Related Experiment Video
Updated: Jun 5, 2026

Modeling Stroke in Mice - Middle Cerebral Artery Occlusion with the Filament Model
Published on: January 6, 2011
Modeling stroke in mice - middle cerebral artery occlusion with the filament model
Odilo Engel1, Sabine Kolodziej, Ulrich Dirnagl
1Department for Experimental Neurology, Center for Stroke Research Berlin, Charité Universitätsmedizin.
Abstract:
Stroke is among the most frequent causes of death and adult disability, especially in highly developed countries. However, treatment options to date are very limited. To meet the need for novel therapeutic approaches, experimental stroke research frequently employs rodent models of focal cerebral ischaemia. Most researchers use permanent or transient occlusion of the middle cerebral artery (MCA) in mice or rats. Proximal occlusion of the middle cerebral artery (MCA) via the intraluminal suture technique (so called filament or suture model) is probably the most frequently used model in experimental stroke research. The intraluminal MCAO model offers the advantage of inducing reproducible transient or permanent ischaemia of the MCA territory in a relatively non-invasive manner. Intraluminal approaches interrupt the blood flow of the entire territory of this artery. Filament occlusion thus arrests flow proximal to the lenticulo-striate arteries, which supply the basal ganglia. Filament occlusion of the MCA results in reproducible lesions in the cortex and striatum and can be either permanent or transient. In contrast, models inducing distal (to the branching of the lenticulo-striate arteries) MCA occlusion typically spare the striatum and primarily involve the neocortex. In addition these models do require craniectomy. In the model demonstrated in this article, a silicon coated filament is introduced into the common carotid artery and advanced along the internal carotid artery into the Circle of Willis, where it blocks the origin of the middle cerebral artery. In patients, occlusions of the middle cerebral artery are among the most common causes of ischaemic stroke. Since varying ischemic intervals can be chosen freely in this model depending on the time point of reperfusion, ischaemic lesions with varying degrees of severity can be produced. Reperfusion by removal of the occluding filament at least partially models the restoration of blood flow after spontaneous or therapeutic (tPA) lysis of a thromboembolic clot in humans. In this video we will present the basic technique as well as the major pitfalls and confounders which may limit the predictive value of this model.
Insights
Stroke is a leading cause of death and disability, with limited treatments. This study details a rodent model of middle cerebral artery occlusion (MCAO) for experimental stroke research.
Area of Science:
- Neuroscience
- Cardiovascular Research
- Experimental Neurology
Background:
- Stroke is a major cause of death and disability globally, necessitating better therapeutic strategies.
- Current treatment options for stroke are limited, driving the need for advanced experimental models.
- Rodent models of focal cerebral ischemia, particularly middle cerebral artery occlusion (MCAO), are crucial for stroke research.
Purpose of the Study:
- To present a detailed methodology for the intraluminal filament MCAO model in rodents.
- To highlight the advantages and reproducibility of this MCAO model for studying ischemic stroke.
- To discuss potential pitfalls and confounders that may affect the predictive value of the MCAO model.
Main Methods:
- Utilizing the intraluminal suture technique to occlude the middle cerebral artery (MCA) in rodents.
- Introducing a silicon-coated filament via the common carotid artery to block the MCA origin.
- Allowing for adjustable ischemic intervals and reperfusion to model human stroke conditions.
Main Results:
- The intraluminal MCAO model reliably induces reproducible ischemic lesions in the cortex and striatum.
- This technique allows for variable lesion severity by adjusting occlusion duration and reperfusion.
- Reperfusion by filament removal partially mimics restoration of blood flow post-stroke in humans.
Conclusions:
- The intraluminal filament MCAO model is a valuable tool for experimental stroke research due to its reproducibility and flexibility.
- Understanding and mitigating model-specific pitfalls are essential for enhancing the translational relevance of MCAO studies.
- This model aids in investigating novel therapeutic approaches for ischemic stroke, addressing a critical unmet medical need.

