Protein-mediated error correction for de novo DNA synthesis
Open Access
- 16 November 2004
- journal article
- Published by Oxford University Press (OUP) in Nucleic Acids Research
- Vol. 32 (20) , e162
- https://doi.org/10.1093/nar/gnh160
Abstract
The availability of inexpensive, on demand synthetic DNA has enabled numerous powerful applications in biotechnology, in turn driving considerable present interest in the de novo synthesis of increasingly longer DNA constructs. The synthesis of DNA from oligonucleotides into products even as large as small viral genomes has been accomplished. Despite such achievements, the costs and time required to generate such long constructs has, to date, precluded gene-length (and longer) DNA synthesis from being an everyday research tool in the same manner as PCR and DNA sequencing. A critical barrier to low-cost, high-throughput de novo DNA synthesis is the frequency at which errors pervade the final product. Here, we employ a DNA mismatch-binding protein, MutS (from Thermus aquaticus) to remove failure products from synthetic genes. This method reduced errors by >15-fold relative to conventional gene synthesis techniques, yielding DNA with one error per 10 000 base pairs. The approach is general, scalable and can be iterated multiple times for greater fidelity. Reductions in both costs and time required are demonstrated for the synthesis of a 2.5 kb gene.Keywords
This publication has 27 references indexed in Scilit:
- Chemical Synthesis of Poliovirus cDNA: Generation of Infectious Virus in the Absence of Natural TemplateScience, 2002
- DNAWorks: an automated method for designing oligonucleotides for PCR-based gene synthesisNucleic Acids Research, 2002
- Denaturing high-performance liquid chromatography: A reviewHuman Mutation, 2001
- Affinity of mismatch-binding protein MutS for heteroduplexes containing different mismatchesBiochemical Journal, 2001
- The Sequence of the Human GenomeScience, 2001
- Scaling Up the Ligase Chain Reaction-Based Approach to Gene SynthesisBioTechniques, 2001
- Initial sequencing and analysis of the human genomeNature, 2001
- A synthetic oscillatory network of transcriptional regulatorsNature, 2000
- Global Transposon Mutagenesis and a Minimal Mycoplasma GenomeScience, 1999
- PCR-based gene synthesis as an efficient approach for expression of the A+T-rich malaria genomeProtein Engineering, Design and Selection, 1999