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Isolation and Culture of Mouse Cortical Astrocytes
Published on: January 19, 2013
Bone marrow-derived nonreactive astrocytes in the mouse brain after permanent middle cerebral artery occlusion
Zsuzsanna E Tóth1, Ronen R Leker, Tal Shahar
1National Institute of Dental and Craniofacial Research, National Institute of Health, Bethesda, Maryland 20892, USA.
Abstract:
We studied the effect of permanent unilateral middle cerebral artery occlusion (PMCAO) on the generation of bone marrow (BM)-derived astrocytes in female mice previously transplanted with enhanced green fluorescent protein-expressing BM from male donors. In addition to an untreated PMCAO group, one group of mice also received intracerebral infusion of transforming growth factor-alpha, resulting in a decrease in the size of the infarct. Two months after PMCAO, we found a specific type of astrocyte of BM origin in the side of the injury, near the lesion. These astrocytes did not express glial fibrillary acidic protein (GFAP) by conventional fluorescence immunostaining; however, GFAP was easily detectable by tyramide signal amplification. These cells also expressed S100β, confirming their astrocytic character. Unlike the endogenous reactive astrocytes, these BM-derived astrocytes did not proliferate during the first week of ischemia and did not contribute to the glial scar formation. Transforming growth factor-alpha infusion increased the number of BM-derived astrocytes, without affecting their distribution. Interestingly, exclusively by tyramide signal amplification staining, we found that endogenous astrocytes displaying an identical morphology were also present in control mouse and human brains. Our data demonstrate that a subpopulation of nonreactive astrocytes expressing low levels of GFAP can originate from transplanted BM in the ischemic brain. We believe that these cells represent a subpopulation of astrocytes earlier considered to be GFAP negative. The high number of astrocytes with identical morphology and chemical character in control brains suggest that these type of astrocytes may have important functional role in the central nervous system that calls for further studies.
Insights
Bone marrow transplantation can generate a unique type of nonreactive astrocyte in the ischemic brain. These bone marrow-derived astrocytes, previously considered GFAP-negative, may play a crucial role in central nervous system function.
Area of Science:
- Neuroscience
- Stem Cell Biology
- Ischemic Stroke Research
Background:
- Stroke induces brain injury and reactive astrogliosis.
- Bone marrow cells can differentiate into various cell types.
- The origin and role of specific astrocyte subpopulations remain unclear.
Purpose of the Study:
- To investigate the generation and characteristics of bone marrow-derived astrocytes in the ischemic brain.
- To determine if these cells contribute to glial scar formation.
- To explore the potential role of these astrocytes in stroke recovery.
Main Methods:
- Permanent unilateral middle cerebral artery occlusion (PMCAO) in mice with bone marrow transplantation from fluorescently labeled donors.
- Intracerebral infusion of transforming growth factor-alpha (TGF-α).
- Immunohistochemistry using conventional fluorescence and tyramide signal amplification (TSA) for GFAP and S100β detection.
Main Results:
- Bone marrow-derived astrocytes were identified near the ischemic lesion two months post-PMCAO.
- These cells expressed S100β but showed low GFAP expression, detectable by TSA.
- BM-derived astrocytes did not proliferate or contribute to glial scarring, unlike endogenous reactive astrocytes.
- TGF-α infusion increased the number of BM-derived astrocytes.
- Identical astrocyte morphology was observed in control brains, suggesting a broader physiological role.
Conclusions:
- A subpopulation of nonreactive, low-GFAP astrocytes can originate from transplanted bone marrow in the ischemic brain.
- These cells represent a distinct astrocyte type, potentially GFAP-negative under conventional staining.
- The presence of similar astrocytes in control brains suggests a significant, underappreciated functional role in the central nervous system.

