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成果及论文

(54) Xu, S. C.; Wu, H. F.; Liu, Y. X.; Wang, Z. G.* Self-assembled G-fold DNA/Amino Acid Amphiphiles-based Oxidase-mimetic Materials Exhibiting Drug-degrading and Photoswitchable Capabilities. Chemistry of Materials 2024, 10.1021/acs.chemmater.3c03281. 

(53) Liu, Y. X.; Li, Y.; Wu, H. F.; Xu, S. C.; Zhang, B. L.; Li, S.; Du, R. K.; Jiang, M. Q.; Chen, Z. M.; Lv, Y. Q.*; Wang, Z. G.* Robust Oxidase-Mimetic Supramolecular Nanocatalyst for Lignin Biodegradation. Nano Letters 2024, 24, 2520–2528.

(52) Liu, Y. X.; Xu, W. J.; Xu, S. C.; Wu, H. F.; Zhang, B. L.; Song, L.; Wang, Z. G.* Designed Imidazole-based Supramolecular Catalysts for Accelerating Oxidation/Hydrolysis Cascade Reactions. Nano Research 2024, 10.1007/s12274-024-6489-5. 

(51) Li, S.; Wu, H. F.; Liu, Y. X.; Zhang, B. L.; Xu, S. C.; Wang, Z. G.* An Oxidase-mimetic Nanocatalyst based on Geometry-dependent Biomolecular Self-assembly. Chemistry of Materials 2023, 35, 10515–10523

(50) Du, P. D.; Xu, S. C.; Wu, H. F.; Liu, Y. X.; Wang, Z. G.* Histidine-Based Supramolecular Nanoassembly Exhibiting Dual Enzyme-Mimetic Functions: Alter Tautomeric Preference of Histidine to Tailor the Oxidative/Hydrolytic Catalysis. Nano Letters 2023, 23, 11461–11468.

(49) Du, R. K.; Teng, Q.; Xu, S. C.; Jiang, M. Q.; Irmisch, P.*; Wang, Z. G.* Self-Assembly of Designed Peptides with DNA to Accelerate the DNA Strand Displacement Process for Dynamic Regulation of DNAzymes. ACS Nano 2023, 17, 24753–24762

(48)Jiang, M. Q.; Xu, S. C.; Liu, Y. X.; Wang, Z. G.* Designed DNA/Amino Acid Amphiphile-based Supramolecular Oxidase-Mimetic Catalyst for Colorimetric DNA Detection. Chemical Communications 2023, 59, 14540-14543  (Invited) (A themed collection on “Supramolecular & Macrocyclic chemistry in China”)

(47) Liu, J. H.; Wu, H. F; Liu, Y. X.; Wang, Z. G.* A Colorimetric Sensor based on Oxidase-Mimic Supramolecular Catalyst for Selective and Sensitive Biomolecular Detection. ACS Applied Materials & Interfaces 2023, 15, 48945–48951. 

(46) Xu, S. C.; Wu, H. F.; Liu, S. Y.; Du, P. D.; Wang, H.*; Yang, H. J.; Xu, W. J.; Chen, S. M.; Song, L.; Li, J. K.; Shi, X. H.; Wang, Z. G.* A Supramolecular Metalloenzyme Possessing Robust Oxidase-Mimetic Catalytic Function. Nature Communications 2023, 14, 4040.

(45) Wu, H. F.; Xu, S. C.; Du, P. D.; Liu, Y. X.; Li, H.;* Yang, H. J.; Wang, T.; Wang, Z. G.* A Nucleotide-Copper (II) Complex Possessing Monooxygenase-Like Catalytic Function. Journal of Materials Chemistry B 2023, 11, 7117 - 7125

(44) Zhang, B.; Wu, H.; Li, S.; Liu, Y. X.; Du, P. D.; Wang, Z. G.* Enzyme-mimetic Photodecarboxylation based on the Geometry-dependent Supramolecular Association. ACS Catalysis 2023, 13, 6763-6772.

