X.W.; Zou, X.B.; Shi, J.Y.; Li, Z.H.; Zhao, J.W. Colorimetric sensor arrays based on chemo-responsive dyes for food odor visualization. Trends Food Sci. Technol. 2018, 81, 90–107. [Google Scholar] [CrossRef]
- Zhang, X.A.; Huang, C.; Jiang, Y.; Jiang, Y.; Shen, J.; Han, E. Structure-Switching Electrochemical Aptasensor for Single-Step and Specific Detection of Trace Mercury in Dairy Products. J. Agric. Food Chem. 2018, 66, 10106–10112. [Google Scholar] [CrossRef] [PubMed]
- Wu, S.J.; Duan, N.; Qiu, Y.T.; Li, J.H.; Wang, Z.P. Colorimetric aptasensor for the detection of Salmonella enterica serovar typhimurium using ZnFe2O4-reduced graphene oxide nanostructures as an effective peroxidase mimetics. Int. J. Food Microbiol. 2017, 261, 42–48. [Google Scholar] [CrossRef] [PubMed]
- Zhang, C.; Yu, X.X.; Shi, X.M.; Han, Y.F.; Guo, Z.M.; Liu, Y. Development of Carbon Quantum Dot-Labeled Antibody Fluorescence Immunoassays for the Detection of Morphine in Hot Pot Soup Base. Food Anal. Methods 2020, 13, 1042–1049. [Google Scholar] [CrossRef]
- Lin, H.; Man, Z.X.; Kang, W.C.; Guan, B.B.; Chen, Q.S.; Xue, Z.L. A novel colorimetric sensor array based on boron-dipyrromethene dyes for monitoring the storage time of rice. Food Chem. 2018, 268, 300–306. [Google Scholar] [CrossRef]
- Zhai, X.D.; Shi, J.Y.; Zou, X.B.; Wang, S.; Jiang, C.P.; Zhang, J.J.; Huang, X.W.; Zhang, W.; Holmes, M. Novel colorimetric films based on starch/polyvinyl alcohol incorporated with roselle anthocyanins for fish freshness monitoring. Food Hydrocoll. 2017, 69, 308–317. [Google Scholar] [CrossRef]
- Li, H.H.; Zhang, B.; Hu, W.W.; Liu, Y.; Dong, C.W.; Chen, Q.S. Monitoring black tea fermentation using a colorimetric sensor array-based artificial olfaction system. J. Food Process. Preserv. 2018, 42, e13348. [Google Scholar] [CrossRef]
- Lv, R.Q.; Huang, X.Y.; Aheto, J.H.; Mu, L.J.; Tian, X.Y. Analysis of fish spoilage by gas chromatography-mass spectrometry and electronic olfaction bionic system. J. Food Saf. 2018, 38, e12557. [Google Scholar] [CrossRef]
- Zhang, Z.; Zhu, N.F.; Dong, S.B.; Huang, M.L.; Yang, L.Q.; Wu, X.Y.; Liu, Z.J.; Jiang, J.H.; Zou, Y.M. Plasmonic ELISA Based on Nanospherical Brush-Induced Signal Amplification for the Ultrasensitive Naked-Eye Simultaneous Detection of the Typical Tetrabromobisphenol A Derivative and Byproduct. J. Agric. Food Chem. 2018, 66, 2996–3002. [Google Scholar] [CrossRef]
- Sun, J.; Xu, B.; Mu, Y.Y.; Ma, H.L.; Qu, W.J. Functional Magnetic Nanoparticles for Highly Efficient Cholesterol Removal. J. Food Sci. 2018, 83, 122–128. [Google Scholar] [CrossRef] [PubMed]
- Zhai, X.D.; Li, Z.H.; Shi, J.Y.; Huang, X.W.; Sun, Z.B.; Zhang, D.; Zou, X.B.; Sun, Y.; Zhang, J.J.; Holmes, M.; et al. A colorimetric hydrogen sulfide sensor based on gellan gum-silver nanoparticles bionanocomposite for monitoring of meat spoilage in intelligent packaging. Food Chem. 2019, 290, 135–143. [Google Scholar] [CrossRef]
