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January 22, 2026Bioengineering0 citationsOpen Access

Quantifying In Vivo Arterial Deformation from CT and MRI: A Systematic Review of Segmentation, Motion Tracking, and Kinematic Metrics

RVRodrigo ValenteBHBernardo HenriquesAMAndré Mourato

Key Result

Arterial strain decreases by approximately 20% per decade with age and is affected by disease, with stiffness correlating to geometric remodelling.

Key Points

  • This review aims to evaluate methods for quantifying arterial deformation and motion using CT and MRI imaging.
  • Conducted a systematic review following PRISMA guidelines
  • Searched multiple databases for relevant studies on arterial motion and deformation
  • Included studies focusing on arterial segmentation and motion tracking metrics
  • Performed qualitative analysis of included studies
  • Identified 35 studies focusing on arterial deformation and motion tracking
  • Common segmentation techniques included active contours and threshold methods
  • Motion tracking was primarily done using voxel registration or surface methods
  • Findings demonstrated that arterial strain decreases with age and disease presence
  • Stiffness correlates with geometric remodelling, showing spatial heterogeneity in deformation

Structured PICO

P
Population
35 studies (mostly small, single-centre observational cohorts) of in vivo, patient-specific CT or MRI reporting motion or deformation of large human arteries.
I
Intervention
Methods for quantifying three-dimensional, time-resolved (3D+t) deformation and motion of human arteries from CT and MRI
O
Outcome
Methods of segmentation, motion tracking, and kinematic metricssurrogate

This systematic review of 35 studies demonstrates that while CT and MRI can quantify arterial deformation and show strain decreases with age and disease, the heterogeneity of current methods prevents meaningful cross-method comparisons.

Limitations

  • insufficient data prevents meaningful comparison across methods
  • most included studies were small, single-centre observational cohorts

Abstract

This article presents a systematic review on methods for quantifying three-dimensional, time-resolved (3D+t) deformation and motion of human arteries from Computed Tomography (CT) and Magnetic Resonance Imaging (MRI). Following Preferred Reporting Items for Systematic Reviews and Meta-Analyses (PRISMA) guidelines, we searched Scopus, Web of Science, IEEE Xplore, Google Scholar, and PubMed on 19 December 2025 for in vivo, patient-specific CT or MRI studies reporting motion or deformation of large human arteries. We included studies that quantified arterial deformation or motion tracking and excluded non-vascular tissues, in vitro or purely computational work. Thirty-five studies were included in the qualitative synthesis; most were small, single-centre observational cohorts. Articles were analysed qualitatively, and results were synthesised narratively. Across the 35 studies, the most common segmentation approaches are active contours and threshold, while temporal motion is tracked using either voxel registration or surface methods. These kinematic data are used to compute metrics such as circumferential and longitudinal strain, distensibility, and curvature. Several studies also employ inverse methods to estimate wall stiffness. The findings consistently show that arterial strain decreases with age (on the order of 20% per decade in some cases) and in the presence of disease, that stiffness correlates with geometric remodelling, and that deformation is spatially heterogeneous. However, insufficient data prevents meaningful comparison across methods.

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Cite This Study

Valente et al. (2026) studied this question. Arterial strain decreases by approximately 20% per decade with age and is affected by disease, with stiffness correlating to geometric remodelling.

synapsesocial.com/papers/6971bdcf642b1836717e27b3https://doi.org/10.3390/bioengineering13010121
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