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Updated: Aug 22, 2026

High-Efficiency Transduction of Liver Cancer Cells by Recombinant Adeno-Associated Virus Serotype 3 Vectors
Published on: March 22, 2011
Transductional targeting of adenoviral cancer gene therapy
Maaike Everts1, David T Curiel
1Division of Human Gene Therapy, Departments of Medicine, Pathology, and Surgery and the Gene Therapy Center, University of Alabama at Birmingham, BMR2 508 Birmingham, AL 35294-2172, USA.
Abstract:
Adenoviral gene therapy has shown promise in both preclinical and clinical settings, but several hurdles need to be overcome before it can reach its full therapeutic potential. One such hurdle is the need for targeting the right cell type, while avoiding liver uptake and hence side effects. This review will focus on transductional targeting strategies, in which the adenoviral particle is physically targeted to specific surface receptors expressed on the target cell. This can be achieved by using either bifunctional adaper molecules, which bind to the adenoviral particle on one side and to the targeted receptor on the other, or genetic targeting strategies. Adapter molecules comprise both chemically conjugated targeting moieties and recombinant fusion proteins, the latter having the advantage of being a homogeneous population. Genetic retargeting strategies include fiber or fiber knob chimerism, genetic incorporation of targeting ligands in the fiber or other capsid locales, or a combination of both ('complex mosaics'). Since sequestration of virions in the liver presents a major problem for the therapeutic utility of adenoviral gene therapy after systemic administration, blockade of liver uptake has become an increased area of investigation. Strategies encompass blockade of the adenovirus interaction with its cognate receptor CAR, by either using the soluble ectodomain of CAR, or ablation of CAR-interacting amino acid residues in the fiber knob. In addition, inhibition of interaction with additional adenovirus receptors, such as integrins or heparan sulphate proteoglycans, hold promise for decreasing liver uptake and hence adenoviral toxicity.
Insights
Adenoviral gene therapy requires precise cell targeting to enhance efficacy and minimize side effects. This review explores transductional targeting strategies to direct adenoviral vectors to specific cells, improving therapeutic potential.
Area of Science:
- Biotechnology
- Molecular Biology
- Gene Therapy
Background:
- Adenoviral gene therapy shows therapeutic promise but faces challenges.
- Hurdles include achieving cell-specific targeting and reducing off-target liver uptake.
- Minimizing liver sequestration is crucial for systemic adenoviral vector administration.
Purpose of the Study:
- To review transductional targeting strategies for adenoviral vectors.
- To discuss methods for directing adenoviral particles to specific cell surface receptors.
- To explore approaches for blocking liver uptake and reducing adenoviral toxicity.
Main Methods:
- Utilizing bifunctional adapter molecules (chemically conjugated or recombinant fusion proteins).
- Employing genetic targeting strategies like fiber or fiber knob chimerism.
- Investigating blockade of adenovirus-host interactions, including CAR receptor blockade.
Main Results:
- Adapter molecules and genetic modifications enable physical targeting of adenoviral particles.
- Strategies like soluble CAR or fiber knob modifications can reduce liver uptake.
- Inhibiting interactions with receptors like integrins and heparan sulphate proteoglycans shows promise.
Conclusions:
- Transductional targeting strategies are key to overcoming adenoviral gene therapy limitations.
- Effective targeting enhances therapeutic efficacy and minimizes adverse effects.
- Blocking liver uptake is essential for safe and effective systemic adenoviral gene therapy.
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