Related Experiment Video
Updated: Jun 2, 2026

Use of a Hanging Weight System for Coronary Artery Occlusion in Mice
Published on: April 19, 2011
Use of a hanging weight system for coronary artery occlusion in mice
Tobias Eckle1, Michael Koeppen, Holger Eltzschig
1Department of Anesthesiology, University of Colorado Denver, USA. tobias.eckle@ucdenver.edu
Abstract:
Murine studies of acute injury are an area of intense investigation, as knockout mice for different genes are becoming increasingly available. Cardioprotection by ischemic preconditioning (IP) remains an area of intense investigation. To further elucidate its molecular basis, the use of knockout mouse studies is particularly important. Despite the fact that previous studies have already successfully performed cardiac ischemia and reperfusion in mice, this model is technically very challenging. Particularly, visual identification of the coronary artery, placement of the suture around the vessel and coronary occlusion by tying off the vessel with a supported knot is technically difficult. In addition, re-opening the knot for intermittent reperfusion of the coronary artery during IP without causing surgical trauma adds additional challenge. Moreover, if the knot is not tied down strong enough, inadvertent reperfusion due to imperfect occlusion of the coronary may affect the results. In fact, this can easily occur due to the movement of the beating heart. Based on potential problems associated with using a knotted coronary occlusion system, we adopted a previously published model of chronic cardiomyopathy based on a hanging weight system for intermittent coronary artery occlusion during IP. In fact, coronary artery occlusion can thus be achieved without having to occlude the coronary by a knot. Moreover, reperfusion of the vessel can be easily achieved by supporting the hanging weights which are in a remote localization from cardiac tissues. We tested this system systematically, including variation of ischemia and reperfusion times, preconditioning regiments, body temperature and genetic backgrounds. In addition to infarct staining, we tested cardiac troponin I (cTnI) as a marker of myocardial infarction in this model. In fact, plasma levels of cTnI correlated with infarct sizes (R2=0.8). Finally, we could show in several studies that this technique yields highly reproducible infarct sizes during murine IP and myocardial infarction. Therefore, this technique may be helpful for researchers who pursue molecular mechanisms involved in cardioprotection by IP using a genetic approach in mice with targeted gene deletion. Further studies on cardiac IP using transgenic mice may consider this technique.
Insights
This study introduces a novel hanging weight system for reproducible murine myocardial infarction and ischemic preconditioning (IP) models. This technique overcomes challenges of traditional knot-based occlusion, aiding genetic research into cardioprotection.
Area of Science:
- Cardiovascular Research
- Translational Medicine
- Animal Models
Background:
- Murine models are crucial for investigating acute cardiac injury and cardioprotection mechanisms, particularly using genetically modified mice.
- Ischemic preconditioning (IP) offers cardioprotection, but its molecular basis requires robust experimental models.
- Existing murine models for cardiac ischemia-reperfusion injury are technically challenging, especially regarding reliable coronary artery occlusion and reperfusion.
Purpose of the Study:
- To develop and validate a technically simplified and reproducible method for inducing myocardial infarction and IP in mice.
- To overcome the limitations of traditional knot-based coronary artery occlusion systems.
- To provide a reliable model for genetic studies investigating cardioprotection mechanisms.
Main Methods:
- Adapted a hanging weight system for intermittent coronary artery occlusion, avoiding direct knotting of the vessel.
- Systematically varied ischemia/reperfusion durations, preconditioning regimens, body temperature, and genetic backgrounds.
- Assessed myocardial infarction using infarct staining and measured cardiac troponin I (cTnI) plasma levels as a biomarker.
Main Results:
- The hanging weight system enabled consistent coronary artery occlusion and reperfusion without surgical trauma.
- Plasma cTnI levels showed a strong correlation with infarct size (R²=0.8).
- The technique demonstrated high reproducibility of infarct sizes in murine IP and myocardial infarction models.
Conclusions:
- The hanging weight system offers a reliable and reproducible method for inducing myocardial infarction and IP in mice.
- This model facilitates molecular investigations into cardioprotection, especially for researchers utilizing genetically engineered mice.
- The technique is recommended for future studies on cardiac IP using transgenic mouse models.