- Cardoso, A.R.A.; Barquinha, P.M.C.; Sales, M.G.F. Enzyme-Free Monitoring of Glucose Using Molecularly Imprinted Polymers and Gold Nanoparticles. Biosensors 2025, 15, 537. [Google Scholar] [CrossRef] [PubMed]
- Ouyang, Q.; Liu, Y.; Chen, Q.S.; Guo, Z.M.; Zhao, J.W.; Li, H.H.; Hu, W.W. Rapid and specific sensing of tetracycline in food using a novel upconversion aptasensor. Food Control 2017, 81, 156–163. [Google Scholar] [CrossRef]
- Zhang, B.; Li, H.H.; Pan, W.X.; Chen, Q.S.; Ouyang, Q.; Zhao, J.W. Dual-Color Upconversion Nanoparticles (UCNPs)-Based Fluorescent Immunoassay Probes for Sensitive Sensing Foodborne Pathogens. Food Anal. Methods 2017, 10, 2036–2045. [Google Scholar] [CrossRef]
- Wang, P.Y.; Li, H.H.; Hassan, M.M.; Guo, Z.M.; Zhang, Z.Z.; Chen, Q.S. Fabricating an Acetylcholinesterase Modulated UCNPs-Cu2+ Fluorescence Biosensor for Ultrasensitive Detection of Organophosphorus Pesticides-Diazinon in Food. J. Agric. Food Chem. 2019, 67, 4071–4079. [Google Scholar] [CrossRef]
- Han, Y.W.; Lu, J.Y.; Wang, M.H.; Sun, C.X.; Yang, J.; Li, G.X. An electrochemical biosensor for exosome detection based on covalent organic frameworks conjugated with DNA and horseradish peroxidase. J. Electroanal. Chem. 2022, 920, 116576. [Google Scholar] [CrossRef]
- Zhao, H.; Xie, W.; Zhang, R.L.; Wang, X.D.; Liu, H.F.; Li, J.; Sha, T.; Guo, X.S.; Li, J.; Sun, Q.M.; et al. Electrochemical sensor for human norovirus based on covalent organic framework/pillararene heterosupramolecular nanocomposites. Talanta 2022, 237, 122896. [Google Scholar] [CrossRef]
- Luo, Y.; Wu, N.; Wang, L.Y.; Song, Y.H.; Du, Y.; Ma, G.R. Biosensor Based on Covalent Organic Framework Immobilized Acetylcholinesterase for Ratiometric Detection of Carbaryl. Biosensors 2022, 12, 625. [Google Scholar] [CrossRef]
- Jin, J.; Ma, H.L.; Wang, W.W.; Luo, M.; Wang, B.; Qu, W.J.; He, R.H.; Owusu, J.; Li, Y.L. Effects and mechanism of ultrasound pretreatment on rapeseed protein enzymolysis. J. Sci. Food Agric. 2016, 96, 1159–1166. [Google Scholar] [CrossRef]
- Dai, C.H.; Zhang, W.W.; He, R.H.; Xiong, F.; Ma, H.L. Protein breakdown and release of antioxidant peptides during simulated gastrointestinal digestion and the absorption by everted intestinal sac of rapeseed proteins. LWT Food Sci. Technol. 2017, 86, 424–429. [Google Scholar] [CrossRef]
- Zhang, H.; Zhou, J.; Zheng, X.; Zhang, Z.; Wang, Z.; Tan, X. Characterization of a Desiccation Stress Induced Lipase Gene from Brassica napus L. J. Agric. Sci. Technol. 2016, 18, 1129–1141. [Google Scholar]
- Hou, F.R.; Ding, W.H.; Qu, W.J.; Oladejo, A.O.; Xiong, F.; Zhang, W.W.; He, R.H.; Ma, H.L. Alkali solution extraction of rice residue protein isolates: Influence of alkali concentration on protein functional, structural properties and lysinoalanine formation. Food Chem. 2017, 218, 207–215. [Google Scholar] [CrossRef] [PubMed]
