Ultrastructural Characterization of Zika Virus Replication Factories

Mirko Cortese(Heidelberg University), Sarah Goellner(Heidelberg University), Eliana G. Acosta(Heidelberg University), Christopher J. Neufeldt(Heidelberg University), Olga Oleksiuk(Heidelberg University), Marko Lampe(European Molecular Biology Laboratory), Uta Haselmann(Heidelberg University), Charlotta Funaya(Heidelberg University), Nicole L. Schieber(European Molecular Biology Laboratory), Paolo Ronchi(European Molecular Biology Laboratory), Martin Schorb(European Molecular Biology Laboratory), Priit Pruunsild(Heidelberg University), Yannick Schwab(European Molecular Biology Laboratory), Laurent Chatel‐Chaix(Heidelberg University), Alessia Ruggieri(Heidelberg University), Ralf Bartenschlager(German Center for Infection Research)
Cell Reports
February 1, 2017
Cited by 369Open Access
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Abstract

A global concern has emerged with the pandemic spread of Zika virus (ZIKV) infections that can cause severe neurological symptoms in adults and newborns. ZIKV is a positive-strand RNA virus replicating in virus-induced membranous replication factories (RFs). Here we used various imaging techniques to investigate the ultrastructural details of ZIKV RFs and their relationship with host cell organelles. Analyses of human hepatic cells and neural progenitor cells infected with ZIKV revealed endoplasmic reticulum (ER) membrane invaginations containing pore-like openings toward the cytosol, reminiscent to RFs in Dengue virus-infected cells. Both the MR766 African strain and the H/PF/2013 Asian strain, the latter linked to neurological diseases, induce RFs of similar architecture. Importantly, ZIKV infection causes a drastic reorganization of microtubules and intermediate filaments forming cage-like structures surrounding the viral RF. Consistently, ZIKV replication is suppressed by cytoskeleton-targeting drugs. Thus, ZIKV RFs are tightly linked to rearrangements of the host cell cytoskeleton.


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