Simultaneous polymerization and adhesion under hypoxia in sickle cell disease

Polymerization and adhesion, dynamic processes that are hallmarks of sickle cell disease (SCD), have thus far been studied in vitro only separately. Here, we present quantitative results of the simultaneous and synergistic effects of adhesion and polymerization of deoxygenated sickle hemoglobin (HbS...

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Main Authors: Papageorgiou, Dimitrios P., Abidi, Sabia Z., Chang, Hung-Yu, Li, Xuejin, Kato, Gregory J., Karniadakis, George E., Suresh, Subra, Dao, Ming
Other Authors: School of Materials Science & Engineering
Format: Article
Language:English
Published: 2019
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Online Access:https://hdl.handle.net/10356/83300
http://hdl.handle.net/10220/50096
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-833002023-07-14T15:46:29Z Simultaneous polymerization and adhesion under hypoxia in sickle cell disease Papageorgiou, Dimitrios P. Abidi, Sabia Z. Chang, Hung-Yu Li, Xuejin Kato, Gregory J. Karniadakis, George E. Suresh, Subra Dao, Ming School of Materials Science & Engineering Dissipative Particle Dynamics Sickle Cell Adhesion Dynamics Engineering::Materials Polymerization and adhesion, dynamic processes that are hallmarks of sickle cell disease (SCD), have thus far been studied in vitro only separately. Here, we present quantitative results of the simultaneous and synergistic effects of adhesion and polymerization of deoxygenated sickle hemoglobin (HbS) in the human red blood cell (RBC) on the mechanisms underlying vasoocclusive pain crisis. For this purpose, we employ a specially developed hypoxic microfluidic platform, which is capable of inducing sickling and unsickling of RBCs in vitro, to test blood samples from eight patients with SCD. We supplemented these experimental results with detailed molecular-level computational simulations of cytoadherence and biorheology using dissipative particle dynamics. By recourse to image analysis techniques, we characterize sickle RBC maturation stages in the following order of the degree of adhesion susceptibility under hypoxia: sickle reticulocytes in circulation (SRs) → sickle mature erythrocytes (SMEs) → irreversibly sickled cells (ISCs). We show that (i) hypoxia significantly enhances sickle RBC adherence; (ii) HbS polymerization enhances sickle cell adherence in SRs and SMEs, but not in ISCs; (iii) SRs exhibit unique adhesion dynamics where HbS fiber projections growing outward from the cell surface create multiple sites of adhesion; and (iv) polymerization stimulates adhesion and vice versa, thereby establishing the bidirectional coupling between the two processes. These findings offer insights into possible mechanistic pathways leading to vasoocclusion crisis. They also elucidate the processes underlying the onset of occlusion that may involve circulating reticulocytes, which are more abundant in hemolytic anemias due to robust compensatory erythropoiesis. Published version 2019-10-08T03:38:09Z 2019-12-06T15:19:33Z 2019-10-08T03:38:09Z 2019-12-06T15:19:33Z 2018 Journal Article Papageorgiou, D. P., Abidi, S. Z., Chang, H.-Y., Li, X., Kato, G. J., Karniadakis, G. E., . . . Dao, M. (2018). Simultaneous polymerization and adhesion under hypoxia in sickle cell disease. Proceedings of the National Academy of Sciences, 115(38), 9473-9478. doi:10.1073/pnas.1807405115 0027-8424 https://hdl.handle.net/10356/83300 http://hdl.handle.net/10220/50096 10.1073/pnas.1807405115 en Proceedings of the National Academy of Sciences © 2018 the Author(s). Published by PNAS. This open access article is distributed under Creative Commons Attribution-NonCommercial-NoDerivatives License 4.0 (CC BY-NC-ND). 6 p. application/pdf
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic Dissipative Particle Dynamics
Sickle Cell Adhesion Dynamics
Engineering::Materials
spellingShingle Dissipative Particle Dynamics
Sickle Cell Adhesion Dynamics
Engineering::Materials
Papageorgiou, Dimitrios P.
Abidi, Sabia Z.
Chang, Hung-Yu
Li, Xuejin
Kato, Gregory J.
Karniadakis, George E.
Suresh, Subra
Dao, Ming
Simultaneous polymerization and adhesion under hypoxia in sickle cell disease
description Polymerization and adhesion, dynamic processes that are hallmarks of sickle cell disease (SCD), have thus far been studied in vitro only separately. Here, we present quantitative results of the simultaneous and synergistic effects of adhesion and polymerization of deoxygenated sickle hemoglobin (HbS) in the human red blood cell (RBC) on the mechanisms underlying vasoocclusive pain crisis. For this purpose, we employ a specially developed hypoxic microfluidic platform, which is capable of inducing sickling and unsickling of RBCs in vitro, to test blood samples from eight patients with SCD. We supplemented these experimental results with detailed molecular-level computational simulations of cytoadherence and biorheology using dissipative particle dynamics. By recourse to image analysis techniques, we characterize sickle RBC maturation stages in the following order of the degree of adhesion susceptibility under hypoxia: sickle reticulocytes in circulation (SRs) → sickle mature erythrocytes (SMEs) → irreversibly sickled cells (ISCs). We show that (i) hypoxia significantly enhances sickle RBC adherence; (ii) HbS polymerization enhances sickle cell adherence in SRs and SMEs, but not in ISCs; (iii) SRs exhibit unique adhesion dynamics where HbS fiber projections growing outward from the cell surface create multiple sites of adhesion; and (iv) polymerization stimulates adhesion and vice versa, thereby establishing the bidirectional coupling between the two processes. These findings offer insights into possible mechanistic pathways leading to vasoocclusion crisis. They also elucidate the processes underlying the onset of occlusion that may involve circulating reticulocytes, which are more abundant in hemolytic anemias due to robust compensatory erythropoiesis.
author2 School of Materials Science & Engineering
author_facet School of Materials Science & Engineering
Papageorgiou, Dimitrios P.
Abidi, Sabia Z.
Chang, Hung-Yu
Li, Xuejin
Kato, Gregory J.
Karniadakis, George E.
Suresh, Subra
Dao, Ming
format Article
author Papageorgiou, Dimitrios P.
Abidi, Sabia Z.
Chang, Hung-Yu
Li, Xuejin
Kato, Gregory J.
Karniadakis, George E.
Suresh, Subra
Dao, Ming
author_sort Papageorgiou, Dimitrios P.
title Simultaneous polymerization and adhesion under hypoxia in sickle cell disease
title_short Simultaneous polymerization and adhesion under hypoxia in sickle cell disease
title_full Simultaneous polymerization and adhesion under hypoxia in sickle cell disease
title_fullStr Simultaneous polymerization and adhesion under hypoxia in sickle cell disease
title_full_unstemmed Simultaneous polymerization and adhesion under hypoxia in sickle cell disease
title_sort simultaneous polymerization and adhesion under hypoxia in sickle cell disease
publishDate 2019
url https://hdl.handle.net/10356/83300
http://hdl.handle.net/10220/50096
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