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In Vivo Imaging of Cerebrospinal Fluid Transport through the Intact Mouse Skull using Fluorescence Macroscopy
Published on: July 29, 2019
Real-time imaging of trapping and urease-dependent transmigration of Cryptococcus neoformans in mouse brain
Meiqing Shi1, Shu Shun Li, Chunfu Zheng
1Department of Microbiology and Infectious Diseases, University of Calgary, Calgary, Alberta, Canada.
Abstract:
Infectious meningitis and encephalitis is caused by invasion of circulating pathogens into the brain. It is unknown how the circulating pathogens dynamically interact with brain endothelium under shear stress, leading to invasion into the brain. Here, using intravital microscopy, we have shown that Cryptococcus neoformans, a yeast pathogen that causes meningoencephalitis, stops suddenly in mouse brain capillaries of a similar or smaller diameter than the organism, in the same manner and with the same kinetics as polystyrene microspheres, without rolling and tethering to the endothelial surface. Trapping of the yeast pathogen in the mouse brain was not affected by viability or known virulence factors. After stopping in the brain, C. neoformans was seen to cross the capillary wall in real time. In contrast to trapping, viability, but not replication, was essential for the organism to cross the brain microvasculature. Using a knockout strain of C. neoformans, we demonstrated that transmigration into the mouse brain is urease dependent. To determine whether this could be amenable to therapy, we used the urease inhibitor flurofamide. Flurofamide ameliorated infection of the mouse brain by reducing transmigration into the brain. Together, these results suggest that C. neoformans is mechanically trapped in the brain capillary, which may not be amenable to pharmacotherapy, but actively transmigrates to the brain parenchyma with contributions from urease, suggesting that a therapeutic strategy aimed at inhibiting this enzyme could help prevent meningitis and encephalitis caused by C. neoformans infection.
Insights
Cryptococcus neoformans mechanically traps in brain capillaries. Urease activity is essential for yeast transmigration into the brain, suggesting urease inhibitors as a potential therapy for meningoencephalitis.
Area of Science:
- Neuroscience
- Infectious Diseases
- Microbiology
Background:
- Meningitis and encephalitis result from pathogens invading the brain.
- Mechanisms of pathogen interaction with brain endothelium under shear stress remain unclear.
Purpose of the Study:
- To investigate the dynamic interaction of Cryptococcus neoformans with brain endothelium.
- To elucidate the mechanisms of C. neoformans invasion into the brain parenchyma.
Main Methods:
- Intravital microscopy in mouse models.
- Utilized wild-type and knockout strains of C. neoformans.
- Assessed the effect of urease inhibition using flurofamide.
Main Results:
- C. neoformans is mechanically trapped in brain capillaries, independent of viability or virulence factors.
- Yeast viability, but not replication, is crucial for crossing the brain microvasculature.
- Transmigration into the brain is urease-dependent and can be reduced by the urease inhibitor flurofamide.
Conclusions:
- C. neoformans undergoes mechanical trapping and active transmigration into the brain.
- Urease plays a critical role in C. neoformans brain invasion.
- Inhibiting urease may offer a therapeutic strategy against C. neoformans meningoencephalitis.

