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ZDHHC17-Mediated Palmitoylation of Hepatitis E Virus ORF3 Protein Regulates Vectorial Trafficking in Polarized Epithelial Cells

Bröscky, P.; Syren, C. C.; Ge, D.; Kostrykin, L.; Piras, A.; Engels, Z.; Freistaedter, A.; Chi, H.; Jordan, P.; Funaya, C.; Rohr, K.; Tiwari, S. P.; Tubiana, T.; Pichlmair, A.; Thi, V. L. D.

2026-07-08 cell biology
10.64898/2026.06.16.732616 bioRxiv
Show abstract

The hepatitis E virus (HEV) is a leading cause of acute hepatitis worldwide and is transmitted enterically along the gut-liver axis. Epithelial cell polarity in the gut and liver plays a critical role in HEV transmission. In intestinal epithelial cells, HEV enters through the apical membrane and is released basolaterally to access the bloodstream, whereas in hepatocytes, the virus enters basolaterally and is secreted apically into the bile duct. In this study, we sought to identify the viral and host determinants governing directional HEV secretion in both tissue types. Using polarized intestinal and hepatocyte models, we found that the small phosphoprotein ORF3, which is essential for progeny secretion, localizes predominantly to the apical membrane, in contrast to the ORF2 capsid protein. We further identified the palmitoyltransferase ZDHHC17 as a specific ORF3 interactor that mediates its apical localization and promotes HEV progeny release. Using automated cell segmentation and quantitative image analysis, we screened a panel of ORF3 mutants and found that positively charged residues within the N-terminus regulate membrane association. In addition, we identified a conserved PIFIQP motif that mediates the critical interaction with the ankyrin repeat domain (ARD) of ZDHHC17. Leveraging this interaction, we generated high-confidence structural models of ORF3 in complex with the ZDHHC17 ARD using AlphaFold. These models, further validated by molecular dynamics simulations, revealed additional ORF3 residues involved in the interaction. Collectively, our findings define key mechanisms underlying directional HEV release and provide broader insights into trafficking processes in polarized epithelial cells.

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