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Mark Slevin1,2, Elisa García-Lara3, Bogdan Capitanescu4
1Department of Life Sciences, Faculty of Science and Engineering, Manchester Metropolitan University, Chester Street, Manchester M15 6BH, UK.
Background:
We previously identified increased tissue localization of monomeric C-reactive protein (mCRP) in the infarcted cortical brain tissue of patients following ischaemic stroke. Here, we investigated the relationship of mCRP expression in haemorrhagic stroke, and additionally examined the capacity of mCRP to travel to or appear at other locations within the brain that might account for later chronic neuroinflammatory or neurodegenerative effects.
Methods:
Immunohistochemistry was performed on Formalin-fixed, paraffin-embedded archived brain tissue blocks obtained at autopsy from stroke patients and age-matched controls. We modelled mCRP migration into the brain after haemorrhagic stroke by infusing mCRP (3.5 µg) into the hippocampus of mice and localized mCRP with histological and immunohistochemistry methods.
Results:
On human tissue in the early stages of haemorrhage, there was no staining of mCRP. However, with increasing post-stroke survival time, mCRP immunostaining was associated with some parenchymal brain cells, some stroke-affected neurons in the surrounding areas and the lumen of large blood vessels as well as brain capillaries. Further from the peri-haematoma region, however, mCRP was detected in the lumen of micro-vessels expressing aquaporin 4 (AQP4). In the hypothalamus, we detected clusters of neurons loaded with mCRP along with scattered lipofuscin-like deposits. In the peri-haematoma region of patients, mCRP was abundantly seen adjacent to AQP4 immunoreactivity. When we stereotactically injected mCRP into the hippocampus of mice, we also observed strong expression in distant neurones of the hypothalamus as well as cortical capillaries.
Conclusions:
mCRP is abundantly expressed in the brain after haemorrhagic stroke, directly impacting the pathophysiological development of the haematoma. In addition, it may have indirect effects, where the microcirculatory system appears to be able to carry it throughout the cortex as far as the hypothalamus, allowing for long-distance effects and damage through its capacity to induce inflammation and degenerate neuronal perivascular compartments.
Insights
Monomeric C-reactive protein (mCRP) is found in the brain after hemorrhagic stroke, potentially causing widespread inflammation and neuronal damage. This protein can travel through the brain
Area of Science:
- Neuroscience
- Pathology
- Immunology
Background:
- Monomeric C-reactive protein (mCRP) previously identified in ischemic stroke brain tissue.
- Investigated mCRP expression in hemorrhagic stroke.
- Examined mCRP's potential to spread within the brain, causing chronic neuroinflammation or neurodegeneration.
Purpose of the Study:
- To investigate the relationship between mCRP expression and hemorrhagic stroke.
- To determine if mCRP can migrate to other brain regions after hemorrhagic stroke.
- To explore the potential long-term effects of mCRP in the brain.
Main Methods:
- Immunohistochemistry on autopsy brain tissue from stroke patients and controls.
- Modeling mCRP brain migration by infusing mCRP into the mouse hippocampus.
- Histological and immunohistochemical localization of mCRP in mouse models.
Main Results:
- No early mCRP staining in human hemorrhagic stroke tissue; increased staining with survival time.
- mCRP found in brain cells, neurons, and blood vessels, including micro-vessels expressing aquaporin 4 (AQP4).
- mCRP detected in the hypothalamus and cortical capillaries in both human tissue and mouse models.
Conclusions:
- mCRP is abundantly expressed in the brain post-hemorrhagic stroke, influencing hematoma development.
- The brain's microcirculatory system may transport mCRP throughout the cortex to the hypothalamus.
- mCRP's widespread distribution suggests potential for long-distance neuroinflammatory and neurodegenerative effects.
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