Related Experiment Video
Updated: Mar 1, 2026

Generation and 3-Dimensional Quantitation of Arterial Lesions in Mice Using Optical Projection Tomography
Published on: May 26, 2015
Statistical Permutation-based Artery Mapping (SPAM): a novel approach to evaluate imaging signals in the vessel wall
Robert Seifert1, Aaron Scherzinger2, Friedemann Kiefer3,4
1European Institute for Molecular Imaging (EIMI), University of Münster, Münster, Germany. robert.seifert@uni-muenster.de.
Insights
A new method called Statistical Permutation-based Artery Mapping (SPAM) analyzes fluorescence reflectance imaging data to identify patterns in atherosclerotic plaques. This technique enhances molecular imaging for cardiovascular disease research.
Area of Science:
- Cardiovascular Research
- Molecular Imaging
- Biomedical Engineering
Background:
- Cardiovascular diseases are a leading global cause of death, with atherosclerosis driving many events.
- Atherosclerotic plaques pose a risk, necessitating advanced non-invasive imaging for high-risk identification.
- Current methods lack sensitivity for plaques not causing luminal narrowing.
Purpose of the Study:
- To develop a standardized, reproducible analysis method for molecular imaging of atherosclerosis.
- To enable precise comparison of atherosclerotic plaque characteristics across subjects.
- To advance the understanding of complex regional processes in atherosclerosis.
Main Methods:
- Introduction of Statistical Permutation-based Artery Mapping (SPAM) for cardiovascular molecular imaging.
- SPAM integrates standardization, intensity normalization, permutation testing, and cluster-enhancement.
- Application of established functional MRI statistical strategies to fluorescence reflectance imaging (FRI) data.
Main Results:
- SPAM was tested on FRI images of murine aortic vessels to detect recurring atherosclerotic plaque patterns.
- The pixel-wise and cluster-enhanced testing approach proved feasible and effective for analyzing tracer distributions.
- Demonstrated utility in identifying patterns within complex atherosclerotic plaque data.
Conclusions:
- SPAM is a valuable tool for molecular imaging of atherosclerotic plaques.
- Cluster-enhanced permutation testing effectively identifies significant differences in tracer distribution in inflamed vessels.
- The method supports enhanced understanding and characterization of atherosclerosis.
Background:
Cardiovascular diseases are the leading cause of death worldwide. A prominent cause of cardiovascular events is atherosclerosis, a chronic inflammation of the arterial wall that leads to the formation of so called atherosclerotic plaques. There is a strong clinical need to develop new, non-invasive vascular imaging techniques in order to identify high-risk plaques, which might escape detection using conventional methods based on the assessment of the luminal narrowing. In this context, molecular imaging strategies based on fluorescent tracers and fluorescence reflectance imaging (FRI) seem well suited to assess molecular and cellular activity. However, such an analysis demands a precise and standardized analysis method, which is orientated on reproducible anatomical landmarks, ensuring to compare equivalent regions across different subjects.
Methods:
We propose a novel method, Statistical Permutation-based Artery Mapping (SPAM). Our approach is especially useful for the understanding of complex and heterogeneous regional processes during the course of atherosclerosis. Our method involves three steps, which are (I) standardisation with an additional intensity normalization, (II) permutation testing, and (III) cluster-enhancement. Although permutation testing and cluster enhancement are already well-established in functional magnetic resonance imaging, to the best of our knowledge these strategies have so far not been applied in cardiovascular molecular imaging.
Results:
We tested our method using FRI images of murine aortic vessels in order to find recurring patterns in atherosclerotic plaques across multiple subjects. We demonstrate that our pixel-wise and cluster-enhanced testing approach is feasible and useful to analyse tracer distributions in FRI data sets of aortic vessels.
Conclusions:
We expect our method to be a useful tool within the field of molecular imaging of atherosclerotic plaques since cluster-enhanced permutation testing is a powerful approach for finding significant differences of tracer distributions in inflamed atherosclerotic vessels.
More Related Videos
09:36A Magnetic Resonance Imaging-based Computational Protocol for Analysis of Plaque Morphology and Hemodynamics in Patients with Carotid Artery Stenosis
Published on: August 12, 2025
13:07Optical Coherence Tomography Based Biomechanical Fluid-Structure Interaction Analysis of Coronary Atherosclerosis Progression
Published on: January 15, 2022