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3D Visualization, Skeletonization and Branching Analysis of Blood Vessels in Angiogenesis

Angiogenesis is the process of new blood vessels growing from existing vasculature. Visualizing them as a three-dimensional (3D) model is a challenging, yet relevant, task as it would be of great help to researchers, pathologists, and medical doctors. A branching analysis on the 3D model would furth...

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Autores principales: Ramakrishnan, Vignesh, Schönmehl, Rebecca, Artinger, Annalena, Winter, Lina, Böck, Hendrik, Schreml, Stephan, Gürtler, Florian, Daza, Jimmy, Schmitt, Volker H., Mamilos, Andreas, Arbelaez, Pablo, Teufel, Andreas, Niedermair, Tanja, Topolcan, Ondrej, Karlíková, Marie, Sossalla, Samuel, Wiedenroth, Christoph B., Rupp, Markus, Brochhausen, Christoph
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10178731/
https://www.ncbi.nlm.nih.gov/pubmed/37175421
http://dx.doi.org/10.3390/ijms24097714
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author Ramakrishnan, Vignesh
Schönmehl, Rebecca
Artinger, Annalena
Winter, Lina
Böck, Hendrik
Schreml, Stephan
Gürtler, Florian
Daza, Jimmy
Schmitt, Volker H.
Mamilos, Andreas
Arbelaez, Pablo
Teufel, Andreas
Niedermair, Tanja
Topolcan, Ondrej
Karlíková, Marie
Sossalla, Samuel
Wiedenroth, Christoph B.
Rupp, Markus
Brochhausen, Christoph
author_facet Ramakrishnan, Vignesh
Schönmehl, Rebecca
Artinger, Annalena
Winter, Lina
Böck, Hendrik
Schreml, Stephan
Gürtler, Florian
Daza, Jimmy
Schmitt, Volker H.
Mamilos, Andreas
Arbelaez, Pablo
Teufel, Andreas
Niedermair, Tanja
Topolcan, Ondrej
Karlíková, Marie
Sossalla, Samuel
Wiedenroth, Christoph B.
Rupp, Markus
Brochhausen, Christoph
author_sort Ramakrishnan, Vignesh
collection PubMed
description Angiogenesis is the process of new blood vessels growing from existing vasculature. Visualizing them as a three-dimensional (3D) model is a challenging, yet relevant, task as it would be of great help to researchers, pathologists, and medical doctors. A branching analysis on the 3D model would further facilitate research and diagnostic purposes. In this paper, a pipeline of vision algorithms is elaborated to visualize and analyze blood vessels in 3D from formalin-fixed paraffin-embedded (FFPE) granulation tissue sections with two different staining methods. First, a U-net neural network is used to segment blood vessels from the tissues. Second, image registration is used to align the consecutive images. Coarse registration using an image-intensity optimization technique, followed by finetuning using a neural network based on Spatial Transformers, results in an excellent alignment of images. Lastly, the corresponding segmented masks depicting the blood vessels are aligned and interpolated using the results of the image registration, resulting in a visualized 3D model. Additionally, a skeletonization algorithm is used to analyze the branching characteristics of the 3D vascular model. In summary, computer vision and deep learning is used to reconstruct, visualize and analyze a 3D vascular model from a set of parallel tissue samples. Our technique opens innovative perspectives in the pathophysiological understanding of vascular morphogenesis under different pathophysiological conditions and its potential diagnostic role.
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spelling pubmed-101787312023-05-13 3D Visualization, Skeletonization and Branching Analysis of Blood Vessels in Angiogenesis Ramakrishnan, Vignesh Schönmehl, Rebecca Artinger, Annalena Winter, Lina Böck, Hendrik Schreml, Stephan Gürtler, Florian Daza, Jimmy Schmitt, Volker H. Mamilos, Andreas Arbelaez, Pablo Teufel, Andreas Niedermair, Tanja Topolcan, Ondrej Karlíková, Marie Sossalla, Samuel Wiedenroth, Christoph B. Rupp, Markus Brochhausen, Christoph Int J Mol Sci Article Angiogenesis is the process of new blood vessels growing from existing vasculature. Visualizing them as a three-dimensional (3D) model is a challenging, yet relevant, task as it would be of great help to researchers, pathologists, and medical doctors. A branching analysis on the 3D model would further facilitate research and diagnostic purposes. In this paper, a pipeline of vision algorithms is elaborated to visualize and analyze blood vessels in 3D from formalin-fixed paraffin-embedded (FFPE) granulation tissue sections with two different staining methods. First, a U-net neural network is used to segment blood vessels from the tissues. Second, image registration is used to align the consecutive images. Coarse registration using an image-intensity optimization technique, followed by finetuning using a neural network based on Spatial Transformers, results in an excellent alignment of images. Lastly, the corresponding segmented masks depicting the blood vessels are aligned and interpolated using the results of the image registration, resulting in a visualized 3D model. Additionally, a skeletonization algorithm is used to analyze the branching characteristics of the 3D vascular model. In summary, computer vision and deep learning is used to reconstruct, visualize and analyze a 3D vascular model from a set of parallel tissue samples. Our technique opens innovative perspectives in the pathophysiological understanding of vascular morphogenesis under different pathophysiological conditions and its potential diagnostic role. MDPI 2023-04-23 /pmc/articles/PMC10178731/ /pubmed/37175421 http://dx.doi.org/10.3390/ijms24097714 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Ramakrishnan, Vignesh
Schönmehl, Rebecca
Artinger, Annalena
Winter, Lina
Böck, Hendrik
Schreml, Stephan
Gürtler, Florian
Daza, Jimmy
Schmitt, Volker H.
Mamilos, Andreas
Arbelaez, Pablo
Teufel, Andreas
Niedermair, Tanja
Topolcan, Ondrej
Karlíková, Marie
Sossalla, Samuel
Wiedenroth, Christoph B.
Rupp, Markus
Brochhausen, Christoph
3D Visualization, Skeletonization and Branching Analysis of Blood Vessels in Angiogenesis
title 3D Visualization, Skeletonization and Branching Analysis of Blood Vessels in Angiogenesis
title_full 3D Visualization, Skeletonization and Branching Analysis of Blood Vessels in Angiogenesis
title_fullStr 3D Visualization, Skeletonization and Branching Analysis of Blood Vessels in Angiogenesis
title_full_unstemmed 3D Visualization, Skeletonization and Branching Analysis of Blood Vessels in Angiogenesis
title_short 3D Visualization, Skeletonization and Branching Analysis of Blood Vessels in Angiogenesis
title_sort 3d visualization, skeletonization and branching analysis of blood vessels in angiogenesis
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10178731/
https://www.ncbi.nlm.nih.gov/pubmed/37175421
http://dx.doi.org/10.3390/ijms24097714
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