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Updated: Dec 18, 2025

Methods for Detecting Cytotoxic Amyloids Following Infection of Pulmonary Endothelial Cells by Pseudomonas aeruginosa
Published on: July 12, 2018
Pneumonia-induced endothelial amyloids reduce dendritic spine density in brain neurons
Allison M Scott1, Alexandrea C Jager1, Meredith Gwin1,2
1Departments of Physiology and Cell Biology, Mobile, Alabama, 36688, USA.
Abstract:
Pseudomonas aeruginosa pneumonia elicits endothelial cell release of cytotoxic amyloids that can be recovered from the bronchoalveolar lavage and cerebrospinal fluids of critically ill patients. Introduction of these cytotoxic amyloids into the lateral ventricle impairs learning and memory in mice. However, it is unclear whether the amyloids of lung origin (1) are neurotropic, and (2) cause structural remodeling of hippocampal dendrites. Thus, we used electrophysiological studies in brain slices and structural analysis of post-mortem tissues obtained from animals exposed to endothelium-derived amyloids to assess these issues. The amyloids were administered via three different routes, by intracerebroventricular, intratracheal, and intraperitoneal injections. Synaptic long-term potentiation was abolished following intracerebroventricular amyloid injection. Fluorescence dialysis or Golgi-impregnation labeling showed reduced dendritic spine density and destabilized spines of hippocampal pyramidal neurons 4 weeks after intracerebroventricular amyloid injection. In comparison, endothelial amyloids introduced to the airway caused the most prominent dendritic spine density reduction, yet intraperitoneal injection of these amyloids did not affect spine density. Our findings indicate that infection-elicited lung endothelial amyloids are neurotropic and reduce neuronal dendritic spine density in vivo. Amyloids applied into the trachea may either be disseminated through the circulation and cross the blood-brain barrier to access the brain, initiate feed-forward amyloid transmissibility among cells of the blood-brain barrier or access the brain in other ways. Nevertheless, lung-derived amyloids suppress hippocampal signaling and cause injury to neuronal structure.
Insights
Lung-derived amyloids from Pseudomonas aeruginosa pneumonia are neurotropic, impairing learning and memory. These cytotoxic amyloids reduce hippocampal dendritic spine density, indicating brain injury from lung infection.
Area of Science:
- Neuroscience
- Infectious Diseases
- Cell Biology
Background:
- Pseudomonas aeruginosa pneumonia releases cytotoxic amyloids from endothelial cells.
- These amyloids are found in patient fluids and impair memory in mice.
- The neurotropic nature and structural effects of lung-derived amyloids are unknown.
Purpose of the Study:
- To determine if lung-derived amyloids are neurotropic.
- To investigate if these amyloids cause structural remodeling of hippocampal dendrites.
- To assess the impact of different administration routes on neurotoxicity.
Main Methods:
- Electrophysiological studies in brain slices.
- Structural analysis of post-mortem animal tissues.
- Amyloid administration via intracerebroventricular, intratracheal, and intraperitoneal routes.
Main Results:
- Intracerebroventricular amyloid injection abolished synaptic long-term potentiation.
- Reduced dendritic spine density and destabilized spines were observed in hippocampal neurons.
- Intratracheal amyloid administration caused the most significant reduction in dendritic spine density.
Conclusions:
- Infection-elicited lung endothelial amyloids are neurotropic and reduce neuronal dendritic spine density.
- Lung-derived amyloids suppress hippocampal signaling and cause neuronal structural injury.
- Potential mechanisms include circulation, blood-brain barrier crossing, or direct cell-to-cell transmission.
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