| Literature DB >> 33330357 |
Shuangfei Cai1, Rong Yang1,2.
Abstract
Recently, remarkable progress has been made in nanozyme research due to the rapid development of nanomaterials. Two-dimensional nanomaterials such as metal nanosheets, graphene-based materials, transition metal oxides/dichalcogenides, etc., provide enhanced physical and chemical functionality owing to their ultrathin structures, high surface-to-volume ratios, and surface charges. They have also been found to have high catalytic activities in terms of natural enzymes such as peroxidase, oxidase, catalase, and superoxide dismutase. This review provides an overview of the recent progress of nanozymes based on two-dimensional nanomaterials, with an emphasis on their synthetic strategies, hybridization, catalytic properties, and biomedical applications. Finally, the future challenges and prospects for this research are discussed.Entities:
Keywords: biomedical; catalysis; nanomaterials; nanozyme; two-dimensional
Year: 2020 PMID: 33330357 PMCID: PMC7729064 DOI: 10.3389/fchem.2020.565940
Source DB: PubMed Journal: Front Chem ISSN: 2296-2646 Impact factor: 5.221
Figure 1Two-dimensional NMs with enzyme-like activities for biomedical applications.
The kinetics parameters of HRP, Fe3O4 NPs, and typical 2D POD-mimics.
| HRP | 25 | TMB | 0.434 | 10 | 0.4 | Gao et al., |
| H2O2 | 3.7 | 8.71 | 0.348 | |||
| Fe3O4 NPs | 1.14 | TMB | 0.098 | 3.44 | 3.02 | Gao et al., |
| H2O2 | 154 | 9.78 | 8.58 | |||
| GO | NA | TMB | 0.0237 ± 0.001 | 3.45 ± 0.31 | NA | Song et al., |
| H2O2 | 3.99 ± 0.67 | 3.85 ± 0.22 | ||||
| Pt/GO | NA | TMB | 0.1864 | 10.2 | NA | Zhang et al., 2014 |
| H2O2 | 221.4 | 12.45 | ||||
| IrO2/GO | NA | TMB | 0.56 | 32.8 | NA | Sun et al., |
| H2O2 | 5.19 | 20.8 | ||||
| IrO2/rGO | NA | TMB | 0.276 | 42.7 | NA | Liu X. L. et al., |
| H2O2 | 229 | 372.9 | ||||
| MoS2 | NA | TMB | 0.525 | 5.16 | NA | Lin et al., |
| H2O2 | 0.0116 | 4.29 | ||||
| WS2 | NA | TMB | 1.83 | 4.31 | NA | Lin et al., |
| H2O2 | 0.24 | 4.52 | ||||
| MoSe2 | NA | TMB | 0.014 | 0.56 | NA | Wu et al., |
| H2O2 | 0.155 | 0.99 | ||||
| WSe2 | NA | TMB | 0.0433 | 1.43 | NA | Chen T. M. et al., |
| H2O2 | 19.53 | 2.22 | ||||
| VS2 | NA | TMB | 0.28 | 41.6 | NA | Huang et al., |
| H2O2 | 3.49 | 55.7 | ||||
| PtAg/MoS2 | NA | TMB | 25.71 | 7.29 | NA | Cai et al., |
| H2O2 | 0.386 | 3.22 | ||||
| N-doped MoS2 | NA | TMB | 0.7916 | 1.796 | NA | Feng et al., |
| H2O2 | 0.4459 | 4.348 | ||||
| NiFe LDHs | NA | TMB | 0.5 ± 0.05 | NA | NA | Zhan et al., |
| H2O2 | 2.4 ± 0.1 | |||||
| CeO2/CoFe LDHs | NA | TMB | 0.419 | NA | NA | Yang et al., |
| H2O2 | 10.82 | |||||
| AuNi/ | NA | TMB | 0.16 | 2.34 | NA | Darabdhara et al., |
| H2O2 | 4.47 | 6.16 | ||||
| Au/ | NA | TMB | 0.27 | 1.27 | NA | Darabdhara et al., |
| H2O2 | 11.13 | 3.44 | ||||
| Ni/ | NA | TMB | 0.49 | 0.75 | NA | Darabdhara et al., |
| H2O2 | 19.91 | 1.38 | ||||
| MOF | NA | TMB | 0.365 | 6.53 | NA | Chen J. Y. et al., |
| H2O2 | 2.49 | 130 | ||||
| NA | TMB | 0.42 | NA | NA | Ivanova et al., | |
| H2O2 | 12.2 | |||||
| Pt/ | NA | TMB | 0.21 | NA | NA | Ivanova et al., |
| H2O2 | 9.2 | |||||
| WO3 | NA | TMB | 10.6 | 1.53 | NA | Li et al., |
| H2O2 | 1260 | 3 | ||||
| Pt/CuO | NA | TMB | 0.413 | 14.6 | NA | Wang X. H. et al., |
| H2O2 | 2.887 | 8.85 | ||||
| Pd | NA | TMB | 0.21 | 7.01 | NA | Cai et al., |
| H2O2 | 4.44 | 4.02 | ||||
| Pd | 5.06 | TMB | 0.1098 | 5.82 | 1.2 | Wei et al., |
| H2O2 | 4.398 | 6.51 | 1.3 | |||
| Au/Pd | NA | TMB | 0.295 | 19.65 | NA | Cai et al., |
| H2O2 | 5.89 | 8.19 | ||||
| Pt/Pd | 1.9 | TMB | 0.0865 | 6.228 | 3.1 | Wei et al., |
| H2O2 | 2.231 | 5 | 2.5 | |||
| Rh | 1.53 | TMB | 0.264 | 12.56 | 8.2 | Cai et al., |
| H2O2 | 4.51 | 68.09 | 44.5 |
K.
