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A Stretch-activated Anion Channel is Up-regulated by the Malaria Parasite Plasmodium Falciparum

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Journal J Physiol
Specialty Physiology
Date 2002 Aug 3
PMID 12154179
Citations 31
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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.

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References
1.
Staines H, Chang W, Ellory J, Tiffert T, Kirk K, Lew V . Passive Ca(2+) transport and Ca(2+)-dependent K(+) transport in Plasmodium falciparum-infected red cells. J Membr Biol. 1999; 172(1):13-24. DOI: 10.1007/s002329900579. View

2.
Sprague R, Ellsworth M, Stephenson A, Kleinhenz M, Lonigro A . Deformation-induced ATP release from red blood cells requires CFTR activity. Am J Physiol. 1998; 275(5):H1726-32. DOI: 10.1152/ajpheart.1998.275.5.H1726. View

3.
Ginsburg H . The permeability properties of the parasite cell membrane. Novartis Found Symp. 2000; 226:99-108; discussion 108-13. DOI: 10.1002/9780470515730.ch8. View

4.
Desai S, Bezrukov S, Zimmerberg J . A voltage-dependent channel involved in nutrient uptake by red blood cells infected with the malaria parasite. Nature. 2000; 406(6799):1001-5. DOI: 10.1038/35023000. View

5.
Egee S, Lapaix F, Cossins A, Thomas S . The role of anion and cation channels in volume regulatory responses in trout red blood cells. Bioelectrochemistry. 2000; 52(2):133-49. DOI: 10.1016/s0302-4598(00)00096-9. View