4.8 Article

Enzyme/Nanocopper Hybrid Nanozymes: Modulating Enzyme-like Activity by the Protein Structure for Biosensing and Tumor Catalytic Therapy

期刊

ACS APPLIED MATERIALS & INTERFACES
卷 13, 期 4, 页码 5111-5124

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsami.0c20501

关键词

nanozymes; copper hybrids; nanoparticles; oxidase-like activity; biosensors; cytotoxicity

资金

  1. Spanish Government
  2. Spanish National Research Council (CSIC) [PIE 201880E011, 201980E081]
  3. Fondo de Investigaciones Sanitarias from Instituto de Salud Carlos III
  4. European Union (ERDF/ESF, Investing in your future) [PI15/00663, PI18/00349]
  5. Spanish Ministry of Economy and Competitiveness [BFU2016-78232-P]
  6. Diputacion General de Aragon
  7. Diputacion General de Aragon (Protein Targets and Bioactive Compounds Group) [E45_20R]
  8. Diputacion General de Aragon (Digestive Pathology Group) [B25_20R]
  9. Centro de Investigacion Biomedica en Red en Enfermedades Hepaticas y Digestivas (CIBERehd)

向作者/读者索取更多资源

Artificial copper metalloenzymes were created by generating copper nanoparticles in an enzyme matrix, with different enzymes influencing the size and surrounding environment of the nanoparticles. These copper nanozymes exhibit a unique enzymatic activity different from the natural enzyme activity, with their catalytic activities modulated by the enzyme scaffold.
Artificial enzymes with modulated enzyme-mimicking activities of natural systems represent a challenge in catalytic applications. Here, we show the creation of artificial Cu metalloenzymes based on the generation of Cu nanoparticles in an enzyme matrix. Different enzymes were used, and the structural differences between the enzymes especially influenced the controlled the size of the nanoparticles and the environment that surrounds them. Herein, we demonstrated that the oxidase-like catalytic activity of these copper nanozymes was rationally modulated by enzyme used as a scaffold, with a special role in the nanoparticle size and their environment. In this sense, these nanocopper hybrids have confirmed the ability to mimic a unique enzymatic activity completely different from the natural activity of the enzyme used as a scaffold, such as tyrosinase-like activity or as Fenton catalyst, which has extremely higher stability than natural mushroom tyrosinase. More interestingly, the oxidoreductase-like activity of nanocopper hybrids was cooperatively modulated with the synergistic effect between the enzyme and the nanoparticles improving the catalase activity (no peroxidase activity). Additionally, a novel dual (metallic and enzymatic activity) of the nanozyme made the highly improved catechol-like activity interesting for the design of 3,4-dihydroxy-L-phenylalanine (L-DOPA) biosensor for detection of tyrosinase. These hybrids also showed cytotoxic activity against different tumor cells, interesting in biocatalytic tumor therapy.

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