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Updated: May 30, 2026

A Thrombotic Stroke Model Based On Transient Cerebral Hypoxia-ischemia
Published on: August 18, 2015
Circulating endothelial cells and stroke: influence of stroke subtypes and changes during the course of disease
Alexander Woywodt1, Stefan Gerdes, Bjoern Ahl
1Department of Nephrology, Hannover Medical School, Hannover, Germany. Alex.Woywodt@lthtr.nhs.uk
Insights
Circulating endothelial cells (CECs) are elevated in stroke patients, indicating endothelial damage. CEC levels vary by stroke type and time, reflecting different underlying causes.
Area of Science:
- Vascular Biology
- Neurology
- Biomarker Discovery
Background:
- Circulating endothelial cells (CECs) are emerging biomarkers for endothelial damage in vascular disorders.
- Limited data exists on CEC counts and their temporal dynamics across different stroke subtypes.
Purpose of the Study:
- To investigate the levels and time course of CECs in patients with atherothrombotic infarction, cardioembolic stroke, and lacunar stroke.
- To compare CEC counts in stroke patients with healthy and disease controls.
Main Methods:
- Studied 49 stroke patients (18 atherothrombotic, 16 cardioembolic, 15 lacunar) and 80 controls (16 healthy, 64 disease).
- Isolated and enumerated CECs using lectin-augmented CD146-driven immunomagnetic isolation.
- Assessed neurological deficit (ESS, NIHSS) and recovery (mRS).
Main Results:
- Stroke patients exhibited significantly elevated CECs compared to controls (P < .001).
- CEC levels varied by stroke type, with a trend towards higher counts in lacunar stroke.
- Atherothrombotic infarction showed peak CECs at day 7, returning to normal by day 90; cardioembolic and lacunar strokes showed progressive CEC decrease until day 90.
Conclusions:
- CECs serve as indicators of endothelial damage and/or repair following stroke.
- Distinct CEC patterns across stroke subtypes suggest differing pathophysiological mechanisms.
Background:
Circulating endothelial cells (CECs) are a novel and valuable marker of endothelial damage in a variety of vascular disorders. There is limited information as to CEC counts and the time course of CECs in subtypes of stroke.
Methods:
We studied 49 patients with stroke (18 with atherothrombotic infarction in the territory of the middle cerebral artery, 16 with cardioembolic stroke, and 15 with lacunar stroke). We also included 16 healthy controls and 64 disease controls. CECs were isolated and enumerated with lectin-augmented CD146-driven immunomagnetic isolation. Neurologic deficit was assessed with the European Stroke Scale (ESS) and the National Institutes of Health Stroke Scale (NIHSS). Recovery was assessed with the modified Rankin scale (mRS).
Results:
Healthy controls had low numbers of CECs (median, 8 cells/mL; mean, 9 cells/mL; range, 0-16 cells/mL; n = 16). Patients with stroke had markedly elevated numbers of CECs at presentation. Patients with atherothrombotic infarction had 32 cells per milliliter (mean, 42 cells/mL; range, 24-116 cells/mL; n = 18; P < .001 when compared to controls). Patients with lacunar stroke had 68 cells per milliliter (mean, 68 cells/mL; range, 8-144 cells/mL; n = 15; P < .001 when compared to controls). Patients with cardioembolic stroke had 46 cells per milliter (mean, 54 cells/mL; range, 24-116 cells/mL; n = 16; P < .001 when compared to healthy controls). There was a tendency towards higher numbers of CECs in lacunar stroke. The number of CECs peaked at day 7 in patients with atherothrombotic infarction and came back to normal at day 90. In contrast, CECs in patients with acute lacunar stroke and cardioembolic stroke decreased progressively until day 90.
Conclusions:
CECs are markers of endothelial damage and/or repair in stroke. Differences during the course of disease are likely to reflect different pathophysiology.
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