Coxsackievirus B3 infects and disrupts human induced-pluripotent stem cell derived brain-like endothelial cells

Julia Mamana1, Gabrielle M Humber1, Eric R Espinal1

  • 1Department of Biological Sciences, University of Alabama, Tuscaloosa, AL, United States.

Insights

Coxsackievirus B3 (CVB3) infects brain endothelial cells, impacting the blood-brain barrier (BBB) over time. Inhibiting TRPV1 shows potential for limiting viral entry into the brain.

Area of Science:

  • Virology
  • Neuroscience
  • Cell Biology

Background:

  • Coxsackievirus B3 (CVB3) is a global pathogen causing severe meningo-encephalitis, particularly in children.
  • The mechanism of viral entry into the brain and host-virus interactions at the blood-brain barrier (BBB) remain poorly understood.
  • The BBB, composed of brain endothelial cells, tightly regulates substance passage into the central nervous system.

Purpose of the Study:

  • To investigate the effects of CVB3 infection on human induced-pluripotent stem cell-derived brain-like endothelial cells (iBECs) modeling the BBB.
  • To assess CVB3's impact on iBEC barrier function, survival, and viral replication.
  • To evaluate the potential of TRPV1 inhibition as an antiviral strategy against CVB3 neuroinvasion.

Main Methods:

  • Utilized a human iPSC-derived brain-like endothelial cell (iBEC) model to simulate the BBB.
  • Monitored CVB3 infection, viral titers, and transendothelial electrical resistance (TEER) in iBEC monolayers.
  • Assessed the efficacy of TRPV1 inhibition using SB-366791 on CVB3 infection in iBECs.

Main Results:

  • iBECs are susceptible to CVB3 infection, producing high viral titers.
  • Early CVB3 infection maintains high TEER despite viral load, with progressive decline at later stages.
  • Infected iBEC monolayers remained intact, suggesting low late-stage cell death and potential for prolonged viral shedding.
  • TRPV1 inhibition with SB-366791 significantly reduced CVB3 infection in iBECs.

Conclusions:

  • CVB3 infection uniquely affects BBB endothelial cells, with delayed barrier disruption.
  • Low late-stage cell death may facilitate prolonged viral shedding and brain entry.
  • TRPV1 inhibition presents a potential therapeutic strategy to limit CVB3 neuroinvasion.
  • The iBEC model serves as a valuable platform for testing antivirals against neurotropic viruses.