Related Experiment Video
Updated: May 24, 2026

Retrograde Perfusion and Filling of Mouse Coronary Vasculature as Preparation for Micro Computed Tomography Imaging
Published on: February 10, 2012
Retrograde perfusion and filling of mouse coronary vasculature as preparation for micro computed tomography imaging
Jill J Weyers1, Dara D Carlson, Charles E Murry
1Department of Pathology, Center for Cardiovascular Biology, and Institute for Stem Cell and Regenerative Medicine, University of Washington, USA.
Insights
This study presents an optimized in vivo method using Microfil to completely fill mouse coronary vasculature for micro-Computed Tomography (μCT) imaging. The technique ensures detailed visualization of the entire vascular network, including capillaries, arteries, and veins.
Area of Science:
- Cardiovascular research
- Medical imaging
- Vascular biology
Background:
- Accurate visualization of the entire vascular network, including small vessels, is crucial for understanding diseases.
- Existing vascular casting methods often damage surrounding tissue, limiting further analysis.
- Micro-Computed Tomography (μCT) offers high-resolution 3D imaging of intact tissues, but requires complete vascular filling with radiopaque agents.
Purpose of the Study:
- To describe a novel in vivo protocol for complete filling of mouse coronary vasculature using Microfil.
- To optimize Microfil perfusion for micro-Computed Tomography (μCT) imaging.
- To enable detailed visualization of the entire coronary vascular network, including arteries, capillaries, and veins.
Main Methods:
- An in vivo aortic cannulation technique was developed for perfusing mouse coronary vessels.
- A low-viscosity radiopaque agent, Microfil, was used for comprehensive vascular filling.
- Ligation of major aortic branches and vascular exit points was employed to ensure maximal Microfil diversion and retention.
Main Results:
- The described method achieved complete filling of the coronary vascular network, including capillaries.
- Microfil successfully visualized both arterial and venous sides of the vasculature.
- The intact tissue allowed for subsequent histological and morphometric analyses.
Conclusions:
- This optimized in vivo perfusion and Microfil filling technique enables high-fidelity μCT imaging of the complete mouse coronary vascular system.
- The protocol facilitates detailed morphological studies of the vasculature in various disease states.
- The method preserves tissue integrity for correlative analyses, advancing cardiovascular research.
Abstract:
Visualization of the vasculature is becoming increasingly important for understanding many different disease states. While several techniques exist for imaging vasculature, few are able to visualize the vascular network as a whole while extending to a resolution that includes the smaller vessels. Additionally, many vascular casting techniques destroy the surrounding tissue, preventing further analysis of the sample. One method which circumvents these issues is micro-Computed Tomography (μCT). μCT imaging can scan at resolutions <10 microns, is capable of producing 3D reconstructions of the vascular network, and leaves the tissue intact for subsequent analysis (e.g., histology and morphometry). However, imaging vessels by ex vivo μCT methods requires that the vessels be filled with a radiopaque compound. As such, the accurate representation of vasculature produced by μCT imaging is contingent upon reliable and complete filling of the vessels. In this protocol, we describe a technique for filling mouse coronary vessels in preparation for μCT imaging. Two predominate techniques exist for filling the coronary vasculature: in vivo via cannulation and retrograde perfusion of the aorta (or a branch off the aortic arch), or ex vivo via a Langendorff perfusion system. Here we describe an in vivo aortic cannulation method which has been specifically designed to ensure filling of all vessels. We use a low viscosity radiopaque compound called Microfil which can perfuse through the smallest vessels to fill all the capillaries, as well as both the arterial and venous sides of the vascular network. Vessels are perfused with buffer using a pressurized perfusion system, and then filled with Microfil. To ensure that Microfil fills the small higher resistance vessels, we ligate the large branches emanating from the aorta, which diverts the Microfil into the coronaries. Once filling is complete, to prevent the elastic nature of cardiac tissue from squeezing Microfil out of some vessels, we ligate accessible major vascular exit points immediately after filling. Therefore, our technique is optimized for complete filling and maximum retention of the filling agent, enabling visualization of the complete coronary vascular network--arteries, capillaries, and veins alike.
More Related Videos
06:46Quantitative Micro-CT Analysis of Aortopathy in a Mouse Model of β-aminopropionitrile-induced Aortic Aneurysm and Dissection
Published on: July 16, 2018
08:13In Vivo Quantitative Assessment of Myocardial Structure, Function, Perfusion and Viability Using Cardiac Micro-computed Tomography
Published on: February 16, 2016