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Neisseria meningitidis Infection of Induced Pluripotent Stem-Cell Derived Brain Endothelial Cells
Published on: July 14, 2020
Stem cell-derived brain-like endothelial cells to interrogate Streptococcus pneumoniae interaction with brain
Henry D Mauser1, Taryn E Keyzer1,2, Jessica M Surma3
1Department of Biological Sciences, University of Alabama, Tuscaloosa AL, USA.
Abstract:
Streptococcus pneumoniae (pneumococcus) is an opportunistic pathogen that remains the leading cause of bacterial meningitis worldwide. For meningitis to occur, pneumococcus must breach the blood-brain barrier (BBB), a highly specialized network of brain endothelial cells that comprise the microvasculature of the brain. Here, we report the use of human induced pluripotent stem cell-derived brain-like endothelial cells (iBECs) to model the BBB during pneumococcal infection. iBECs were infected with the S. pneumoniae strain TIGR4. Adherence assays showed that pneumococcal adherence to iBECs was a saturable process. Moreover, deletion of two pneumococcal adhesins resulted in an adherence defect, supporting a receptor-mediated interaction between pneumococcus and iBECs. Next, the integrity of several tight junction components was assessed via western blot and RT-qPCR, revealing the loss of abundance and expression in iBECs during infection with pneumococcus. Simultaneously, the expression of VEGFA and the tight junction repressor SNAI1 was upregulated. Semi-automated analysis of junction images also demonstrated a loss of ZO-1 and occludin continuity during pneumococcal infection. Consistent with these findings, the loss of TEER and the increase in barrier permeability were observed in pneumococcus-infected iBECs. The toxin pneumolysin (Ply) was important for this disruption, as the loss of Ply in pneumococcus partially arrested the reduction of TEER and the increase in permeability. Finally, RT-qPCR showed that pneumococcus was sufficient to upregulate a panel of inflammatory cytokines in iBECs. Taken together, these findings show that pneumococcus interacts with and disrupts iBECs during infection, supporting iBECs as an important model for studying pneumococcus-BBB interactions.
Insights
Streptococcus pneumoniae (pneumococcus) disrupts the blood-brain barrier (BBB) by damaging brain endothelial cells. Human induced pluripotent stem cell-derived brain-like endothelial cells (iBECs) effectively model this interaction, revealing pneumolysin
Area of Science:
- Neuroscience
- Infectious Diseases
- Cell Biology
Background:
- Streptococcus pneumoniae (pneumococcus) is a leading cause of bacterial meningitis.
- Pneumococcal meningitis requires breaching the blood-brain barrier (BBB).
- Modeling BBB interactions with pathogens is crucial for understanding meningitis pathogenesis.
Purpose of the Study:
- To utilize human induced pluripotent stem cell-derived brain-like endothelial cells (iBECs) to model the BBB during pneumococcal infection.
- To investigate the mechanisms by which pneumococcus interacts with and disrupts the BBB.
- To assess the role of pneumolysin (Ply) in pneumococcal-induced BBB damage.
Main Methods:
- Infection of iBECs with S. pneumoniae strain TIGR4.
- Adherence assays and adhesin deletion mutants to study bacterial attachment.
- Western blot and RT-qPCR to assess tight junction protein expression and abundance.
- Semi-automated analysis of junction images (ZO-1, occludin).
- Measurement of Transendothelial Electrical Resistance (TEER) and barrier permeability.
- Assessment of inflammatory cytokine expression via RT-qPCR.
Main Results:
- Pneumococcal adherence to iBECs is receptor-mediated and saturable.
- Pneumococcal infection leads to loss of tight junction integrity (ZO-1, occludin) and increased BBB permeability.
- VEGFA and SNAI1 expression are upregulated during infection.
- The toxin pneumolysin (Ply) is critical for BBB disruption.
- Pneumococcus upregulates inflammatory cytokine expression in iBECs.
Conclusions:
- iBECs serve as a valuable model for studying pneumococcus-BBB interactions.
- Pneumococcus actively disrupts the BBB through mechanisms involving adherence, tight junction damage, and pneumolysin.
- Understanding these interactions is key to developing strategies against pneumococcal meningitis.

