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Understanding the Development of Compensatory Pathways in a Mutant Malaria Parasite Harbouring Hypomorphic Allele of Plant-Like Kinases
Published on: November 22, 2024
A stretch-activated anion channel is up-regulated by the malaria parasite Plasmodium falciparum
Stéphane Egée1, Franck Lapaix, Gaëtan Decherf
1Centre National de la Recherche Scientifique, UPR 9042, Station Biologique, Place G.Teissier, B. P. 74, 29682 Roscoff cedex, France.
Abstract:
A recent study on malaria-infected human red blood cells (RBCs) has shown induced ion channel activity in the host cell membrane, but the questions of whether they are host- or parasite-derived and their molecular nature have not been resolved. Here we report a comparison of a malaria-induced anion channel with an endogenous anion channel in Plasmodium falciparum-infected human RBCs. Ion channel activity was measured using the whole-cell, cell-attached and excised inside-out configurations of the patch-clamp method. Parasitised RBCs were cultured in vitro, using co-cultured uninfected RBCs as controls. Unstimulated uninfected RBCs possessed negligible numbers of active anion channels. However, anion channels could be activated in the presence of protein kinase A (PKA) and ATP in the pipette solution or by membrane deformation. These channels displayed linear conductance (~15 pS), were blocked by known anion channel inhibitors and showed the permeability sequence I(-) > Br(-) > Cl(-). In addition, in less than 5 % of excised patches, an outwardly rectifying anion channel (~80 pS, outward conductance) was spontaneously active. The host membrane of malaria-infected RBCs possessed spontaneously active anion channel activity, with identical conductances, pharmacology and selectivity to the linear conductance channel measured in stimulated uninfected RBCs. Furthermore, the channels measured in malaria-infected RBCs were shown to have a low open-state probability (P(o)) at positive potentials, which explains the inward rectification of membrane conductance observed when using the whole-cell configuration. The data are consistent with the presence of two endogenous anion channels in human RBCs, of which one (the linear conductance channel) is up-regulated by the malaria parasite P. falciparum.
Insights
Malaria infection up-regulates endogenous anion channels in human red blood cells (RBCs). This study identifies a specific linear conductance channel that becomes more active in infected RBCs, impacting membrane properties.
Area of Science:
- Cell Biology
- Parasitology
- Biophysics
Background:
- Malaria infection induces ion channel activity in human red blood cells (RBCs).
- The origin and nature of these channels remain unclear.
- Distinguishing host-derived from parasite-derived channels is crucial.
Purpose of the Study:
- To compare malaria-induced anion channels with endogenous anion channels in Plasmodium falciparum-infected RBCs.
- To elucidate the molecular identity and properties of these channels.
- To determine if malaria parasites up-regulate existing host channels.
Main Methods:
- Utilized patch-clamp techniques (whole-cell, cell-attached, excised inside-out) to measure ion channel activity.
- Cultured Plasmodium falciparum-infected RBCs in vitro, with uninfected RBCs as controls.
- Characterized channel conductance, pharmacology, and ion selectivity.
Main Results:
- Uninfected RBCs showed minimal spontaneous anion channel activity, but channels could be activated by PKA/ATP or membrane deformation.
- A linear conductance anion channel (~15 pS) with specific permeability (I(-) > Br(-) > Cl(-)) was identified.
- Malaria-infected RBCs exhibited spontaneously active anion channels identical to the linear conductance channel found in stimulated uninfected RBCs.
- These channels showed low open-state probability at positive potentials, explaining observed inward rectification.
Conclusions:
- Human RBCs possess at least two endogenous anion channels.
- The malaria parasite Plasmodium falciparum up-regulates a specific endogenous linear conductance anion channel in infected RBCs.
- This up-regulation contributes to altered membrane conductance in malaria-infected cells.
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