(43) Liu, Y. X.; Wang, Z.G.* Heme-Dependent Supramolecular Nanocatalysts: A Review. ACS Nano 2023, 17, 13000–13016 

(42) Du, P.; Shen, Y.; Yu, B.*; Wang, Z.G.*; Xu, F. J.* A H2O2-Supplied Supramolecular Material for Post-irradiated Infected Wound Treatment. Advanced Science 2023, 10, 2206851.

(41) Lou, Y.*; Zhang, B.; Ye, X. Y.; Wang, Z. G.* Self-assembly of the De novo Designed Peptides to Produce Supramolecular Catalysts with Built-in Enzyme-like Active Sites: A Review of Structure-Activity Relationship.  Materials Today Nano 2023, 21, 100302. 

(40)  Liu, Q.*; Kuzuya, A; Wang, Z. G.* Supramolecular Enzyme-mimicking Catalysts Self-assembled from Peptides. iScience 2023, 26, 105831. (Invited)

(39) Teng, Q.; Wu, H. F.; Sun, H.; Liu, Y. Q.; Wang, H.; Wang, Z. G.* Switchable Enzyme-mimicking Catalysts Self-Assembled from De novo Designed Peptides and DNA G-quadruplex/Hemin Complex. Journal of Colloid and Interface Science 2022, 628, 1004-1011

(38) Sun, H.; Wu, H. F.; Teng, Q.; Liu, Y. X.; Wang, H.; Wang, Z. G.* Enzyme-Mimicking Materials from Designed Self-Assembly of Lysine-Rich Peptides and G-Quadruplex DNA//Hemin DNAzyme: Charge Effect of the Key Residues on the Catalytic Functions. Biomacromolecules 2022, 23, 3469–3476

(37) Liu, Y. X.; Du, P. D.; Teng, Q.; Sun, H.; Ye, X. Y.; Wang, Z. G.* Self-assembly of Fibril-forming Histidine-rich Peptides for Cofactor-free Oxidase-mimetic Catalysis. Supramolecular Materials 2022, 1, 100012

(36) Du, P. D.; Liu, S. Y.; Sun, H.; Wu, H. F.; Wang, Z. G.* Designed Histidine-rich Peptide Self-assembly for Accelerating Oxidase-Catalyzed Reactions. Nano Research 2022, 15, 4032–4038

(35) Du, P. D.; Xu, S. C.; Xu, Z. K.*; Wang, Z. G.*  Bioinspired Self‐Assembling Materials for Modulating Enzyme Functions. Advanced Functional Materials 2021, 13 , 2104819. 

(34) Liu, Q.; Wan, K. W.; Shang, Y.; Wang, Z. G.*; Zhang, Y. Y.; Dai, L. R.; Wang, C.; Wang, H.*; Shi, X. H.; Ding, B.* Cofactor-free Oxidase-Mimetic Nanomaterials from Self-assembled Histidine-rich Peptides. Nature Materials 2021, 20, 395-402.

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(33) Liu, S. Y.; Du, P. D.; Sun, H.; Yu, H. Y.*; Wang, Z. G.* Bioinspired Supramolecular Catalysts from Designed Self-Assembly of DNA or Peptides. ACS Catalysis 2020, 10, 14937–14958.

(32) Yu, D.; Zhang, N. N.; Liu, S. Y.; Hu, W. T.; Nie, J. J.; Zhang, K.; Yu, B. *; Wang, Z. G.;* Xu, F. J. * Self-Assembled Nucleotide/Saccharide-Tethering Polycation-Based Nanoparticle for Targeted Tumor Therapy. ACS Materials Letters 2020, 2, 550-556.                    

