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Published on: February 6, 2011
Confirmation of CT criteria to distinguish pathophysiologic subtypes of cerebral infarction
C Dettmers1, L Solymosi, A Hartmann
1Department of Neurology, University of Bonn, Germany.
Insights
CT scan appearance can distinguish between embolic and hemodynamic cerebral infarctions, revealing distinct pathophysiologic entities. Watershed infarcts show compromised hemodynamics compared to territorial infarcts in the chronic stage.
Area of Science:
- Neurology
- Radiology
- Cerebrovascular Diseases
Background:
- Cerebral infarctions are broadly classified based on etiology, with CT scan morphology offering potential insights into underlying pathophysiology.
- Distinguishing between embolic and hemodynamic causes of stroke is crucial for understanding disease mechanisms and patient outcomes.
Purpose of the Study:
- To investigate whether CT scan-derived classifications of cerebral infarctions (territorial vs. watershed) correspond to distinct pathophysiologic processes.
- To assess cerebral CO2 reactivity as a marker for differentiating these infarction types.
Main Methods:
- Retrospective classification of 21 ischemic cerebral infarctions into territorial (n=14) or watershed (n=7) types based on CT scan morphology.
- Measurement of regional cerebral blood flow and CO2 reactivity using the xenon-133 method with 32 stationary detectors.
Main Results:
- Both territorial and watershed infarct groups exhibited altered CO2 reactivity in affected hemispheres compared to unaffected ones.
- Watershed infarction group showed significantly lower CO2 reactivity in affected areas compared to territorial infarction group.
- CO2 reactivity in affected detectors of the hemodynamic (watershed) group was significantly reduced compared to age-matched healthy controls.
Conclusions:
- CT scan morphology can differentiate between two distinct pathophysiologic entities of cerebral infarction: territorial and watershed.
- Watershed infarcts, characterized by compromised global hemodynamic status in the chronic stage, exhibit lower CO2 reactivity than territorial infarcts.
Purpose:
To determine whether cerebral infarctions classified as embolic or hemodynamic by their appearance on CT scans reflect distinct pathophysiologic entities.
Methods:
Cerebral infarctions were retrospectively classified into two groups according to their morphologic appearance on CT scans: territorial infarctions and watershed, or terminal supply area, infarctions. Specific CO2 reactivity for both groups of patients was determined with the xenon-133 method and 32 stationary detectors. Twenty-one patients with unilateral, supratentorial, ischemic cerebral infarctions were selected. CT findings were highly suggestive of a territorial infarction in 14 patients (mean age, 56 years) and of a watershed infarction in seven patients (mean age, 52 years).
Results:
The initial slope index of the territorial and watershed infarction groups during CO2 inhalation was 55.1 +/- 2.4 sec-1 and 52.0 +/- 1.9 sec-1, respectively, in the infarcted hemispheres and 58.3 +/- 2.3 sec-1 and 55.1 +/- 1.5 sec-1, respectively, in the noninfarcted hemispheres. CO2 reactivity of the unaffected detectors was 1.75 +/- 0.3 sec-1 mm Hg-1 and 1.51 +/- 0.2 sec-1 mm Hg-1 for the territorial and watershed infarction groups, respectively. CO2 reactivity of the affected detectors was 1.75 +/- 0.3 sec-1 mm Hg-1 and 1.27 +/- 0.2 sec-1 mm Hg-1 for the two groups, respectively. The CO2 reactivity difference between affected detectors of the hemodynamic group and age-matched healthy control subjects was significant.
Conclusions:
The difference in CO2 reactivity between the two groups supports the concept that CT criteria can identify two pathophysiologic entities. In addition, we conclude that during the chronic stage, lower CO2 reactivity of the watershed infarction indicates that the global hemodynamic situation in these infarcts is more severely compromised than in territorial infarctions.
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