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Simulation and Analysis of Tethering Behavior of Neutrophils with Pseudopods

P-selectin and P-selectin glycoprotein ligand-1 (PSGL-1) play important roles in mediating the inflammatory cascade. Selectin kinetics, together with neutrophil hydrodynamics, regulate the fundamental adhesion cascade of cell tethering and rolling on the endothelium. The current study uses the Multi...

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Autores principales: Rocheleau, Anne D., Sumagin, Ronen, Sarelius, Ingrid H., King, Michael R.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4474963/
https://www.ncbi.nlm.nih.gov/pubmed/26091091
http://dx.doi.org/10.1371/journal.pone.0128378
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author Rocheleau, Anne D.
Sumagin, Ronen
Sarelius, Ingrid H.
King, Michael R.
author_facet Rocheleau, Anne D.
Sumagin, Ronen
Sarelius, Ingrid H.
King, Michael R.
author_sort Rocheleau, Anne D.
collection PubMed
description P-selectin and P-selectin glycoprotein ligand-1 (PSGL-1) play important roles in mediating the inflammatory cascade. Selectin kinetics, together with neutrophil hydrodynamics, regulate the fundamental adhesion cascade of cell tethering and rolling on the endothelium. The current study uses the Multiscale Adhesive Dynamics computational model to simulate, for the first time, the tethering and rolling behavior of pseudopod-containing neutrophils as mediated by P-selectin/PSGL-1 bonds. This paper looks at the effect of including P-selectin/PSGL-1 adhesion kinetics. The parameters examined included the shear rate, adhesion on-rate, initial neutrophil position, and receptor number sensitivity. The outcomes analyzed included types of adhesive behavior observed, tether rolling distance and time, number of bonds formed during an adhesive event, contact area, and contact time. In contrast to the hydrodynamic model, P-selectin/PSGL-1 binding slows the neutrophil’s translation in the direction of flow and causes the neutrophil to swing around perpendicular to flow. Several behaviors were observed during the simulations, including tethering without firm adhesion, tethering with downstream firm adhesion, and firm adhesion upon first contact with the endothelium. These behaviors were qualitatively consistent with in vivo data of murine neutrophils with pseudopods. In the simulations, increasing shear rate, receptor count, and bond formation rate increased the incidence of firm adhesion upon first contact with the endothelium. Tethering was conserved across a range of physiological shear rates and was resistant to fluctuations in the number of surface PSGL-1 molecules. In simulations where bonding occurred, interaction with the side of the pseudopod, rather than the tip, afforded more surface area and greater contact time with the endothelial wall.
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spelling pubmed-44749632015-06-30 Simulation and Analysis of Tethering Behavior of Neutrophils with Pseudopods Rocheleau, Anne D. Sumagin, Ronen Sarelius, Ingrid H. King, Michael R. PLoS One Research Article P-selectin and P-selectin glycoprotein ligand-1 (PSGL-1) play important roles in mediating the inflammatory cascade. Selectin kinetics, together with neutrophil hydrodynamics, regulate the fundamental adhesion cascade of cell tethering and rolling on the endothelium. The current study uses the Multiscale Adhesive Dynamics computational model to simulate, for the first time, the tethering and rolling behavior of pseudopod-containing neutrophils as mediated by P-selectin/PSGL-1 bonds. This paper looks at the effect of including P-selectin/PSGL-1 adhesion kinetics. The parameters examined included the shear rate, adhesion on-rate, initial neutrophil position, and receptor number sensitivity. The outcomes analyzed included types of adhesive behavior observed, tether rolling distance and time, number of bonds formed during an adhesive event, contact area, and contact time. In contrast to the hydrodynamic model, P-selectin/PSGL-1 binding slows the neutrophil’s translation in the direction of flow and causes the neutrophil to swing around perpendicular to flow. Several behaviors were observed during the simulations, including tethering without firm adhesion, tethering with downstream firm adhesion, and firm adhesion upon first contact with the endothelium. These behaviors were qualitatively consistent with in vivo data of murine neutrophils with pseudopods. In the simulations, increasing shear rate, receptor count, and bond formation rate increased the incidence of firm adhesion upon first contact with the endothelium. Tethering was conserved across a range of physiological shear rates and was resistant to fluctuations in the number of surface PSGL-1 molecules. In simulations where bonding occurred, interaction with the side of the pseudopod, rather than the tip, afforded more surface area and greater contact time with the endothelial wall. Public Library of Science 2015-06-19 /pmc/articles/PMC4474963/ /pubmed/26091091 http://dx.doi.org/10.1371/journal.pone.0128378 Text en © 2015 Rocheleau et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Rocheleau, Anne D.
Sumagin, Ronen
Sarelius, Ingrid H.
King, Michael R.
Simulation and Analysis of Tethering Behavior of Neutrophils with Pseudopods
title Simulation and Analysis of Tethering Behavior of Neutrophils with Pseudopods
title_full Simulation and Analysis of Tethering Behavior of Neutrophils with Pseudopods
title_fullStr Simulation and Analysis of Tethering Behavior of Neutrophils with Pseudopods
title_full_unstemmed Simulation and Analysis of Tethering Behavior of Neutrophils with Pseudopods
title_short Simulation and Analysis of Tethering Behavior of Neutrophils with Pseudopods
title_sort simulation and analysis of tethering behavior of neutrophils with pseudopods
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4474963/
https://www.ncbi.nlm.nih.gov/pubmed/26091091
http://dx.doi.org/10.1371/journal.pone.0128378
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