Effect of red blood cell shape changes on haemoglobin interactions and dynamics: a neutron scattering study

By using a combination of experimental neutron scattering techniques, it is possible to obtain a statistical perspective on red blood cell (RBC) shape in suspensions, and the inter-relationship with protein interactions and dynamics inside the confinement of the cell membrane. In this study, we exam...

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Main Authors: Keyun Shou, Mona Sarter, Nicolas R. de Souza, Liliana de Campo, Andrew E. Whitten, Philip W. Kuchel, Christopher J. Garvey, Andreas M. Stadler
Format: Article
Language:English
Published: The Royal Society 2020-10-01
Series:Royal Society Open Science
Subjects:
Online Access:https://royalsocietypublishing.org/doi/pdf/10.1098/rsos.201507
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spelling doaj-9aee2be95bf849e4a8f5161960fd4c222020-11-25T03:57:37ZengThe Royal SocietyRoyal Society Open Science2054-57032020-10-0171010.1098/rsos.201507201507Effect of red blood cell shape changes on haemoglobin interactions and dynamics: a neutron scattering studyKeyun ShouMona SarterNicolas R. de SouzaLiliana de CampoAndrew E. WhittenPhilip W. KuchelChristopher J. GarveyAndreas M. StadlerBy using a combination of experimental neutron scattering techniques, it is possible to obtain a statistical perspective on red blood cell (RBC) shape in suspensions, and the inter-relationship with protein interactions and dynamics inside the confinement of the cell membrane. In this study, we examined the ultrastructure of RBC and protein–protein interactions of haemoglobin (Hb) in them using ultra-small-angle neutron scattering and small-angle neutron scattering (SANS). In addition, we used the neutron backscattering method to access Hb motion on the ns time scale and Å length scale. Quasi-elastic neutron scattering (QENS) experiments were performed to measure diffusive motion of Hb in RBCs and in an RBC lysate. By using QENS, we probed both internal Hb dynamics and global protein diffusion, on the accessible time scale and length scale by QENS. Shape changes of RBCs and variation of intracellular Hb concentration were induced by addition of the Na+-selective ionophore monensin and the K+-selective one, valinomycin. The experimental SANS and QENS results are discussed within the framework of crowded protein solutions, where free motion of Hb is obstructed by mutual interactions.https://royalsocietypublishing.org/doi/pdf/10.1098/rsos.201507quasi-elastic neutron scatteringred blood cellsprotein diffusionsmall-angle neutron scatteringprotein interactionshaemoglobin
collection DOAJ
language English
format Article
sources DOAJ
author Keyun Shou
Mona Sarter
Nicolas R. de Souza
Liliana de Campo
Andrew E. Whitten
Philip W. Kuchel
Christopher J. Garvey
Andreas M. Stadler
spellingShingle Keyun Shou
Mona Sarter
Nicolas R. de Souza
Liliana de Campo
Andrew E. Whitten
Philip W. Kuchel
Christopher J. Garvey
Andreas M. Stadler
Effect of red blood cell shape changes on haemoglobin interactions and dynamics: a neutron scattering study
Royal Society Open Science
quasi-elastic neutron scattering
red blood cells
protein diffusion
small-angle neutron scattering
protein interactions
haemoglobin
author_facet Keyun Shou
Mona Sarter
Nicolas R. de Souza
Liliana de Campo
Andrew E. Whitten
Philip W. Kuchel
Christopher J. Garvey
Andreas M. Stadler
author_sort Keyun Shou
title Effect of red blood cell shape changes on haemoglobin interactions and dynamics: a neutron scattering study
title_short Effect of red blood cell shape changes on haemoglobin interactions and dynamics: a neutron scattering study
title_full Effect of red blood cell shape changes on haemoglobin interactions and dynamics: a neutron scattering study
title_fullStr Effect of red blood cell shape changes on haemoglobin interactions and dynamics: a neutron scattering study
title_full_unstemmed Effect of red blood cell shape changes on haemoglobin interactions and dynamics: a neutron scattering study
title_sort effect of red blood cell shape changes on haemoglobin interactions and dynamics: a neutron scattering study
publisher The Royal Society
series Royal Society Open Science
issn 2054-5703
publishDate 2020-10-01
description By using a combination of experimental neutron scattering techniques, it is possible to obtain a statistical perspective on red blood cell (RBC) shape in suspensions, and the inter-relationship with protein interactions and dynamics inside the confinement of the cell membrane. In this study, we examined the ultrastructure of RBC and protein–protein interactions of haemoglobin (Hb) in them using ultra-small-angle neutron scattering and small-angle neutron scattering (SANS). In addition, we used the neutron backscattering method to access Hb motion on the ns time scale and Å length scale. Quasi-elastic neutron scattering (QENS) experiments were performed to measure diffusive motion of Hb in RBCs and in an RBC lysate. By using QENS, we probed both internal Hb dynamics and global protein diffusion, on the accessible time scale and length scale by QENS. Shape changes of RBCs and variation of intracellular Hb concentration were induced by addition of the Na+-selective ionophore monensin and the K+-selective one, valinomycin. The experimental SANS and QENS results are discussed within the framework of crowded protein solutions, where free motion of Hb is obstructed by mutual interactions.
topic quasi-elastic neutron scattering
red blood cells
protein diffusion
small-angle neutron scattering
protein interactions
haemoglobin
url https://royalsocietypublishing.org/doi/pdf/10.1098/rsos.201507
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