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Image-based flow simulation of platelet aggregates under different shear rates

Hemodynamics is crucial for the activation and aggregation of platelets in response to flow-induced shear. In this paper, a novel image-based computational model simulating blood flow through and around platelet aggregates is presented. The microstructure of aggregates was captured by two different...

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Autores principales: Hao, Yue, Závodszky, Gábor, Tersteeg, Claudia, Barzegari, Mojtaba, Hoekstra, Alfons G.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10358939/
https://www.ncbi.nlm.nih.gov/pubmed/37428797
http://dx.doi.org/10.1371/journal.pcbi.1010965
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author Hao, Yue
Závodszky, Gábor
Tersteeg, Claudia
Barzegari, Mojtaba
Hoekstra, Alfons G.
author_facet Hao, Yue
Závodszky, Gábor
Tersteeg, Claudia
Barzegari, Mojtaba
Hoekstra, Alfons G.
author_sort Hao, Yue
collection PubMed
description Hemodynamics is crucial for the activation and aggregation of platelets in response to flow-induced shear. In this paper, a novel image-based computational model simulating blood flow through and around platelet aggregates is presented. The microstructure of aggregates was captured by two different modalities of microscopy images of in vitro whole blood perfusion experiments in microfluidic chambers coated with collagen. One set of images captured the geometry of the aggregate outline, while the other employed platelet labelling to infer the internal density. The platelet aggregates were modelled as a porous medium, the permeability of which was calculated with the Kozeny-Carman equation. The computational model was subsequently applied to study hemodynamics inside and around the platelet aggregates. The blood flow velocity, shear stress and kinetic force exerted on the aggregates were investigated and compared under 800 s(−1), 1600 s(−1) and 4000 s(−1) wall shear rates. The advection-diffusion balance of agonist transport inside the platelet aggregates was also evaluated by local Péclet number. The findings show that the transport of agonists is not only affected by the shear rate but also significantly influenced by the microstructure of the aggregates. Moreover, large kinetic forces were found at the transition zone from shell to core of the aggregates, which could contribute to identifying the boundary between the shell and the core. The shear rate and the rate of elongation flow were investigated as well. The results imply that the emerging shapes of aggregates are highly correlated to the shear rate and the rate of elongation. The framework provides a way to incorporate the internal microstructure of the aggregates into the computational model and yields a better understanding of the hemodynamics and physiology of platelet aggregates, hence laying the foundation for predicting aggregation and deformation under different flow conditions.
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spelling pubmed-103589392023-07-21 Image-based flow simulation of platelet aggregates under different shear rates Hao, Yue Závodszky, Gábor Tersteeg, Claudia Barzegari, Mojtaba Hoekstra, Alfons G. PLoS Comput Biol Research Article Hemodynamics is crucial for the activation and aggregation of platelets in response to flow-induced shear. In this paper, a novel image-based computational model simulating blood flow through and around platelet aggregates is presented. The microstructure of aggregates was captured by two different modalities of microscopy images of in vitro whole blood perfusion experiments in microfluidic chambers coated with collagen. One set of images captured the geometry of the aggregate outline, while the other employed platelet labelling to infer the internal density. The platelet aggregates were modelled as a porous medium, the permeability of which was calculated with the Kozeny-Carman equation. The computational model was subsequently applied to study hemodynamics inside and around the platelet aggregates. The blood flow velocity, shear stress and kinetic force exerted on the aggregates were investigated and compared under 800 s(−1), 1600 s(−1) and 4000 s(−1) wall shear rates. The advection-diffusion balance of agonist transport inside the platelet aggregates was also evaluated by local Péclet number. The findings show that the transport of agonists is not only affected by the shear rate but also significantly influenced by the microstructure of the aggregates. Moreover, large kinetic forces were found at the transition zone from shell to core of the aggregates, which could contribute to identifying the boundary between the shell and the core. The shear rate and the rate of elongation flow were investigated as well. The results imply that the emerging shapes of aggregates are highly correlated to the shear rate and the rate of elongation. The framework provides a way to incorporate the internal microstructure of the aggregates into the computational model and yields a better understanding of the hemodynamics and physiology of platelet aggregates, hence laying the foundation for predicting aggregation and deformation under different flow conditions. Public Library of Science 2023-07-10 /pmc/articles/PMC10358939/ /pubmed/37428797 http://dx.doi.org/10.1371/journal.pcbi.1010965 Text en © 2023 Hao et al https://creativecommons.org/licenses/by/4.0/This is an open access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Hao, Yue
Závodszky, Gábor
Tersteeg, Claudia
Barzegari, Mojtaba
Hoekstra, Alfons G.
Image-based flow simulation of platelet aggregates under different shear rates
title Image-based flow simulation of platelet aggregates under different shear rates
title_full Image-based flow simulation of platelet aggregates under different shear rates
title_fullStr Image-based flow simulation of platelet aggregates under different shear rates
title_full_unstemmed Image-based flow simulation of platelet aggregates under different shear rates
title_short Image-based flow simulation of platelet aggregates under different shear rates
title_sort image-based flow simulation of platelet aggregates under different shear rates
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10358939/
https://www.ncbi.nlm.nih.gov/pubmed/37428797
http://dx.doi.org/10.1371/journal.pcbi.1010965
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