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Focal cerebral ischemia induces active proteases that degrade microvascular matrix
Shunichi Fukuda1, Catherine A Fini, Takuma Mabuchi
1Department of Molecular and Experimental Medicine, The Scripps Research Institute, La Jolla, Calif 92037, USA.
Background And Purpose:
Focal cerebral ischemia causes microvessel matrix degradation and generates proteases known to degrade this matrix. However, proof that the proteases generated do indeed degrade vascular matrix is lacking. Here we demonstrate that active proteases derived from ischemic tissue after middle cerebral artery occlusion (MCAO) and transferred to normal tissue can degrade vascular matrix.
Methods:
In an ex vivo bioassay, the effects of supernatants from ischemic and normal basal ganglia of nonhuman primates, proteases, and control buffer on the immunoreactivity of vascular matrix constituents in normal brain tissue sections were quantified. Protease families were identified with specific inhibitors.
Results:
Plasmin, active matrix metalloproteinase (MMP)-2, and active MMP-9 significantly reduced microvessel-associated collagen, laminin, and heparan sulfate proteoglycans (HSPG). The vascular HSPG perlecan was more sensitive than collagen or laminin in the bioassay and in the ischemic core 2 hours after MCAO. Two-hour and 7-day ischemic tissue samples significantly degraded matrix perlecan and collagen. Inhibitor studies confirmed that while active MMPs were generated, active cysteine proteases significantly degraded microvessel perlecan. The cysteine proteases cathepsins B and L were generated in the microvasculature and adjacent neurons or glial cells 2 hours after MCAO and decreased perlecan in the bioassay.
Conclusions:
This is the first direct evidence that active proteases are generated in ischemic cerebral tissues that are acutely responsible for vascular matrix degradation. Degradation of vascular perlecan, the most sensitive matrix component thus far identified, may be due to cathepsins B and L, generated very rapidly after MCAO.
Insights
Active proteases generated during focal cerebral ischemia, including cathepsins B and L, directly degrade the brain's microvessel matrix. This study provides the first evidence of this rapid vascular matrix degradation following middle cerebral artery occlusion (MCAO).
Area of Science:
- Neuroscience
- Biochemistry
- Vascular Biology
Background:
- Focal cerebral ischemia leads to the generation of proteases capable of degrading the microvessel matrix.
- Direct evidence linking proteases generated during ischemia to vascular matrix degradation was previously lacking.
Purpose of the Study:
- To demonstrate that proteases from ischemic brain tissue can degrade vascular matrix.
- To identify specific proteases responsible for this degradation.
Main Methods:
- An ex vivo bioassay using normal brain tissue sections exposed to supernatants from ischemic and normal primate basal ganglia.
- Quantification of immunoreactivity of vascular matrix constituents (collagen, laminin, HSPG).
- Identification of protease families using specific inhibitors.
Main Results:
- Active matrix metalloproteinases (MMP)-2 and MMP-9, and plasmin degraded microvessel collagen, laminin, and heparan sulfate proteoglycans (HSPG).
- Vascular HSPG perlecan was the most sensitive matrix component, degraded rapidly after middle cerebral artery occlusion (MCAO).
- Active cysteine proteases, specifically cathepsins B and L, were generated rapidly after MCAO and degraded perlecan.
Conclusions:
- This study provides the first direct evidence that active proteases generated in ischemic cerebral tissue acutely degrade the vascular matrix.
- Rapid degradation of vascular perlecan, a key matrix component, is likely mediated by cathepsins B and L, which are generated very early after MCAO.
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