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Published on: March 1, 2019
Dynamin independent endocytosis is an alternative cell entry mechanism for multiple animal viruses
Ravi Ojha1, Anmin Jiang2, Elina Mäntylä3
1Department of Virology, Faculty of Medicine, University of Helsinki, Helsinki, Finland.
Abstract:
Mammalian receptor-mediated endocytosis (RME) often involves at least one of three isoforms of the large GTPase dynamin (Dyn). Dyn pinches-off vesicles at the plasma membrane and mediates uptake of many viruses, although some viruses directly penetrate the plasma membrane. RME is classically interrogated by genetic and pharmacological interference, but this has been hampered by undesired effects. Here we studied virus entry in conditional genetic knock-out (KO) mouse embryonic fibroblasts lacking expression of all three dynamin isoforms (Dyn-KO-MEFs). The small canine parvovirus known to use a single receptor, transferrin receptor, strictly depended on dynamin. Larger viruses or viruses known to use multiple receptors, including alphaviruses, influenza, vesicular stomatitis, bunya, adeno, vaccinia, severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) and rhinoviruses infected Dyn-KO-MEFs, albeit at higher dosage than wild-type MEFs. In absence of the transmembrane protease serine subtype 2 (TMPRSS2), which normally activates the SARS-CoV-2 spike protein for plasma membrane fusion, SARS-CoV-2 infected angiotensin-converting enzyme 2 (ACE2)-expressing MEFs predominantly through dynamin- and actin-dependent endocytosis. In presence of TMPRSS2 the ancestral Wuhan-strain bypassed both dynamin-dependent and -independent endocytosis, and was less sensitive to endosome maturation inhibitors than the Omicron B1 and XBB variants, supporting the notion that the Omicron variants do not efficiently use TMPRSS2. Collectively, our study suggests that dynamin function at endocytic pits can be essential for infection with single-receptor viruses, while it is not essential but increases uptake and infection efficiency of multi-receptor viruses that otherwise rely on a functional actin network for infection.
Insights
Dynamin (Dyn) is crucial for single-receptor virus entry via receptor-mediated endocytosis (RME). While essential for some viruses, dynamin enhances uptake efficiency for multi-receptor viruses, which also utilize actin networks for infection.
Area of Science:
- Cell Biology
- Virology
- Molecular Biology
Background:
- Receptor-mediated endocytosis (RME) is vital for cellular uptake of various molecules and pathogens.
- Dynamin (Dyn), a large GTPase, plays a key role in vesicle scission during RME.
- Previous studies on dynamin's role in viral entry were limited by off-target effects of genetic and pharmacological tools.
Purpose of the Study:
- To investigate the essentiality and contribution of dynamin isoforms in viral entry pathways.
- To elucidate the role of dynamin in the uptake of viruses with single versus multiple receptors.
- To understand dynamin's role in SARS-CoV-2 entry, particularly concerning TMPRSS2 and viral variants.
Main Methods:
- Utilized conditional genetic knock-out (KO) mouse embryonic fibroblasts lacking all three dynamin isoforms (Dyn-KO-MEFs).
- Infected Dyn-KO-MEFs and wild-type MEFs with various viruses, including canine parvovirus and SARS-CoV-2.
- Assessed viral entry efficiency and dependence on dynamin and actin in the presence or absence of TMPRSS2.
Main Results:
- Small viruses like canine parvovirus strictly required dynamin for entry.
- Larger viruses and those using multiple receptors infected Dyn-KO-MEFs less efficiently but were still viable.
- SARS-CoV-2 entry was dynamin- and actin-dependent in the absence of TMPRSS2; Omicron variants showed reduced TMPRSS2 dependence compared to the Wuhan strain.
Conclusions:
- Dynamin is essential for viruses relying on a single receptor for entry.
- Dynamin is not essential but enhances the efficiency of multi-receptor viruses, which also depend on actin.
- Dynamin's role in viral entry varies based on virus characteristics and host cell factors like TMPRSS2 expression.
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