A humanized system for pharmacologic control of gene expression
- 1 September 1996
- journal article
- Published by Springer Nature in Nature Medicine
- Vol. 2 (9) , 1028-1032
- https://doi.org/10.1038/nm0996-1028
Abstract
Gene therapy was originally conceived as a medical intervention to replace or correct defective genes in patients with inherited disorders. However, it may have much broader potential as an alternative delivery platform for protein therapeutics, such as cytokines, hormones, antibodies and novel engineered proteins. One key technical barrier to the widespread implementation of this form of therapy is the need for precise control over the level of protein production. A suitable system for pharmacologic control of therapeutic gene expression would permit precise titration of gene product dosage, intermittent or pulsatile treatment, and ready termination of therapy by withdrawal of the activating drug. We set out to design such a system with the following properties: (1) low baseline expression and high induction ratio; (2) positive control by an orally bioavailable small-molecule drug; (3) reduced potential for immune recognition through the exclusive use of human proteins; and (4) modularity to allow the independent optimization of each component using the tools of protein engineering. We report here the properties of this system and demonstrate its use to control circulating levels of human growth hormone in mice implanted with engineered human cells.Keywords
This publication has 38 references indexed in Scilit:
- Creating conditional mutations in mammalsTrends in Genetics, 1996
- A general strategy for producing conditional alleles of Src-like tyrosine kinases.Proceedings of the National Academy of Sciences, 1995
- Mechanistic studies of a signaling pathway activated by the organic dimerizer FK1012Chemistry & Biology, 1994
- Proximity versus allostery: the role of regulated protein dimerization in biologyChemistry & Biology, 1994
- Control of gene activity in higher eukaryotic cells by prokaryotic regulatory elementsTrends in Biochemical Sciences, 1993
- Controlling Signal Transduction with Synthetic LigandsScience, 1993
- A novel genetic system to detect protein–protein interactionsNature, 1989
- How eukaryotic transcriptional activators workNature, 1988
- Functional dissection of a eukaryotic transcriptional activator protein, GCN4 of YeastCell, 1986
- A eukaryotic transcriptional activator bearing the DNA specificity of a prokaryotic repressorCell, 1985