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Endosomal processing limits gene transfer to polarized airway epithelia by adeno-associated virus
Dongsheng Duan, Yongping Yue, Ziying Yan, Jusan Yang, John F. Engelhardt
Dongsheng Duan, Yongping Yue, Ziying Yan, Jusan Yang, John F. Engelhardt
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Article

Endosomal processing limits gene transfer to polarized airway epithelia by adeno-associated virus

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Abstract

The restriction of viral receptors and coreceptors to the basolateral surface of airway epithelial cells has been blamed for the inefficient transfer of viral vectors to the apical surface of this tissue. We now report, however, that differentiated human airway epithelia internalize rAAV type-2 virus efficiently from their apical surfaces, despite the absence of known adeno-associated virus–2 (AAV-2) receptors or coreceptors at these sites. The dramatically lower transduction efficiency of rAAV infection from the apical surface of airway cells appears to result instead from differences in endosomal processing and nuclear trafficking of apically or basolaterally internalized virions. AAV capsid proteins are ubiquitinated after endocytosis, and gene transfer can be significantly enhanced by proteasome or ubiquitin ligase inhibitors. Tripeptide proteasome inhibitors increased persistent rAAV gene delivery from the apical surface >200-fold, to a level nearly equivalent to that achieved with basolateral infection. In vivo application of proteasome inhibitor in mouse lung augmented rAAV gene transfer from undetectable levels to a mean of 10.4 ± 1.6% of the epithelial cells in large bronchioles. Proteasome inhibitors also increased rAAV-2–mediated gene transfer to the liver tenfold, but they did not affect transduction of skeletal or cardiac muscle. These findings suggest that tissue-specific ubiquitination of viral capsid proteins interferes with rAAV-2 transduction and provides new approaches to circumvent this barrier for gene therapy of diseases such as cystic fibrosis.

Authors

Dongsheng Duan, Yongping Yue, Ziying Yan, Jusan Yang, John F. Engelhardt

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Figure 9

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Examination of rAAV endocytosis by Southern blot analysis of viral DNA. ...
Examination of rAAV endocytosis by Southern blot analysis of viral DNA. Hirt DNA from AV.GFP3ori-infected or mock-infected (lanes 1 and 7 in both a and b) human bronchial epithelia were extracted for a direct examination of viral genomes by Southern blotting against a [P32]-labeled EGFP probe. (a) Viral binding studies in the presence and absence of LLnL with or without EGTA treatment before apical or basolateral infection for 1 hour at 4°C. Cell surface–bound virus was completely removed by trypsin (a, lanes 2 through 6). To determine the amount of the surface-bound rAAV, cells were infected with AV.GFP3ori for 1 hour at 4°C and were not treated with trypsin but rather washed before Hirt DNA extraction. a: Lanes 2 and 8: apical AAV infection; lanes 3 and 9: apical AAV infection in the presence of LLnL; lanes 4 and 10: cells were pretreated with hypotonic EGTA before apical infection in the presence of LLnL; lanes 5 and 11: basolateral infection; lanes 6 and 12: basolateral infection in the presence of LLnL. (b) Results of studies evaluating rAAV internalization from either the apical or the basolateral surface in the presence or absence of LLnL, and the internalization from the apical surface after combined treatment with hypotonic EGTA and LLnL. To detect the net amount of the internalized viral genome, all samples in b were treated with trypsin just before Hirt DNA was harvested. The extent of the internalized virus at 4 hours (b, lanes 2 through 6) and 24 hours (b, lanes 8 through 12) incubation at 37°C after infection is represented by the intensity of the 1.6-kb single-stranded viral genome band. b: Lane 2: apical AAV infection for 4 hours; lane 3: apical AAV infection in the presence of LLnL for 4 hours; lane 4: cells were pretreated with hypotonic EGTA before apical infection in the presence of LLnL for 4 hours; lane 5: basolateral infection for 4 hours; lane 6: basolateral infection in the presence of LLnL for 4 hours; lane 8: apical infection for 24 hours; lane 9: apical infection in the presence of LLnL for 24 hours; lane 10: cells were pretreated with hypotonic EGTA before apical infection in the presence of LLnL for 24 hours; lane 11: basolateral infection for 24 hours; lane 12: basolateral infection in the presence of LLnL for 24 hours. (c) Comparison of the effect of LLnL/EGTA on rAAV genomes at 2, 10, and 30 days after a 24-hour infection from the apical (lanes 1, 2, 5, 6, 10, 11, and 12) and basolateral (lanes 3, 4, 7, 8, 9, 13, and 14) membranes. Treatment conditions are noted above each lane; transwells were not treated with trypsin before harvesting Hirt DNA. An additional control included coinfection with Ad.dl802 (moi = 500 particles per cell) to demonstrate replication form monomers (lane 9, 4.7 kb). It should be noted that different exposure times were used for the three different panels in c (lanes 1–4, 3 hours; lanes 5–8, 15 hours; and lanes 10–14, 12 hours). Matched DNA samples from uninfected cultures did not demonstrate detectable hybridization (data not shown).

Copyright © 2026 American Society for Clinical Investigation
ISSN: 0021-9738 (print), 1558-8238 (online)

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