Atlastin-2-mediated endoplasmic reticulum membrane tethering is critical for flavivirus replication

Flaviviruses (genus Orthoflavivirus) are arthropod-borne viruses which cause approximately 400 million annual global infections in humans. Flavivirus infection requires cellular machinery to facilitate replication and spread. All known flaviviruses replicate in association with the host endoplasmic reticulum (ER), where genome replication is confined within virus-induced ER invaginations called viral replication organelles (vROs). Despite the central role of these structures during flavivirus infection, the mechanisms underlying vRO biogenesis remain undefined-particularly the membrane rearrangements required for their formation. In this work, we report a conserved role for a cellular ER remodeling protein, atlastin-2 (ATL2), in the organization of vROs within infected cells. Using confocal and electron microscopy, we show that ATL2 depletion leads to a reduction in vRO spatial distribution in flavivirus-infected cells. Changes in vRO distribution corresponded with a decrease in virus production and robust induction of innate immune responses. We also demonstrate that ATL2 accumulates in areas of vRO formation during flavivirus infection. Critically, mutational analysis showed that a tethering-competent but fusion-defective ATL2 mutant was sufficient to rescue DENV and ZIKV replication in ATL2-knockout cells. Finally, targeting of ATL2 activity using synthetic peptides significantly reduced DENV replication in both immortalized and human primary cells, suggesting a possible avenue for targeting host ER functions to limit flavivirus replication. Taken together, these results show that membrane tethering plays a critical and conserved role in flavivirus infection, functioning to organize membranes for vRO biogenesis and limit cellular immune activation. Importantly, we provide evidence that ATL2-mediated membrane organization can be targeted to inhibit viral replication.

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Journal
PLoS Biology
Published
2026-09-15
DOI
https://doi.org/10.1371/journal.pbio.3003556
Primary Topic
Mosquito-borne diseases and control
Type
article
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0.00

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article

Atlastin-2-mediated endoplasmic reticulum membrane tethering is critical for flavivirus replication

Christopher J. Neufeldt, Pietro Scaturro, Mansi Gupta, Ambarish C. Varadan et al.
PLoS Biology
Mosquito-borne diseases and control
article

Atlastin-2-mediated endoplasmic reticulum membrane tethering is critical for flavivirus replication

Christopher J. Neufeldt, Pietro Scaturro, Mansi Gupta, Ambarish C. Varadan, Christopher D. Scharer, Jacob W. Vander Velden, Olus Uyar, Laura Andačić, Jonathan Einterz Owen, Mehul S. Suthar, Qingyi Wang, Cheyanne Lynn Bemis, Laurent Chatel-Chaix
article en

Abstract

Flaviviruses (genus Orthoflavivirus) are arthropod-borne viruses which cause approximately 400 million annual global infections in humans. Flavivirus infection requires cellular machinery to facilitate replication and spread. All known flaviviruses replicate in association with the host endoplasmic reticulum (ER), where genome replication is confined within virus-induced ER invaginations called viral replication organelles (vROs). Despite the central role of these structures during flavivirus infection, the mechanisms underlying vRO biogenesis remain undefined-particularly the membrane rearrangements required for their formation. In this work, we report a conserved role for a cellular ER remodeling protein, atlastin-2 (ATL2), in the organization of vROs within infected cells. Using confocal and electron microscopy, we show that ATL2 depletion leads to a reduction in vRO spatial distribution in flavivirus-infected cells. Changes in vRO distribution corresponded with a decrease in virus production and robust induction of innate immune responses. We also demonstrate that ATL2 accumulates in areas of vRO formation during flavivirus infection. Critically, mutational analysis showed that a tethering-competent but fusion-defective ATL2 mutant was sufficient to rescue DENV and ZIKV replication in ATL2-knockout cells. Finally, targeting of ATL2 activity using synthetic peptides significantly reduced DENV replication in both immortalized and human primary cells, suggesting a possible avenue for targeting host ER functions to limit flavivirus replication. Taken together, these results show that membrane tethering plays a critical and conserved role in flavivirus infection, functioning to organize membranes for vRO biogenesis and limit cellular immune activation. Importantly, we provide evidence that ATL2-mediated membrane organization can be targeted to inhibit viral replication.

PLoS BiologyVol. 24(9)
Emory University (US), Universität Hamburg (DE), Institut National de la Recherche Scientifique (CA), Centre National pour la Recherche Scientifique et Technique (CNRST) (MA), Research Center Borstel - Leibniz Lung Center (DE), Centre for Structural Systems Biology (DE), Institute of Virology of the Slovak Academy of Sciences (SK)
Emory University, Children's Healthcare of Atlanta, Georgia Clinical and Translational Science Alliance, Deutsche Forschungsgemeinschaft, Bundesministerium für Bildung und Forschung, School of Medicine, Emory University, Emory College of Arts and Sciences, Emory University, Canadian Institutes of Health Research, National Institute of Allergy and Infectious Diseases
Openalex Percentile: Top 9%
Mosquito-borne diseases and control
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