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Updated: Aug 8, 2025

Viral Tracing of Genetically Defined Neural Circuitry
Published on: October 17, 2012
Enterovirus D-68 Infection of Primary Rat Cortical Neurons: Entry, Replication, and Functional Consequences
Katrien C K Poelaert1, Regina G D M van Kleef2, Mengying Liu1
1Section of Virology, Division of Infectious Diseases & Immunology, Department of Biomolecular Health Sciences, Faculty of Veterinary Medicine, Utrecht University, Utrecht, The Netherlands.
Abstract:
Enterovirus D68 (EV-D68) is an emerging pathogen associated with mild to severe respiratory disease. Since 2014, EV-D68 is also linked to acute flaccid myelitis (AFM), causing paralysis and muscle weakness in children. However, it remains unclear whether this is due to an increased pathogenicity of contemporary EV-D68 clades or increased awareness and detection of this virus. Here, we describe an infection model of primary rat cortical neurons to study the entry, replication, and functional consequences of different EV-D68 strains, including historical and contemporary strains. We demonstrate that sialic acids are important (co)receptors for infection of both neurons and respiratory epithelial cells. Using a collection of glycoengineered isogenic HEK293 cell lines, we show that sialic acids on either N-glycans or glycosphingolipids can be used for infection. Additionally, we show that both excitatory glutamatergic and inhibitory GABA-ergic neurons are susceptible and permissive to historical and contemporary EV-D68 strains. EV-D68 infection of neurons leads to the reorganization of the Golgi-endomembranes forming replication organelles, first in the soma and later in the processes. Finally, we demonstrate that the spontaneous neuronal activity of EV-D68-infected neuronal network cultured on microelectrode arrays (MEA) is decreased, independent of the virus strain. Collectively, our findings provide novel insights into neurotropism and -pathology of different EV-D68 strains, and argue that it is unlikely that increased neurotropism is a recently acquired phenotype of a specific genetic lineage. IMPORTANCE Acute flaccid myelitis (AFM) is a serious neurological illness characterized by muscle weakness and paralysis in children. Since 2014, outbreaks of AFM have emerged worldwide, and they appear to be caused by nonpolio enteroviruses, particularly enterovirus-D68 (EV-D68), an unusual enterovirus that is known to mainly cause respiratory disease. It is unknown whether these outbreaks reflect a change of EV-D68 pathogenicity or are due to increased detection and awareness of this virus in recent years. To gain more insight herein, it is crucial to define how historical and circulating EV-D68 strains infect and replicate in neurons and how they affect their physiology. This study compares the entry and replication in neurons and the functional consequences on the neural network upon infection with an old "historical" strain and contemporary "circulating" strains of EV-D68.
Insights
Enterovirus D68 (EV-D68) infects neurons using sialic acids, causing decreased network activity. This study suggests neurotropism is not a new trait, challenging theories of increased EV-D68 pathogenicity.
Area of Science:
- Virology
- Neuroscience
- Cell Biology
Background:
- Enterovirus D68 (EV-D68) is an emerging pathogen causing respiratory illness and linked to acute flaccid myelitis (AFM) in children since 2014.
- The increased incidence of EV-D68-associated AFM raises questions about whether contemporary strains have enhanced neurovirulence or if detection has improved.
- Understanding the neurotropic mechanisms and cellular effects of different EV-D68 strains is crucial for elucidating AFM pathogenesis.
Purpose of the Study:
- To investigate the entry, replication, and functional consequences of historical and contemporary EV-D68 strains in primary rat cortical neurons.
- To identify viral entry receptors and characterize the cellular changes induced by EV-D68 infection in neurons.
- To assess the impact of EV-D68 infection on neuronal network activity.
Main Methods:
- Established a primary rat cortical neuron infection model to study EV-D68.
- Utilized glycoengineered HEK293 cell lines to identify sialic acids as crucial (co)receptors for EV-D68 entry into neurons and respiratory cells.
- Employed microelectrode arrays (MEAs) to monitor spontaneous neuronal activity in infected networks.
Main Results:
- Sialic acids, present on N-glycans or glycosphingolipids, are essential for EV-D68 infection of both neuronal and respiratory epithelial cells.
- Both excitatory (glutamatergic) and inhibitory (GABA-ergic) neurons are susceptible to historical and contemporary EV-D68 strains.
- EV-D68 infection induces Golgi-endomembrane reorganization to form replication organelles and significantly decreases spontaneous neuronal network activity, irrespective of the viral strain.
Conclusions:
- EV-D68 utilizes sialic acids for neuronal entry, infecting diverse neuron types and impairing network function.
- The observed neurotropism and pathology are consistent across historical and contemporary strains, suggesting it is not a recently acquired phenotype.
- Findings challenge the notion that increased EV-D68 neurovirulence is solely due to recent genetic lineage evolution, pointing towards other factors influencing AFM outbreaks.

