Intracerebral hemorrhage (ICH) is a relatively common form of cerebrovascular disease with approximately 40–50% of afflicted patients dying within 30 days 1. Unfortunately, little improvement has been made in the mortality rate over the last 20 years 2. Reports from the National Institutes of Health 3 and guidelines from the American Heart Association 4 stressed the importance of developing clinically relevant models of ICH to extend the understanding of pathophysiology and develop targets for new therapeutic approaches.
Several models exist to mimic human ICH 5. As understanding of ICH pathophysiology matures, it has become evident that a variety of models may be used to examine different aspects of the disease. Previously used models include murine amyloid angiopathy 6, intraparenchymal microballoon insertion and inflation 7, and direct arterial blood infiltration 8,9. Lobar hemorrhage from amyloid angiopathy has been modeled with the use of transgenic mice and represents a distinct ICH subtype. Microballoon models mimic acute mass effect from hematoma formation but fail to capture the brain’s cellular response to the presence of blood. Finally, direct arterial blood infiltration subjects the brain to arterial pressures from the femoral artery. Thus, this model mimics arterial pressures and the presence of blood but does not subject the brain to microvascular injury from small blood vessel rupture. Further, this model has inherently high variability. Interestingly, spontaneously hypertensive rats 10 develop spontaneous ICH as they age. Study of these animals after ICH development may mimic the disease in the presence of one of the major comorbidities predisposing humans to ICH. While these other models exist, intrastriatal injection of Clostridial collagenase 11 or instrastiatal injection of autologous whole blood 12 are, currently, the two most common models used in preclinical ICH research.
ICH model selection should be made based on the objective of the experimental question, including species selection and method of inducing hematoma formation. For instance, pigs are large animals with relatively large white matter brain volumes compared to mice. Thus, porcine models are suited to study white matter pathophysiology following ICH. In contrast, rodent brains are largely gray matter, but transgenic systems make rodents useful to assess molecular mechanisms of injury and recovery after ICH. Each model has its inherent strengths and weaknesses (Table 1), which should be carefully considered prior to experimentation.
The following protocols demonstrate the autologous blood and collagenase injection models in mice. These models have each been translated from models originally developed in rats 13,14 and allow the use of widely available transgenic technology to explore molecular mechanisms associated with cell death after ICH. Both represent distinctly different injury mechanisms from human ICH, and both have distinctly different expected outcome in terms of behavioral and histological measures. Thus, certain hypotheses may lend themselves to one model over the other, but many ideas may require validation in both models.
Table 1. Comparison of characteristics of collagenase- and autologous blood injection intracerebral hemorrhage models.
| Collagenase Injection | Blood Injection |
| Ease of Use | +++ | ++ |
| Reproducibility | ++ | ++ |
| Control of Hemorrhage Size | ++ | +++ |
| Blood Reflux | + | ++ |
| Simulates Human Disease | + | - |
| Simplicity | ++ | ++ |
| Use in Multiple Species | ++ | ++ |