Artificial evolution with adeno-associated viral libraries.

Comb Chem High Throughput Screen

Clinic I, Internal Medicine, University of Cologne, D-50937 Cologne, Germany.

Published: February 2008

AI Article Synopsis

  • AAV has gained attention in gene therapy due to its favorable characteristics, leading to extensive research over the past two decades to improve its effectiveness.
  • Standard techniques for manipulating the viral genome have enabled researchers to develop better vectors, although gaps in understanding virus-cell interactions remain a challenge.
  • Combinatorial engineering and high-throughput selection methods show promise for advancing AAV vector development by allowing the screening of numerous clones and offering insights into molecular infection mechanisms.

Article Abstract

After attracting the attention of the scientific community due to a number of favourable characteristics that make it an attractive vector for human gene therapy [1,2], AAV has been thoroughly investigated in the past two decades. Standard technologies for the manipulation of the viral genome and for efficient packaging and purification protocols have paved the road for trial and error manipulation by educated guesses to study viral infectious biology by reverse genetics and to generate improved vectors for human gene transfer. However, despite remarkable progress, our limited knowledge of molecular mechanisms implicated in virus-cell interactions has been a limiting factor. Combinatorial engineering and high-throughput selection techniques hold the potential to boost technological improvement by offering the possibility to screen large numbers of randomly generated clones by appropriate selection protocols. These approaches not only require lesser knowledge of viral biology, but can also be employed as valuable tools to investigate molecular mechanisms that drive the infection process. In this review we recapitulate the rationale for employment of combinatorial methods in AAV vector development and the accomplishments achieved so far, discussing current limitations and interesting developments that are in sight.

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Source
http://dx.doi.org/10.2174/138620708783744507DOI Listing

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