DNA Display II. Genetic Manipulation of Combinatorial Chemistry Libraries for Small-Molecule Evolution
Open Access
- 22 June 2004
- journal article
- research article
- Published by Public Library of Science (PLoS) in PLoS Biology
- Vol. 2 (7) , e174
- https://doi.org/10.1371/journal.pbio.0020174
Abstract
Biological in vitro selection techniques, such as RNA aptamer methods and mRNA display, have proven to be powerful approaches for engineering molecules with novel functions. These techniques are based on iterative amplification of biopolymer libraries, interposed by selection for a desired functional property. Rare, promising compounds are enriched over multiple generations of a constantly replicating molecular population, and subsequently identified. The restriction of such methods to DNA, RNA, and polypeptides precludes their use for small-molecule discovery. To overcome this limitation, we have directed the synthesis of combinatorial chemistry libraries with DNA “genes,” making possible iterative amplification of a nonbiological molecular species. By differential hybridization during the course of a traditional split-and-pool combinatorial synthesis, the DNA sequence of each gene is read out and translated into a unique small-molecule structure. This “chemical translation” provides practical access to synthetic compound populations 1 million-fold more complex than state-of-the-art combinatorial libraries. We carried out an in vitro selection experiment (iterated chemical translation, selection, and amplification) on a library of 106 nonnatural peptides. The library converged over three generations to a high-affinity protein ligand. The ability to genetically encode diverse classes of synthetic transformations enables the in vitro selection and potential evolution of an essentially limitless collection of compound families, opening new avenues to drug discovery, catalyst design, and the development of a materials science “biology.”Keywords
This publication has 31 references indexed in Scilit:
- ChemInform Abstract: From Protein Domains to Drug Candidates - Natural Products as Guiding Principles in the Design and Synthesis of Compound Libraries.ChemInform, 2010
- DNA Display III. Solid-Phase Organic Synthesis on Unprotected DNAPLoS Biology, 2004
- DNA Display I. Sequence-Encoded Routing of DNA PopulationsPLoS Biology, 2004
- Comprehensive Survey of Combinatorial Library Synthesis: 2002Journal of Combinatorial Chemistry, 2003
- Functional profiling of the Saccharomyces cerevisiae genomeNature, 2002
- Experimental and computational approaches to estimate solubility and permeability in drug discovery and development settingsAdvanced Drug Delivery Reviews, 1997
- Synthesis and Applications of Small Molecule LibrariesChemical Reviews, 1996
- Genetic Algorithms: Principles of Natural Selection Applied to ComputationScience, 1993
- 9-Fluorenylmethoxycarbonyl function, a new base-sensitive amino-protecting groupJournal of the American Chemical Society, 1970
- Solid Phase Peptide Synthesis. I. The Synthesis of a TetrapeptideJournal of the American Chemical Society, 1963