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Author Spotlight: Assessing Ischemic Stroke Damage Through Middle Cerebral Artery Occlusion Model
Published on: August 11, 2023
Evaluation and Characterization of Post-Stroke Lung Damage in a Murine Model of Cerebral Ischemia
Júlia Faura1, Laura Ramiro1, Alba Simats1
1Neurovascular Research Laboratory, Valld'Hebron Research Institute (VHIR), Universitat Autònoma de Barcelona (UAB), 08035 Barcelona, Spain.
Abstract:
After stroke and other brain injuries, there is a high incidence of respiratory complications such as pneumonia or acute lung injury. The molecular mechanisms that drive the brain-lung interaction post-stroke have not yet been elucidated. We performed transient middle cerebral artery occlusion (MCAO) and sham surgery on C57BL/6J mice and collected bronchoalveolar lavage fluid (BALF), serum, brain, and lung homogenate samples 24 h after surgery. A 92 proteins-panel developed by Olink Proteomics® was used to analyze the content in BALF and lung homogenates. MCAO animals had higher protein concentration levels in BALF than sham-controls, but these levels did not correlate with the infarct volume. No alteration in alveolar-capillary barrier permeability was observed. A total of 12 and 14 proteins were differentially expressed between the groups (FDR < 0.1) in BALF and lung tissue homogenates, respectively. Of those, HGF, TGF-α, and CCL2 were identified as the most relevant to this study. Their protein expression patterns were verified by ELISA. This study confirmed that post-stroke lung damage was not associated with increased lung permeability or cerebral ischemia severity. Furthermore, the dysregulation of HGF, TGF-α, and CCL2 in BALF and lung tissue after ischemia could play an important role in the molecular mechanisms underlying stroke-induced lung damage.
Insights
Stroke can cause lung damage, but the exact molecular mechanisms are unclear. This study found that specific proteins like HGF, TGF-α, and CCL2 are dysregulated in the lungs after stroke, suggesting their role in brain-lung interactions.
Area of Science:
- Neuroscience
- Pulmonology
- Molecular Biology
Background:
- Stroke and brain injuries frequently lead to respiratory complications like pneumonia and acute lung injury.
- The intricate molecular mechanisms governing brain-lung interactions post-stroke remain largely unelucidated.
Purpose of the Study:
- To investigate the molecular changes in the lungs following stroke.
- To identify key proteins involved in the brain-lung crosstalk after ischemic stroke.
Main Methods:
- Transient middle cerebral artery occlusion (MCAO) model in C57BL/6J mice.
- Analysis of bronchoalveolar lavage fluid (BALF) and lung homogenates using a 92-protein panel (Olink Proteomics®).
- Validation of protein expression using Enzyme-Linked Immunosorbent Assay (ELISA).
Main Results:
- MCAO induced higher protein levels in BALF, but not correlated with infarct volume.
- No significant alteration in alveolar-capillary barrier permeability was observed.
- Differential expression of 12 proteins in BALF and 14 proteins in lung homogenates, with HGF, TGF-α, and CCL2 identified as key players.
Conclusions:
- Post-stroke lung damage is not directly linked to increased lung permeability or stroke severity.
- Dysregulation of HGF, TGF-α, and CCL2 in BALF and lung tissue following ischemia may be crucial in the molecular pathways of stroke-induced lung injury.
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