Genetic Targeting of an Adenovirus Vector via Replacement of the Fiber Protein with the Phage T4 Fibritin
Open Access
- 1 May 2001
- journal article
- research article
- Published by American Society for Microbiology in Journal of Virology
- Vol. 75 (9), 4176-4183
- https://doi.org/10.1128/jvi.75.9.4176-4183.2001
Abstract
The utility of adenovirus (Ad) vectors for gene therapy is restricted by their inability to selectively transduce disease-affected tissues. This limitation may be overcome by the derivation of vectors capable of interacting with receptors specifically expressed in the target tissue. Previous attempts to alter Ad tropism by genetic modification of the Ad fiber have had limited success due to structural conflicts between the fiber and the targeting ligand. Here we present a strategy to derive an Ad vector with enhanced targeting potential by a radical replacement of the fiber protein in the Ad capsid with a chimeric molecule containing a heterologous trimerization motif and a receptor-binding ligand. Our approach, which capitalized upon the overall structural similarity between the human Ad type 5 (Ad5) fiber and bacteriophage T4 fibritin proteins, has resulted in the generation of a genetically modified Ad5 incorporating chimeric fiber-fibritin proteins targeted to artificial receptor molecules. Gene transfer studies employing this novel viral vector have demonstrated its capacity to efficiently deliver a transgene payload to the target cells in a receptor-specific manner.Keywords
This publication has 54 references indexed in Scilit:
- Genetic Targeting of Adenoviral VectorsMolecular Therapy, 2000
- Identification of a Conserved Receptor-Binding Site on the Fiber Proteins of CAR-Recognizing AdenoviridaeScience, 1999
- Isolation of a Common Receptor for Coxsackie B Viruses and Adenoviruses 2 and 5Science, 1997
- Targeted gene delivery by tropism-modified adenoviral vectorsNature Biotechnology, 1996
- Adenovirus targeted to heparan-containing receptors increases its gene delivery efficiency to multiple cell typesNature Biotechnology, 1996
- Bacteriophage T4 as a surface display vectorVirus Genes, 1995
- Adenovirus FiberPublished by Springer Nature ,1995
- Crystal structure of the receptor-binding domain of adenovirus type 5 fiberprotein at 1.7 Å resolutionStructure, 1994
- New observations concerning the chloroacetaldehyde reaction with some tRNA constituents. Stable intermediates, kinetics and selectivity of the reactionNucleic Acids Research, 1978
- Characteristics of a Human Cell Line Transformed by DNA from Human Adenovirus Type 5Journal of General Virology, 1977