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3D volume reconstruction from serial breast specimen radiographs for mapping between histology and 3D whole specimen imaging

PURPOSE: In breast imaging, radiological in vivo images, such as x‐ray mammography and magnetic resonance imaging (MRI), are used for tumor detection, diagnosis, and size determination. After excision, the specimen is typically sliced into slabs and a small subset is sampled. Histopathological imagi...

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Autores principales: Mertzanidou, Thomy, Hipwell, John H., Reis, Sara, Hawkes, David J., Ehteshami Bejnordi, Babak, Dalmis, Mehmet, Vreemann, Suzan, Platel, Bram, van der Laak, Jeroen, Karssemeijer, Nico, Hermsen, Meyke, Bult, Peter, Mann, Ritse
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6849622/
https://www.ncbi.nlm.nih.gov/pubmed/28064435
http://dx.doi.org/10.1002/mp.12077
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author Mertzanidou, Thomy
Hipwell, John H.
Reis, Sara
Hawkes, David J.
Ehteshami Bejnordi, Babak
Dalmis, Mehmet
Vreemann, Suzan
Platel, Bram
van der Laak, Jeroen
Karssemeijer, Nico
Hermsen, Meyke
Bult, Peter
Mann, Ritse
author_facet Mertzanidou, Thomy
Hipwell, John H.
Reis, Sara
Hawkes, David J.
Ehteshami Bejnordi, Babak
Dalmis, Mehmet
Vreemann, Suzan
Platel, Bram
van der Laak, Jeroen
Karssemeijer, Nico
Hermsen, Meyke
Bult, Peter
Mann, Ritse
author_sort Mertzanidou, Thomy
collection PubMed
description PURPOSE: In breast imaging, radiological in vivo images, such as x‐ray mammography and magnetic resonance imaging (MRI), are used for tumor detection, diagnosis, and size determination. After excision, the specimen is typically sliced into slabs and a small subset is sampled. Histopathological imaging of the stained samples is used as the gold standard for characterization of the tumor microenvironment. A 3D volume reconstruction of the whole specimen from the 2D slabs could facilitate bridging the gap between histology and in vivo radiological imaging. This task is challenging, however, due to the large deformation that the breast tissue undergoes after surgery and the significant undersampling of the specimen obtained in histology. In this work, we present a method to reconstruct a coherent 3D volume from 2D digital radiographs of the specimen slabs. METHODS: To reconstruct a 3D breast specimen volume, we propose the use of multiple target neighboring slices, when deforming each 2D slab radiograph in the volume, rather than performing pairwise registrations. The algorithm combines neighborhood slice information with free‐form deformations, which enables a flexible, nonlinear deformation to be computed subject to the constraint that a coherent 3D volume is obtained. The neighborhood information provides adequate constraints, without the need for any additional regularization terms. RESULTS: The volume reconstruction algorithm is validated on clinical mastectomy samples using a quantitative assessment of the volume reconstruction smoothness and a comparison with a whole specimen 3D image acquired for validation before slicing. Additionally, a target registration error of 5 mm (comparable to the specimen slab thickness of 4 mm) was obtained for five cases. The error was computed using manual annotations from four observers as gold standard, with interobserver variability of 3.4 mm. Finally, we illustrate how the reconstructed volumes can be used to map histology images to a 3D specimen image of the whole sample (either MRI or CT). CONCLUSIONS: Qualitative and quantitative assessment has illustrated the benefit of using our proposed methodology to reconstruct a coherent specimen volume from serial slab radiographs. To our knowledge, this is the first method that has been applied to clinical breast cases, with the goal of reconstructing a whole specimen sample. The algorithm can be used as part of the pipeline of mapping histology images to ex vivo and ultimately in vivo radiological images of the breast.
