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.

BMC Medical Imaging
|May 28, 2017
PubMed

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.
Abstract

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