• DocumentCode
    863547
  • Title

    Directed Metallization of Single-Enzyme Molecules With Preserved Enzymatic Activity

  • Author

    Vernick, Sefi ; Moscovich-Dagan, Hila ; Porat-Ophir, Carmit ; Rishpon, Judith ; Freeman, Amihay ; Shacham-Diamand, Yosi

  • Author_Institution
    Dept. of Phys. Electron., Tel Aviv Univ., Tel Aviv
  • Volume
    8
  • Issue
    1
  • fYear
    2009
  • Firstpage
    95
  • Lastpage
    99
  • Abstract
    A new method for the fabrication of molecular, water-soluble, and biologically active enzyme-metal hybrids was designed and its feasibility demonstrated. The method is based on the display of nucleation sites directing a subsequent electroless deposition of palladium and other metals to the enzyme´s surface. The process is carried out under mild physiological conditions, enabling the preservation of enzymatic activity and water solubility. The feasibility of the new method was demonstrated by using the enzyme glucose oxidase and palladium combination as the first model system. The glucose oxidase-palladium hybrid thus obtained retained their solubility and enzymatic glucose oxidation capabilities. Hybrids immobilized on platinum electrodes exhibited ldquonanowiringrdquo and effective direct electron transfer from the enzyme catalytic site to the electrode. The new enzyme-metal hybrids thus obtained may be readily incorporated into miniaturic biosensors and biochips, used as novel antibacterial agents or as markers for improved in vivo imaging. Furthermore, the methodology developed may be readily extended to a series of metal coatings on the surface of biologically active proteins.
  • Keywords
    antibacterial activity; biochemistry; biosensors; charge exchange; electrochemical electrodes; electroless deposition; enzymes; lab-on-a-chip; metallisation; molecular biophysics; nucleation; antibacterial agents; biochips; biologically active enzyme-metal hybrid fabrication; biologically active proteins; biosensors; directed metallization; effective direct electron transfer; electroless deposition; enzymatic glucose oxidation capabilities; enzyme catalytic site; enzyme glucose oxidase-palladium hybrid; enzyme-metal hybrids; markers; metal coatings; mild physiological conditions; nanowiring; nucleation sites; palladium; platinum electrodes; single-enzyme molecules; water solubility; water-soluble enzyme-metal hybrids; Biosensors; electroless deposition; metal–enzyme hybrid; metallization;
  • fLanguage
    English
  • Journal_Title
    Nanotechnology, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    1536-125X
  • Type

    jour

  • DOI
    10.1109/TNANO.2008.2005920
  • Filename
    4625952