- Gao, R.C.; Shi, T.; Liu, X.D.; Zhao, M.Q.; Cui, H.L.; Yuan, L. Purification and characterisation of a salt-stable protease fromthe halophilic archaeon Halogranum rubrum. J. Sci. Food Agric. 2017, 97, 1412–1419. [Google Scholar] [CrossRef] [PubMed]
- He, W.S.; Hu, D.; Wang, Y.; Chen, X.Y.; Jia, C.S.; Ma, H.L.; Feng, B.A. A novel chemo-enzymatic synthesis of hydrophilic phytosterol derivatives. Food Chem. 2016, 192, 557–565. [Google Scholar] [CrossRef]
- Hu, W.W.; He, R.H.; Hou, F.R.; Ouyang, Q.; Chen, Q.S. Real-time monitoring of alcalase hydrolysis of egg white protein using near infrared spectroscopy technique combined with efficient modeling algorithm. Int. J. Food Prop. 2017, 20, 1488–1499. [Google Scholar] [CrossRef]
- Cui, H.Y.; Li, W.; Lin, L. Antibacterial activity of liposome containing curry plant essential oil against Bacillus cereusin rice. J. Food Saf. 2017, 37, e12302. [Google Scholar] [CrossRef]
- Lin, L.; Liao, X.; Surendhiran, D.; Cui, H.Y. Preparation of ε-polylysine/chitosan nanofibers for food packaging against Salmonella on chicken. Food Packag. Shelf Life 2018, 17, 134–141. [Google Scholar] [CrossRef]
- Cui, H.Y.; Dai, Y.J.; Lin, L. Enhancing antibacterial efficacy of nisin in pork by poly-γ-glutamic acid/poly-l-lysine nanoparticles encapsulation. J. Food Saf. 2018, 38, e12475. [Google Scholar] [CrossRef]
- Wang, D.X.; Gao, Q.; Wang, T.T.; Zhao, G.S.; Qian, F.; Huang, J.B.; Wang, H.S.; Zhang, X.; Wang, Y.J. Green tea infusion protects against alcoholic liver injury by attenuating inflammation and regulating the PI3K/Akt/eNOS pathway in C57BL/6 mice. Food Funct. 2017, 8, 3165–3177. [Google Scholar] [CrossRef]
- Cui, H.Y.; Zhao, C.T.; Li, C.Z.; Lin, L. Essential Oils-Based Antibacterial Agent Against Escherichia coli O157:H7 Biofilm on Cucumber. J. Food Process. Preserv. 2017, 41, e13140. [Google Scholar] [CrossRef]
- Cui, H.Y.; Bai, M.; Rashed, M.M.A.; Lin, L. The antibacterial activity of clove oil/chitosan nanoparticles embedded gelatin nanofibers against Escherichia coli O157:H7 biofilms on cucumber. Int. J. Food Microbiol. 2018, 266, 69–78. [Google Scholar] [CrossRef] [PubMed]
- Wu, T.J.; Han, F.; Mei, J.P.; Chen, J.; Li, P.P.; Li, M.Y.; Shen, J.X.; Han, X.; Song, R.T.; Hou, S.N.; et al. Photoactive metal-covalent organic framework nanozymes with enhanced peroxidase-mimicking activity for eliminating drug-resistant bacterial infections. J. Colloid Interface Sci. 2025, 699, 138178. [Google Scholar] [CrossRef] [PubMed]
- Cui, H.Y.; Li, W.; Li, C.Z.; Lin, L. Intelligent release of cinnamon oil from engineered proteoliposome via stimulation of Bacillus cereus protease. Food Control 2016, 67, 68–74. [Google Scholar] [CrossRef]
- Lou, C.C.; Zhu, L.Q.; Yang, F. NH2-MIL-88B@TP-TA@CuS for photothermal catalytic synergistic antibacterial activity. Colloids Surf. B Biointerfaces 2024, 242, 114094. [Google Scholar] [CrossRef]
