Cargando…

Differential time‐dependent volumetric and surface area changes and delayed induction of new permeation pathways in P. falciparum‐infected hemoglobinopathic erythrocytes

During intraerythrocytic development, Plasmodium falciparum increases the ion permeability of the erythrocyte plasma membrane to an extent that jeopardizes the osmotic stability of the host cell. A previously formulated numeric model has suggested that the parasite prevents premature rupture of the...

Descripción completa

Detalles Bibliográficos
Autores principales: Waldecker, Mailin, Dasanna, Anil K., Lansche, Christine, Linke, Marco, Srismith, Sirikamol, Cyrklaff, Marek, Sanchez, Cecilia P., Schwarz, Ulrich S., Lanzer, Michael
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5298026/
https://www.ncbi.nlm.nih.gov/pubmed/27450804
http://dx.doi.org/10.1111/cmi.12650
_version_ 1782505822840946688
author Waldecker, Mailin
Dasanna, Anil K.
Lansche, Christine
Linke, Marco
Srismith, Sirikamol
Cyrklaff, Marek
Sanchez, Cecilia P.
Schwarz, Ulrich S.
Lanzer, Michael
author_facet Waldecker, Mailin
Dasanna, Anil K.
Lansche, Christine
Linke, Marco
Srismith, Sirikamol
Cyrklaff, Marek
Sanchez, Cecilia P.
Schwarz, Ulrich S.
Lanzer, Michael
author_sort Waldecker, Mailin
collection PubMed
description During intraerythrocytic development, Plasmodium falciparum increases the ion permeability of the erythrocyte plasma membrane to an extent that jeopardizes the osmotic stability of the host cell. A previously formulated numeric model has suggested that the parasite prevents premature rupture of the host cell by consuming hemoglobin (Hb) in excess of its own anabolic needs. Here, we have tested the colloid‐osmotic model on the grounds of time‐resolved experimental measurements on cell surface area and volume. We have further verified whether the colloid‐osmotic model can predict time‐dependent volumetric changes when parasites are grown in erythrocytes containing the hemoglobin variants S or C. A good agreement between model‐predicted and empirical data on both infected erythrocyte and intracellular parasite volume was found for parasitized HbAA and HbAC erythrocytes. However, a delayed induction of the new permeation pathways needed to be taken into consideration for the latter case. For parasitized HbAS erythrocyte, volumes diverged from model predictions, and infected erythrocytes showed excessive vesiculation during the replication cycle. We conclude that the colloid‐osmotic model provides a plausible and experimentally supported explanation of the volume expansion and osmotic stability of P. falciparum‐infected erythrocytes. The contribution of vesiculation to the malaria‐protective function of hemoglobin S is discussed.
format Online
Article
Text
id pubmed-5298026
institution National Center for Biotechnology Information
language English
publishDate 2016
publisher John Wiley and Sons Inc.
record_format MEDLINE/PubMed
spelling pubmed-52980262017-02-22 Differential time‐dependent volumetric and surface area changes and delayed induction of new permeation pathways in P. falciparum‐infected hemoglobinopathic erythrocytes Waldecker, Mailin Dasanna, Anil K. Lansche, Christine Linke, Marco Srismith, Sirikamol Cyrklaff, Marek Sanchez, Cecilia P. Schwarz, Ulrich S. Lanzer, Michael Cell Microbiol Original Articles During intraerythrocytic development, Plasmodium falciparum increases the ion permeability of the erythrocyte plasma membrane to an extent that jeopardizes the osmotic stability of the host cell. A previously formulated numeric model has suggested that the parasite prevents premature rupture of the host cell by consuming hemoglobin (Hb) in excess of its own anabolic needs. Here, we have tested the colloid‐osmotic model on the grounds of time‐resolved experimental measurements on cell surface area and volume. We have further verified whether the colloid‐osmotic model can predict time‐dependent volumetric changes when parasites are grown in erythrocytes containing the hemoglobin variants S or C. A good agreement between model‐predicted and empirical data on both infected erythrocyte and intracellular parasite volume was found for parasitized HbAA and HbAC erythrocytes. However, a