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June 5, 2026Viruses0 citationsOpen Access

Enterovirus D68 VP1 and VP3 Determine Neurotropism in Human Spinal Cord Organoids

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JPJessica E. PackardJJJennifer E. JonesGYGal Yovel

Key Result

EV-D68 mutations VP3 I88V and VP1 L1I/N2D/T98A/E283K decreased viral titer in human spinal cord organoids, while VP1 L1P/V148/K282R altered tropism to primarily infect glial cells.

Key Points

  • This research aims to determine how mutations in viral proteins VP1 and VP3 affect neurotropism in human spinal cord organoids.
  • Recreated viruses with specific mutations in VP3 and VP1.
  • Infected human spinal cord organoids with these mutated viruses.
  • Utilized immunofluorescence to analyze cellular tropism and viral protein expression.
  • VP3 I88V and VP1 L1I/N2D/T98A/E283K mutations resulted in decreased viral titer and protein staining.
  • VP1 L1P/V148A/K282R mutations altered cellular tropism to primarily affect glial cells over neuronal cells.
  • Recent EV-D68 strain analysis shows dominant residues consistent since 2014 and increases in diversity at specific VP1 sites.

Structured PICO

P
Population
Human spinal cord organoids (hSCOs)
I
Intervention
Enterovirus D68 (EV-D68) with mutations in VP3 (I88V) or VP1 (L1I/N2D/T98A/E283K or L1P/V148A/K282R)
O
Outcome
Viral titer, viral protein staining, and cellular tropismsurrogate

Specific mutations in EV-D68 structural proteins VP1 and VP3 attenuate neurovirulence and alter cellular tropism in human spinal cord organoids, potentially explaining the reduction in acute flaccid myelitis cases after 2018.

Abstract

Enterovirus D68 (EV-D68) is a non-polio enterovirus that can cause a polio-like paralysis condition, acute flaccid myelitis (AFM). EV-D68-associated AFM cases waned in the US after 2018, and the reasons for this are unknown. It has recently been demonstrated that EV-D68 containing point mutations in viral structural proteins VP1 and VP3 resulted in decreased paralysis in different neonatal mouse models. However, phenotypes of these mutations in a human multicellular central nervous system (CNS) model are unknown. We hypothesize that mutations in VP1 and VP3 will similarly direct neurotropism in human spinal cord organoids (hSCOs). To investigate this, we recreated viruses with mutations in VP3 (I88V) or VP1 (L1I/N2D/T98A/E283K or L1P/V148A/K282R) and infected hSCOs. We found that VP3 I88V and VP1 L1I/N2D/T98A/E283K resulted in decreased titer and viral protein staining, consistent with attenuated neurovirulence in previously published murine models. We also found through immunofluorescence that VP1 L1P/V148/K282R mutations altered cellular tropism, primarily infecting glial cells rather than neuronal cells. When these mutations were combined, their effects on neurotropism were not additive. Sequence analysis of recently circulating EV-D68 strains reveals that VP3 I88 and VP1 E283 have remained the dominant amino acid residues since 2014, whereas VP1 sites 1, 2, and 98 have higher population diversity, indicating that these residues may be contributing to newly reduced neurovirulence after 2018.

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Cite This Study

Packard et al. (2026) studied Enterovirus D68 infection. EV-D68 mutations in VP1 and VP3 was evaluated on Neurotropism, viral titer, and viral protein staining. EV-D68 mutations VP3 I88V and VP1 L1I/N2D/T98A/E283K decreased viral titer in human spinal cord organoids, while VP1 L1P/V148/K282R altered tropism to primarily infect glial cells.

synapsesocial.com/papers/6a22698b763171746d54818ehttps://doi.org/10.3390/v18060619
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