Computational imaging to compensate for soft-tissue deformations in image-guided breast conserving surgery Journal Article


Authors: Richey, W. L.; Heiselman, J. S.; Ringel, M. J.; Meszoely, I. M.; Miga, M. I.
Article Title: Computational imaging to compensate for soft-tissue deformations in image-guided breast conserving surgery
Abstract: Objective: During breast conserving surgery (BCS), magnetic resonance (MR) images aligned to accurately display intraoperative lesion locations can offer improved understanding of tumor extent and position relative to breast anatomy. Unfortunately, even under consistent supine conditions, soft tissue deformation compromises image-to-physical alignment and results in positional errors. Methods: A finite element inverse modeling technique has been developed to nonrigidly register preoperative supine MR imaging data to the surgical scene for improved localization accuracy during surgery. Registration is driven using sparse data compatible with acquisition during BCS, including corresponding surface fiducials, sparse chest wall contours, and the intra-fiducial skin surface. Deformation predictions were evaluated at surface fiducial locations and subsurface tissue features that were expertly identified and tracked. Among n = 7 different human subjects, an average of 22 +/- 3 distributed subsurface targets were analyzed in each breast volume. Results: The average target registration error (TRE) decreased significantly when comparing rigid registration to this nonrigid approach (10.4 +/- 2.3 mm vs 6.3 +/- 1.4 mm TRE, respectively). When including a single subsurface feature as additional input data, the TRE significantly improved further (4.2 +/- 1.0 mm IRE), and in a region of interest within 15 mm of a mock biopsy clip TRE was 3.9 +/- 0.9 mm. Conclusion: These results demonstrate accurate breast deformation estimates based on sparse-data-driven model predictions. Significance: The data suggest that a computation& imaging approach can account for image-to-surgery shape changes to enhance surgical guidance during BCS.
Keywords: registration; compression; mri; deformation; lumpectomy; breast conserving surgery; framework; system; position; image-guided surgery; feasibility; surface; menstrual-cycle; cancer; biomechanical models; intraoperative ultrasound guidance
Journal Title: IEEE Transactions on Biomedical Engineering
Volume: 69
Issue: 12
ISSN: 0018-9294
Publisher: IEEE  
Date Published: 2022-12-01
Start Page: 3760
End Page: 3771
Language: English
ACCESSION: WOS:000898766600019
DOI: 10.1109/tbme.2022.3177044
PROVIDER: wos
PMCID: PMC9811993
PUBMED: 35604993
Notes: Article -- Source: Wos
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