delayed induction of the new permeation pathways needed to be taken into consideration for the latter case. For parasitized HbAS erythrocyte, volumes diverged from model predictions, and infected erythrocytes showed excessive vesiculation during the replication cycle. We conclude that the colloid‐osmotic model provides a plausible and experimentally supported explanation of the volume expansion and osmotic stability of P. falciparum‐infected erythrocytes. The contribution of vesiculation to the malaria‐protective function of hemoglobin S is discussed. John Wiley and Sons Inc. 2016-08-25 2017-02 /pmc/articles/PMC5298026/ /pubmed/27450804 http://dx.doi.org/10.1111/cmi.12650 Text en © 2016 The Authors Cellular Microbiology Published by John Wiley & Sons Ltd This is an open access article under the terms of the Creative Commons Attribution‐NonCommercial‐NoDerivs (http://creativecommons.org/licenses/by-nc-nd/4.0/) License, which permits use and distribution in any medium, provided the original work is properly cited, the use is non‐commercial and no modifications or adaptations are made.
spellingShingle Original Articles
Waldecker, Mailin
Dasanna, Anil K.
Lansche, Christine
Linke, Marco
Srismith, Sirikamol
Cyrklaff, Marek
Sanchez, Cecilia P.
Schwarz, Ulrich S.
Lanzer, Michael
Differential time‐dependent volumetric and surface area changes and delayed induction of new permeation pathways in P. falciparum‐infected hemoglobinopathic erythrocytes
title Differential time‐dependent volumetric and surface area changes and delayed induction of new permeation pathways in P. falciparum‐infected hemoglobinopathic erythrocytes
title_full Differential time‐dependent volumetric and surface area changes and delayed induction of new permeation pathways in P. falciparum‐infected hemoglobinopathic erythrocytes
title_fullStr Differential time‐dependent volumetric and surface area changes and delayed induction of new permeation pathways in P. falciparum‐infected hemoglobinopathic erythrocytes
title_full_unstemmed Differential time‐dependent volumetric and surface area changes and delayed induction of new permeation pathways in P. falciparum‐infected hemoglobinopathic erythrocytes
title_short Differential time‐dependent volumetric and surface area changes and delayed induction of new permeation pathways in P. falciparum‐infected hemoglobinopathic erythrocytes
title_sort differential time‐dependent volumetric and surface area changes and delayed induction of new permeation pathways in p. falciparum‐infected hemoglobinopathic erythrocytes
topic Original Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5298026/
https://www.ncbi.nlm.nih.gov/pubmed/27450804
http://dx.doi.org/10.1111/cmi.12650
work_keys_str_mv AT waldeckermailin differentialtimedependentvolumetricandsurfaceareachangesanddelayedinductionofnewpermeationpathwaysinpfalciparuminfectedhemoglobinopathicerythrocytes
AT dasannaanilk differentialtimedependentvolumetricandsurfaceareachangesanddelayedinductionofnewpermeationpathwaysinpfalciparuminfectedhemoglobinopathicerythrocytes
AT lanschechristine differentialtimedependentvolumetricandsurfaceareachangesanddelayedinductionofnewpermeationpathwaysinpfalciparuminfectedhemoglobinopathicerythrocytes
AT linkemarco differentialtimedependentvolumetricandsurfaceareachangesanddelayedinductionofnewpermeationpathwaysinpfalciparuminfectedhemoglobinopathicerythrocytes
AT srismithsirikamol differentialtimedependentvolumetricandsurfaceareachangesanddelayedinductionofnewpermeationpathwaysinpfalciparuminfectedhemoglobinopathicerythrocytes
AT cyrklaffmarek differentialtimedependentvolumetricandsurfaceareachangesanddelayedinductionofnewpermeationpathwaysinpfalciparuminfectedhemoglobinopathicerythrocytes
AT sanchezceciliap differentialtimedependentvolumetricandsurfaceareachangesanddelayedinductionofnewpermeationpathwaysinpfalciparuminfectedhemoglobinopathicerythrocytes
AT schwarzulrichs differentialtimedependentvolumetricandsurfaceareachangesanddelayedinductionofnewpermeationpathwaysinpfalciparuminfectedhemoglobinopathicerythrocytes
AT lanzermichael differentialtimedependentvolumetricandsurfaceareachangesanddelayedinductionofnewpermeationpathwaysinpfalciparuminfectedhemoglobinopathicerythrocytes