Not available, NA.
Summary of several typical 2D nanozymes for colorimetric detection of various target analytes.
| Glucose | GO | POD | 1–20 μM | 1 μM | Song et al., |
| Glucose | FePd/rGO | POD | 1–200 μM | 1.76 μM | Yang et al., |
| Glucose | MoS2 | POD | 5–150 μM | 1.2 μM | Lin et al., |
| Glucose | WS2 | POD | 5–300 μM | 2.9 μM | Lin et al., |
| Glucose | WSe2 | POD | 10–60 μM | 10 μM | Chen T. M. et al., |
| Glucose | VS2 | POD | 5–250 μM | 1.5 μM | Huang et al., |
| Glucose | PtAg/MoS2 | POD | 1–10 μM | 0.8 μM | Cai et al., |
| Glucose | NiFe LDHs | POD | 0.05–2.0 mM | 23 ± 2 μM | Zhan et al., |
| Glucose | CeO2/CoFe | POD | 0.05–2.0 mM | 15 μM | Yang et al., |
| Glucose | POD | 5–100 μM | 1.0 μM | Lin et al., | |
| Glucose | Au/ | POD | 5–100 μM | 1.2 μM | Wu et al., |
| Glucose | Pd/ | POD | 50–2,000 μM | 50 μM | Zhang W. C. et al., |
| Glucose | Fe/ | POD | 0.5–10 μM | 0.5 μM | Tian et al., |
| Glucose | AuNi/ | POD | 0.5–30 μM | 1.7 μM | Darabdhara et al., |
| Glucose | Au/Pd | POD | 5–400 μM | 0.85 μM | Cai et al., |
| Glucose | Pt/Pd | POD | 0.1–0.5 mM | NA | Wei et al., |
| Glucose | Au/MOF | GOx, POD | 10–300 μM | 8.5 μM | Huang et al., |
| AA | Pt/CuO | POD | 1 μM−0.6 mM | 0.796 μM | Wang X. H. et al., |
| AA | IrO2/GO | POD | 5–70 μM | 324 nM | Sun et al., |
| GSH | MnO2 | OD | NA | 300 nM | Liu et al., |
| GSH | MnO2 | OD | 10 nM−5 μM | 5.6 nM | Ge et al., |
| GSH | IrO2/rGO | POD | 0.1–50 μM | 83 nM | Liu X. L. et al., |
| Cysteine | IrO2/rGO | POD | 0.1–50 μM | 40 nM | Liu X. L. et al., |
| Homocysteine | IrO2/rGO | POD | 0.1–50 μM | 57 nM | Liu X. L. et al., |
| Xanthine | Rh | POD | 2–80 μM | 0.73 μM | Cai et al., |
| Xanthine | WO3 | POD | 25–200 μM | 1.24 μM | Li et al., |
| Xanthine | MoSe2 | POD | 0.01–0.32 mM | 1.964 μM | Wu et al., |
| Dopamine | Pt/BN | POD | 2–55 μM | 0.76 μM | Ivanova et al., |
| Dopamine | CuS/rGO | POD | 2–100 μM | 0.48 μM | Dutta et al., |
| Cholesterol | CuS/BN | POD | 10–100 μM | 2.9 μM | Zhang et al., |
| AChe | MnO2 | OD | 0.1–15 mU mL−1 | 35 μU mL−1 | Yan et al., |
| MCF-7 cells | Au/GO | POD | NA | 1,000 | Tao et al., |
| MCF-7 cells | PtCu/MoS2 | OD | NA | 300 | Qi et al., |
| MCF-7 cells | Pt/GO | POD | NA | 125 | Zhang L. N. et al., |
| S2− ions | MoS2/ | POD | 0.1-10 μM | 37 nM | Liu et al., |
| Fe2+ ions | MoS2 | POD | 0.01–0.8 μM | 7 nM | Wang et al., |
| Pb2+ ions | WS2 | POD | 5–80 μg L−1 | 4 μg L−1 | Tang et al., |
aAcetylcholinesterase.
AChe, Linear detection range; LDR, Limit of detection, LOD.
Figure 2Illustration of (A) composition, (B) use for wound healing of mice, and (C) antibacterial mechanism of 2D MOF/GOx hybrid nanozyme. Reproduced with permission from Liu X. P. et al. (2019). Copyright 2019 American Chemical Society.
Summary of representative 2D nanozymes as antioxidants.
| GO NSs | SOD, CAT | Protecting mesenchymal stem cells from ROS accumulation | Halim et al., |
| Se/GO | Glutathione Peroxidase | protecting RAW264.7 cells from oxidative stress by catalyzing H2O2 decomposition to H2O | Huang et al., 2017 |
| MoS2 NSs | SOD, CAT | Protecting | Chen T. M. et al., |
| WS2, MoSe2 and WSe2 NSs coated with PCL-b-PEG | SOD, CAT | Scavenging mitochondrial and intracellular ROS and RNS in lipopolysaccharide (LPS)- or bacteria-induced inflammatory cells | Yim et al., |
| PVP-modified Nb2C NSs | SOD | Scavenging ROS against ionizing radiation | Ren et al., |
| Se-modified | CAT | Protecting A549 cells from ROS-induced damage | Cao X. N. et al., |
Figure 3(A) Illustration of synthesis and antitumor process of Pt/BP nanocomposites as well as their characterization: (B) TEM image of BP NSs and (C) Pt/BP nanocomposites (inset shows the high-resolution TEM image of a Pt NP), (D) high-angle annular dark-field scanning TEM (HAADF-STEM) image of Pt/BP, elemental maps of (E) P, and (F) Pt. Adapted with permission from Ouyang et al. (2018). Copyright 2018 Royal Society of Chemistry.