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spelling pubmed-68496222019-11-15 3D volume reconstruction from serial breast specimen radiographs for mapping between histology and 3D whole specimen imaging Mertzanidou, Thomy Hipwell, John H. Reis, Sara Hawkes, David J. Ehteshami Bejnordi, Babak Dalmis, Mehmet Vreemann, Suzan Platel, Bram van der Laak, Jeroen Karssemeijer, Nico Hermsen, Meyke Bult, Peter Mann, Ritse Med Phys QUANTITATIVE IMAGING AND IMAGE PROCESSING PURPOSE: In breast imaging, radiological in vivo images, such as x‐ray mammography and magnetic resonance imaging (MRI), are used for tumor detection, diagnosis, and size determination. After excision, the specimen is typically sliced into slabs and a small subset is sampled. Histopathological imaging of the stained samples is used as the gold standard for characterization of the tumor microenvironment. A 3D volume reconstruction of the whole specimen from the 2D slabs could facilitate bridging the gap between histology and in vivo radiological imaging. This task is challenging, however, due to the large deformation that the breast tissue undergoes after surgery and the significant undersampling of the specimen obtained in histology. In this work, we present a method to reconstruct a coherent 3D volume from 2D digital radiographs of the specimen slabs. METHODS: To reconstruct a 3D breast specimen volume, we propose the use of multiple target neighboring slices, when deforming each 2D slab radiograph in the volume, rather than performing pairwise registrations. The algorithm combines neighborhood slice information with free‐form deformations, which enables a flexible, nonlinear deformation to be computed subject to the constraint that a coherent 3D volume is obtained. The neighborhood information provides adequate constraints, without the need for any additional regularization terms. RESULTS: The volume reconstruction algorithm is validated on clinical mastectomy samples using a quantitative assessment of the volume reconstruction smoothness and a comparison with a whole specimen 3D image acquired for validation before slicing. Additionally, a target registration error of 5 mm (comparable to the specimen slab thickness of 4 mm) was obtained for five cases. The error was computed using manual annotations from four observers as gold standard, with interobserver variability of 3.4 mm. Finally, we illustrate how the reconstructed volumes can be used to map histology images to a 3D specimen image of the whole sample (either MRI or CT). CONCLUSIONS: Qualitative and quantitative assessment has illustrated the benefit of using our proposed methodology to reconstruct a coherent specimen volume from serial slab radiographs. To our knowledge, this is the first method that has been applied to clinical breast cases, with the goal of reconstructing a whole specimen sample. The algorithm can be used as part of the pipeline of mapping histology images to ex vivo and ultimately in vivo radiological images of the breast. John Wiley and Sons Inc. 2017-03-17 2017-03 /pmc/articles/PMC6849622/ /pubmed/28064435 http://dx.doi.org/10.1002/mp.12077 Text en © 2017 The Authors. Medical Physics published by Wiley periodicals, Inc. on behalf of American Association of Physicists in Medicine. This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle QUANTITATIVE IMAGING AND IMAGE PROCESSING
Mertzanidou, Thomy
Hipwell, John H.
Reis, Sara
Hawkes, David J.
Ehteshami Bejnordi, Babak
Dalmis, Mehmet
Vreemann, Suzan
Platel, Bram
van der Laak, Jeroen
Karssemeijer, Nico
Hermsen, Meyke
Bult, Peter
Mann, Ritse
3D volume reconstruction from serial breast specimen radiographs for mapping between histology and 3D whole specimen imaging
title 3D volume reconstruction from serial breast specimen radiographs for mapping between histology and 3D whole specimen imaging
title_full 3D volume reconstruction from serial breast specimen radiographs for mapping between histology and 3D whole specimen imaging
title_fullStr 3D volume reconstruction from serial breast specimen radiographs for mapping between histology and 3D whole specimen imaging
title_full_unstemmed 3D volume reconstruction from serial breast specimen radiographs for mapping between histology and 3D whole specimen imaging
title_short 3D volume reconstruction from serial breast specimen radiographs for mapping between histology and 3D whole specimen imaging
title_sort 3d volume reconstruction from serial breast specimen radiographs for mapping between histology and 3d whole specimen imaging
topic QUANTITATIVE IMAGING AND IMAGE PROCESSING
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6849622/
https://www.ncbi.nlm.nih.gov/pubmed/28064435
http://dx.doi.org/10.1002/mp.12077
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