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.
Abstract

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