Related Experiment Video
Updated: Jan 28, 2026

Modeling Stroke in Mice: Transient Middle Cerebral Artery Occlusion via the External Carotid Artery
Published on: May 24, 2021
Technical improvements in carotid revascularization based on the mechanism of procedural stroke
Leonie M Fassaert1, Gert J de Borst2
1Department of Vascular Surgery, University Medical Center Utrecht, Utrecht University, Utrecht, The Netherlands.
Insights
Stroke risk during carotid revascularization, including carotid artery stenting (CAS) and carotid endarterectomy (CEA), is being reduced by technical advances. Understanding stroke mechanisms and optimizing antiplatelet therapy (APT) and monitoring are key to improving patient outcomes.
Area of Science:
- Vascular Surgery
- Neurology
- Interventional Cardiology
Background:
- Carotid revascularization benefits are limited by periprocedural stroke risk.
- Carotid artery stenting (CAS) carries a higher stroke risk than carotid endarterectomy (CEA).
- Stroke mechanisms evolve from technical errors to thromboembolic and hemodynamic factors.
Purpose of the Study:
- To review stroke pathophysiology after carotid revascularization.
- To highlight technical improvements reducing periprocedural stroke risk.
- To discuss evolving strategies in antiplatelet therapy and cerebral monitoring.
Main Methods:
- Review of pathophysiological mechanisms of intra- and postprocedural strokes.
- Analysis of technical advancements in CAS and CEA.
- Evaluation of antiplatelet therapy (APT) protocols and cerebral protection devices (CPD).
Main Results:
- Stroke causes include hypoperfusion, embolization, and cerebral hyperperfusion syndrome (CHS).
- Antiplatelet therapy (APT) continuation is safe and effective; dual APT is recommended post-CAS.
- Cerebral monitoring (EEG, TCD) aids in CEA; CPD benefits in CAS require further study.
Conclusions:
- Technical improvements and optimized APT have reduced stroke risk in carotid revascularization.
- Distinguishing intra- and postprocedural stroke mechanisms is crucial for targeted prevention.
- Further research is needed on cerebral monitoring during CAS to minimize stroke incidence.
Abstract:
The benefit of carotid revascularization in patients with severe carotid artery stenosis is hampered by the risk of stroke due to the intervention itself. The risk of periprocedural strokes is higher for carotid artery stenting (CAS) as compared to carotid endarterectomy (CEA). Over the past years, the pathophysiological mechanism responsible for periprocedural stroke seems to unfold step by step. Initially, all procedural strokes were thought to be the result of technical errors during surgical repair: cerebral ischemia due to clamping time of the carotid artery, cerebral embolization of atherosclerotic debris due to manipulation of the atheroma or thrombosis of the artery. Following improvements in surgical techniques, technical skills, new intraoperative monitoring technologies such as angioscopy, and the results of the first large clinical randomized controlled trials (RCT) it was believed that most periprocedural strokes were of thromboembolic nature, while a large part of these caused by technical error. Nowadays, analyses of underlying pathophysiological mechanisms of procedural stroke make a clinically relevant distinction between intra-procedural and postprocedural strokes. Intra-procedural stroke is defined as hypoperfusion due to clamping (CEA) or dilatation (CAS) and embolization from the carotid plaque (both CEA and CAS). Postprocedural stroke can be caused by thrombo-embolisation but seems to have a primarily hemodynamic origin. Besides thrombotic occlusion of the carotid artery, cerebral hyperperfusion syndrome (CHS) due to extensively increased cerebral revascularization is the most reported pathophysiological mechanism of postprocedural stroke. Multiple technical improvements have attempted to lower the risk of periprocedural stroke. The introduction of antiplatelet therapy (APT) has significantly reduced the risk of thromboembolic events in patients with carotid stenosis. Over the years, recommendations regarding APT changed. While for a long time APT was discontinued prior to surgery because of a fear of increased bleeding risk, nowadays continuation of APT during carotid intervention (aspirin monotherapy or even dual APT including clopidogrel) is found to be safe and effective. In CAS patients, dual APT up to three months' postprocedural is considered best. Stent design and cerebral protection devices (CPD) for CAS procedure are continuously under development. Trials have suggested a benefit of closed-cell stent design over open-cell stent design in order to reduce procedural stroke, while the benefit of CPD during stenting is still a matter of debate. Although CPD reduce the risk of procedural stroke, a higher number of new ischemic brain lesions detected on diffusion weighted imaging was found in patients treated with CPD. In patients undergoing CEA under general anesthesia, adequate use of cerebral monitoring (EEG and transcranial Doppler [TCD]) has reduced the number of intraoperative stroke by detecting embolization and thereby guiding the surgeon to adjust his technique or to selectively shunt the carotid artery. In addition, TCD is able to adequately identify and exclude patients at risk for CHS. For CAS, the additional value of periprocedural cerebral monitoring to prevent strokes needs urgent attention. In conclusion, this review provides an overview of the pathophysiological mechanism of stroke following carotid revascularization (both CAS and CEA) and of the technical improvements that have contributed to reducing this stroke risk.
Related Concept Videos
Improving Translational Accuracy
Improving Translational Accuracy
Regulation of Stroke Volume
Preload refers to the degree of stretch on the heart before it contracts. It's analogous to the stretching of a rubber band; the more it's stretched, the more forcefully it snaps back. This concept is encapsulated in the Frank-Starling law of the...
Reaction Mechanisms
For instance, the decomposition of ozone appears to follow a mechanism with two steps:
Mechanical Protein Functions
Cardiac Output and Stroke Volume
In an average resting adult male, the typical cardiac...

