Published February 2002 | Version v1
Miscellaneous

Scanning tunneling microscopy studies of glucose oxidase on gold surface

  • 1. The Flinders University of South Australia, SA (Australia). School of Chemistry
  • 2. The University of New South Wales, NSW (Australia). School of Chemistry

Description

Full text: Three immobilization methods have been used for scanning tunneling microscopy (STM) studies of glucose oxidase (GOD) on gold. They are based on a) physical adsorption from solution, b) microcontact printing and c) covalent bonding onto self-assembled monolayers (SAM) of 3-mercaptopropionic acid (MPA). The STM images are used to provide information about the organization of individual GOD molecules and more densely packed monolayers of GOD on electrode surfaces, thus providing information of the role of interfacial structure on biosensor performance. The use of atomically flat gold substrates enables easy distinction of deposited enzyme features from the flat gold substrate. Microcontact printing is found to be a more reliable method than adsorption from solution for preparing individual GOD molecules on the gold surface STM images of printed samples reveal two different shapes of native GOD molecules. One is a butterfly shape with dimensions of 10 ± 1 nm x 6 ± 1 nm, assigned to the lying position of molecule while the second is an approximately spherical shape with dimensions of 6.5 ± 1 nm x 5 ± 1nm assigned to a standing position. Isolated clusters of 5 to 6 GOD molecules are also observed. With monolayer coverage, GOD molecules exhibit a tendency to organize themselves into a two dimensional array with adequate sample stability to obtain high-resolution STM images. Within these two-dimensional arrays are clearly seen repeating clusters of five to six enzyme molecules in a unit STM imaging of GOD monolayers covalently immobilized onto SAM (MPA) are considerably more difficult than when the enzyme is adsorbed directly onto the metal. Cluster structures are observed both high and low coverage despite the fact that native GOD is a negatively charged molecule. Copyright (2002) Australian Society for Electron Microscopy Inc

Additional details

Publishing Information

Imprint Title
The 17th Australian Conference on Electron Microscopy
Imprint Pagination
116 p.
Journal Page Range
p. 89

Conference

Title
ACEM17. Australian Conference on Electron Microscopy
Dates
4-8 Feb 2002
Place
Adelaide, SA (Australia)

INIS

Country of Publication
Australia
Country of Input or Organization
Australia
INIS RN
34030906
Subject category
S36: MATERIALS SCIENCE;
Resource subtype / Literary indicator
Conference, Non-conventional Literature
Descriptors DEI
BONDING; CHEMICAL COATING; CRYSTAL STRUCTURE; GLUCOSIDASE; GOLD; INTERFACES; MORPHOLOGY; OXIDASES; SAMPLE PREPARATION; SCANNING TUNNELING MICROSCOPY
Descriptors DEC
DEPOSITION; ELEMENTS; ENZYMES; FABRICATION; GLYCOSYL HYDROLASES; HYDROLASES; JOINING; METALS; MICROSCOPY; O-GLYCOSYL HYDROLASES; ORGANIC COMPOUNDS; OXIDOREDUCTASES; PROTEINS; SURFACE COATING; TRANSITION ELEMENTS