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Updated: Aug 15, 2026

Induction of Acute Ischemic Stroke in Mice Using the Distal Middle Artery Occlusion Technique
Published on: December 15, 2023
Progress in the identification of stroke-related genes: emerging new possibilities to develop concepts in stroke
Andrea Lippoldt1, Andreas Reichel, Ursula Moenning
1Department of Radiopharmaceuticals Research, Schering AG Berlin, Berlin, Germany. andrea.lippoldt@schering.de
Abstract:
Stroke is a very complex disease influenced by many risk factors: genetic, environmental and comorbidities, such as hypertension, diabetes mellitus, obesity and having had a previous stroke. Neuroprotective therapies that have been found to be successful in laboratory animals have failed to produce the same benefits in clinical trials. Currently, a re-analysis of the clinical trial failures is underway and new therapeutic approaches using the growing knowledge from neurogenesis and neuroinflammation studies, combined with the information from gene expression studies, are taking place. This review focuses on possible ways to identify therapeutic targets using the new discoveries in neuroinflammation and intrinsic regenerative mechanisms of the brain. Molecular events associated with ischaemia trigger an environment for inflammation. Within the ischaemic region and its penumbra, a battery of chemokines and cytokines are released, which have both detrimental and beneficial effects, depending on the specific timepoint after injury and the current activation status of microglia/macrophages. Preventive therapies and treatments for stroke may be established by identifying the genes that are responsible for the induction of those phenotypic changes of microglia/macrophages that switch them to become players in tissue repair and regeneration processes. To aid in the establishment of new target sources for novel therapeutic agents, animal stroke models should closely mimic stroke in humans. To do so, these models should take into account the various risk factors for stroke. For example, hypertensive animals have a more vulnerable blood-brain barrier that in turn may trigger a greater degree of damage after stroke. Furthermore, in aged animals an accelerated astrocytic and microglial reaction has been observed and the regenerative capacity of aged brains is not as high as young brains. Improvements in animal models may also help to ensure better success rates of potential therapies in clinical studies. Inflammation in the brain is a double-edged sword--characterised by the deleterious effect of nerve cell damage and nerve cell death, as well as the beneficial influence on regeneration. The major challenge to develop successful stroke therapies is to broaden the knowledge regarding the underlying pathologic processes and the intrinsic mechanisms of the brain to drive regenerative and plasticity-related changes. On this basis, new concepts can be created leading to better stroke therapy.
Insights
Identifying new therapeutic targets for stroke involves understanding neuroinflammation and brain regeneration. Research focuses on modulating microglia/macrophages for tissue repair, improving animal models, and advancing stroke treatment.
Area of Science:
- Neuroscience
- Immunology
- Genetics
Background:
- Stroke is a complex disease with numerous risk factors, including genetics, environment, hypertension, diabetes, obesity, and prior stroke.
- Current neuroprotective therapies successful in animals have failed in human clinical trials.
- Re-analysis of trial failures and new therapeutic approaches integrating neurogenesis, neuroinflammation, and gene expression are underway.
Purpose of the Study:
- To explore novel therapeutic targets for stroke by leveraging discoveries in neuroinflammation and the brain's intrinsic regenerative mechanisms.
- To identify genes responsible for microglia/macrophage phenotypic changes that promote tissue repair and regeneration.
- To emphasize the importance of improving animal stroke models to better reflect human stroke conditions and risk factors.
Main Methods:
- Review of current research on neuroinflammation and brain regeneration post-stroke.
- Analysis of molecular events, chemokines, and cytokines in the ischaemic environment.
- Evaluation of microglia/macrophage activation states and their role in repair.
- Discussion of the impact of risk factors (hypertension, age) on stroke pathology and regeneration in animal models.
Main Results:
- Ischaemia triggers inflammation with both detrimental and beneficial effects mediated by microglia/macrophages.
- Modulating microglia/macrophage phenotypes offers potential for therapeutic intervention in stroke.
- Animal models incorporating stroke risk factors (hypertension, age) provide more relevant insights into human disease.
Conclusions:
- Understanding the dual role of brain inflammation is crucial for developing effective stroke therapies.
- Targeting intrinsic regenerative mechanisms and identifying key genes is essential for future stroke treatment strategies.
- Enhanced, human-relevant animal models are critical for successful translation of therapies from bench to bedside.
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