                                   

(31) Wang, Z. G.; Li, Y. Z.; Wang, H.; Wan, K. W.; Liu, Q.; Shi, X. H.; Ding, B. Q. Enzyme Mimic Based on a Self-Assembled Chitosan/DNA Hybrid Exhibits Superior Activity and Tolerance. Chemistry - A European Journal 2019, 25, 12576-12582.                                                                       

(30) Li, N.; Shang, Y. X.; Han, Z. H.; Wang, T.; Wang, Z. G.*; Ding, B. Q.* Fabrication of Metal Nanostructures on DNA Templates. ACS Applied Materials & Interfaces 2019, 11, 13835-13852

(29) Shang, X. Y.; Shi, J.; Liu, X.; Wang, Z. G.*; Ding, B. Q.* A Bumpy Gold Nanostructure Exhibiting DNA-Engineered Stimuli-Responsive SERS Signals. Nanoscale 2018, 10, 9455-9459.                                                            

(28) Wang, Z. G.; Li, N.; Wang, T.; Ding, B. Q. * Surface-Guided Chemical Processes on Self-Assembled DNA Nanostructures. Langmuir 2018, 34, 14954–14962.                                                

 (27) Li, Y. Z.; Wang, Z. G.*; Li, H. R.*; Ding, B. Q.* NAD+ Cofactor Regeneration by TMB-Mediated Horseradish-Peroxidase-Catalyzed Reactions. ChemistrySelect 2018, 3, 10900-10904.                                         

(26) Wang, Z. G.*; Wang, H.; Liu, Q.; Duan, F. Y.; Shi, X. H.*; Ding, B. Q.* Designed Self-Assembly of Peptides with G-Quadruplex/Hemin DNAzyme into Nanofibrils Possessing Enzyme-Mimicking Active Sites and Catalytic Functions. ACS Catalysis 2018, 8, 7016–7024.

(25) Liu, Q.; Wang, H.; Shi, X. H.*; Wang, Z. G.*; Ding, B.* Self-Assembled DNA/Peptide-Based Nanoparticle Exhibiting Synergistic Enzymatic Activity. ACS Nano 2017, 11, 7251-7258.                                         

(24) Liu, Q.; Liu, G. C.; Wang, T.; Fu, J.; Li, R. J.; Song, L. L.; Wang, Z. G.*; Ding, B. Q.*; Chen, F.* Enhanced Stability of DNA Nanostructures by Incorporation of Unnatural Base Pairs. ChemPhysChem 2017, 18, 2977-2980.

(23) Wang, Z. G.; Liu, Q.; Li, N.; Ding, B. Q.* DNA-Based Nanotemplate Directed in Situ Synthesis of Silver Nanoclusters with Specific Fluorescent Emission: Surface-Guided Chemical Reactions. Chemistry of Materials 2016, 28, 8834-8841. 

(22) Zhan, P. F.; Wang, Z. G.*; Li, N.; Ding, B. Q.* Engineering Gold Nanoparticles with DNA Ligands for Selective Catalytic Oxidation of Chiral Substrates. ACS Catalysis 2015, 5, 1489-1498. 

(21) Wang, Z. G.*; Liu, Q.; Ding, B. Q.* Shape-Controlled Nanofabrication of Conducting Polymer on Planar DNA Templates. Chemistry of Materials 2014, 26, 3364-3367.                                                                       

(20) Wang, Z. G.; Ding, B. Q.* Engineering DNA Self-Assemblies as Templates for Functional Nanostructures. Accounts of Chemical Research 2014, 47, 1654-1662.                                                         

(19) Zhan, P. F.; Wang, J. Y.; Wang, Z. G.*; Ding, B. Q.* Engineering the pH-Responsive Catalytic Behavior of AuNPs by DNA. Small 2014, 10, 399-406. 

(18) Wang, Z. G.; Ding, B. Q.* DNA-Based Self-Assembly for Functional Nanomaterials. Advanced Materials 2013, 25, 3905-3914.           

(17) Song, C.; Wang, Z. G.*; Ding, B. Q.* Smart Nanomachines Based on DNA Self-Assembly. Small 2013, 9, 2382-2392. 

(16) Wang, Z. G.; Song, C.; Ding, B. Q.* Functional DNA Nanostructures for Photonic and Biomedical Applications. Small 2013, 9, 2210-2222. 

