Submicron patterning of DNA oligonucleotides on silicon
- 3 August 2004
- journal article
- Published by Oxford University Press (OUP) in Nucleic Acids Research
- Vol. 32 (14) , e118
- https://doi.org/10.1093/nar/gnh113
Abstract
The covalent attachment of DNA oligonucleotides onto crystalline silicon (100) surfaces, in patterns with submicron features, in a straightforward, two-step process is presented. UV light exposure of a hydrogen-terminated silicon (100) surface coated with alkenes functionalized with N-hydroxysuccinimide ester groups resulted in the covalent attachment of the alkene as a monolayer on the surface. Submicron-scale patterning of surfaces was achieved by illumination with an interference pattern obtained by the transmission of 248 nm excimer laser light through a phase mask. The N-hydroxysuccinimide ester surface acted as a template for the subsequent covalent attachment of aminohexyl-modified DNA oligonucleotides. Oligonucleotide patterns, with feature sizes of 500 nm, were reliably produced over large areas. The patterned surfaces were characterized with atomic force microscopy, scanning electron microscopy, epifluorescence microscopy and ellipsometry. Complementary oligonucleotides were hybridized to the surface-attached oligonucleotides with a density of 7 x 10(12) DNA oligonucleotides per square centimetre. The method will offer much potential for the creation of nano- and micro-scale DNA biosensor devices in silicon.Keywords
This publication has 17 references indexed in Scilit:
- Microcontact Printing of DNA MoleculesAnalytical Chemistry, 2004
- Epitaxial self-assembly of block copolymers on lithographically defined nanopatterned substratesNature, 2003
- DNA in a material worldNature, 2003
- Measurements of Electron-Transfer Rates of Charge-Storage Molecular Monolayers on Si(100). Toward Hybrid Molecular/Semiconductor Information Storage DevicesJournal of the American Chemical Society, 2002
- DNA Microarray Technology: Devices, Systems, and ApplicationsAnnual Review of Biomedical Engineering, 2002
- Direct Patterning of Modified Oligonucleotides on Metals and Insulators by Dip-Pen NanolithographyScience, 2002
- Segregation of Micrometer-Dimension Biosensor Elements on a Variety of Substrate SurfacesAnalytical Chemistry, 2000
- Patterning proteins and cells using soft lithographyBiomaterials, 1999
- Bioreactive Self-Assembled Monolayers on Hydrogen-Passivated Si(111) as a New Class of Atomically Flat Substrates for Biological Scanning Probe MicroscopyJournal of Structural Biology, 1997
- Protein Patterning with a Photoactivatable Derivative of BiotinBioconjugate Chemistry, 1996