- Feng, J.; Kong, F.; Yue, W.S.; Yu, H.; He, Z.L.; Zhai, Y.N.; Dong, Y.B. Covalent organic framework-based nanozyme for cascade-amplified synergistic cancer therapy. Sci. China-Mater. 2023, 66, 4079–4089. [Google Scholar] [CrossRef]
- Zhou, L.L.; Guan, Q.; Zhou, W.; Kan, J.L.; Teng, K.; Hu, M.; Dong, Y.B. A Multifunctional Covalent Organic Framework Nanozyme for Promoting Ferroptotic Radiotherapy against Esophageal Cancer. ACS Nano 2023, 17, 20445–20461. [Google Scholar] [CrossRef]
- Xu, Z.L.; Wang, T.; Li, J.; Zhang, F.; Lou, H.; Zhang, J.; Zhang, W.H.; Zhang, W.F.; Zhou, B.L. Nanosized porous artificial enzyme as a pH-sensitive doxorubicin delivery system for joint enzymatic and chemotherapy towards tumor treatment. New J. Chem. 2022, 46, 14565–14577. [Google Scholar] [CrossRef]
- Chen, Y.D.; Feng, T.T.; Zhu, X.H.; Tang, Y.T.; Xiao, Y.; Zhang, X.H.; Wang, S.F.; Wang, D.; Wen, W.; Liang, J.C.; et al. Ambient Synthesis of Porphyrin-Based Fe-Covalent Organic Frameworks for Efficient Infected Skin Wound Healing. Biomacromolecules 2024, 25, 3671–3684. [Google Scholar] [CrossRef]
- Niu, X.H.; Li, X.; Lyu, Z.Y.; Pan, J.M.; Ding, S.C.; Ruan, X.F.; Zhu, W.L.; Du, D.; Lin, Y.H. Metal-organic framework based nanozymes: Promising materials for biochemical analysis. Chem. Commun. 2020, 56, 11338–11353. [Google Scholar] [CrossRef]
- Sun, L.P.; Hu, J.L.; Yang, Y.F.; Wang, Y.K.; Wang, Z.J.; Gao, Y.; Nie, Y.Q.; Liu, C.; Kan, H.X. ChatGPT Combining Machine Learning for the Prediction of Nanozyme Catalytic Types and Activities. J. Chem. Inf. Model. 2024, 64, 6736–6744. [Google Scholar] [CrossRef]
- Xuan, W.J.; Li, X.F.; Gao, H.L.; Zhang, L.Y.; Hu, J.L.; Sun, L.P.; Kan, H.X. Artificial intelligence driven platform for rapid catalytic performance assessment of nanozymes. Sci. Rep. 2025, 15, 13305. [Google Scholar] [CrossRef]
- Chen, D.Y.; Zheng, W.; Zhang, Z.H.; Yu, S.P.; Hang, X.X.; Wu, H.; Xiang, X.W.; Mu, W.; Jiao, Y.L.; Dong, Z.Z.; et al. Nanozymes Integrated Biochips Toward Smart Detection System. Adv. Sci. 2025, e19136. [Google Scholar] [CrossRef]
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Wang, F.; Li, B.; Wang, M.; Huo, S.; Zou, B.; Ma, A.; Zhuang, G.; Xu, L. Organic Framework-Based Nanozymes: Design, Property, and Application. Catalysts 2026, 16, 223. https://doi.org/10.3390/catal16030223
Wang F, Li B, Wang M, Huo S, Zou B, Ma A, Zhuang G, Xu L. Organic Framework-Based Nanozymes: Design, Property, and Application. Catalysts. 2026; 16(3):223. https://doi.org/10.3390/catal16030223
Chicago/Turabian StyleWang, Feng, Beidian Li, Mingtong Wang, Shuhao Huo, Bin Zou, Anzhou Ma, Guoqiang Zhuang, and Ling Xu. 2026. "Organic Framework-Based Nanozymes: Design, Property, and Application" Catalysts 16, no. 3: 223. https://doi.org/10.3390/catal16030223
APA StyleWang, F., Li, B., Wang, M., Huo, S., Zou, B., Ma, A., Zhuang, G., & Xu, L. (2026). Organic Framework-Based Nanozymes: Design, Property, and Application. Catalysts, 16(3), 223. https://doi.org/10.3390/catal16030223