(15) Jiang, Q.; Wang, Z. G.*; Ding, B. Q.* Programmed Colorimetric Logic Devices Based on DNA-Gold Nanoparticle Interactions. Small 2013, 9, 1016-1020.                                                                  

(14) Wang, Z. G.*; Zhan, P. F.; Ding, B. Q.* Self-Assembled Catalytic DNA Nanostructures for Synthesis of Para-directed Polyaniline. ACS Nano 2013, 7, 1591-1598.          

                              

(13) Wang, Z. G.; Elbaz, J.; Willner, I.* A Dynamically Programmed DNA Transporter. Angewandte Chemie International Edition 2012, 51, 4322-4326.

(12) Elbaz, J.#; Wang, Z. G.#; Wang, F. A.; Willner, I.* Programmed Dynamic Topologies in DNA Catenanes. Angewandte Chemie International Edition 2012, 51, 2349-2353. (Equal contributors. Inside Cover)

(11) Wang, Z. G.; Elbaz, J.; Willner, I.* DNA Machines: Bipedal Walker and Stepper. Nano Letters 2011, 11, 304-309.

(10) Wang, Z. G.; Elbaz, J.; Remacle, F.; Levine, R. D.*; Willner, I.* All-DNA finite-state automata with finite memory. The Proceedings of the National Academy of Sciences 2010, 107, 21996-22001.

(9) Wang, Z. G.; Wilner, O. I.; Willner, I.* Self-Assembly of Aptamer-Circular DNA Nanostructures for Controlled Biocatalysis. Nano Letters 2009, 9, 4098-4102.


(8) Wang, Z. G.; Wang, Y.; Xu, H.; Li, G.; Xu, Z. K.* Carbon Nanotube-Filled Nanofibrous Membranes Electrospun from Poly(Acrylonitrile-Co-Acrylic Acid) for Glucose Biosensor. Journal of Physical Chemistry C 2009, 113, 2955-2960.

(7) Wang, Z. G.; Wan, L. S.; Xu, Z. K.* Immobilization of Catalase on Electrospun Nanofibrous Membranes Modified with Bovine Serum Albumin or Collagen: Coupling Site-Dependent Activity and Protein-Dependent Stability. Soft Matter 2009, 5, 4161-4168.

(6) Wang, Z. G.; Wan, L. S.; Liu, Z. M.; Huang, X. J.; Xu, Z. K.* Enzyme Immobilization on Electrospun Polymer Nanofibers: An Overview. Journal of Molecular Catalysis B-Enzymatic 2009, 56, 189-195.

(5) Wang, Z. G.; Wan, L. S.; Xu, Z. K.* Surface Engineerings of Polyacrylonitrile-Based Asymmetric Membranes Towards Biomedical Applications: An Overview. Journal of Membrance Science 2007, 304, 8-23.

(4) Wang, Z. G.; Ke, B. B.; Xu, Z. K.* Covalent Immobilization of Redox Enzyme on Electrospun Nonwoven Poly(Acrylonitrile-Co-Acrylic Acid) Nanofiber Mesh Filled with Carbon Nanotubes: A Comprehensive Study. Biotechnology and Bioengineering 2007, 97, 708-720.

(3) Wang, Z. G.; Xu, Z. K.*; Wan, L. S.; Wu, J.; Innocent, C.; Seta, P. Nanofibrous Membranes Containing Carbon Nanotubes: Electrospun for Redox Enzyme Immobilization. Macromolecular Rapid Communications 2006, 27, 516-521.

(2) Wang, Z. G.; Xu, Z. K.*; Wan, L. S. Modulation of the Morphologies and Performance of Polyacrylonitrile-Based Asymmetric Membranes Containing Reactive Groups: Effect of Non-Solvents in the Dope Solution. Journal of Membrance Science 2006, 278, 447-456.

(1) Wang, Z. G.; Wang, J. Q.; Xu, Z. K.* Immobilization of Lipase from Candida Rugosa on Electrospun Polysulfone Nanofibrous Membranes by Adsorption. Journal of Molecular Catalysis B-Enzymatic 2006, 42, 45-51.