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Mechanisms determining Schistosoma mansoni CRAC channel activation

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Abstract Schistosoma mansoni and its schistosome relatives are parasitic worms that impose a substantial disease burden on human populations and livestock. On the rationale that calcium signalling is a critical process in multicellular organisms, we have examined wildtype and engineered S. mansoni STIM and ORAI— orthologues of STIM and ORAI known in mammals and other species for their central role in cellular calcium signalling— by imaging their localization, interactions, and contribution to ion currents and calcium influx in living cells. The ER membrane protein S. mansoni STIM recapitulates the essential functions of mammalian STIM1, namely, calcium-sensing by its ER-luminal domain, targeting to ER-plasma membrane junctions through interactions with the plasma membrane and with plasma membrane S. mansoni ORAI channels, and an ability to gate the S. mansoni ORAI channel. S. mansoni ORAI is a plasma membrane calcium channel that exhibits striking parallels with mammalian ORAI1 in its pore architecture and gating mechanism. The schistosome and human proteins are not completely interchangeable, however, and schistosome-human ORAI chimeras point to a special role of the ORAI N terminus in channel gating. Importantly, we demonstrate pharmacological differences between the schistosome and human channels that may offer an opportunity for selective therapeutic targeting of schistosome STIM-ORAI-dependent calcium entry. Author Summary Calcium channels represent potential targets to parasitic helminths. We investigated Schistosoma mansoni CRAC channel activation through the expression of its proteins. We have established that the fundamental protein conformational changes and protein-protein interactions underlying STIM-ORAI signaling are shared between humans and schistosome proteins. Importantly, a key finding is that evolutionary divergence in residues that are not implicated in the basic mechanisms of STIM-ORAI activation appears to offer a window for pharmacological inhibitors that would be selective for the schistosome ORAI channel. We identified pharmacological differences for two compounds tested. These differences open avenues for the development of selective drugs that can target the S. mansoni CRAC channel without affecting human physiology, thus offering the prospect of new treatments for schistosomiasis.
Title: Mechanisms determining Schistosoma mansoni CRAC channel activation
Description:
Abstract Schistosoma mansoni and its schistosome relatives are parasitic worms that impose a substantial disease burden on human populations and livestock.
On the rationale that calcium signalling is a critical process in multicellular organisms, we have examined wildtype and engineered S.
mansoni STIM and ORAI— orthologues of STIM and ORAI known in mammals and other species for their central role in cellular calcium signalling— by imaging their localization, interactions, and contribution to ion currents and calcium influx in living cells.
The ER membrane protein S.
mansoni STIM recapitulates the essential functions of mammalian STIM1, namely, calcium-sensing by its ER-luminal domain, targeting to ER-plasma membrane junctions through interactions with the plasma membrane and with plasma membrane S.
mansoni ORAI channels, and an ability to gate the S.
mansoni ORAI channel.
S.
mansoni ORAI is a plasma membrane calcium channel that exhibits striking parallels with mammalian ORAI1 in its pore architecture and gating mechanism.
The schistosome and human proteins are not completely interchangeable, however, and schistosome-human ORAI chimeras point to a special role of the ORAI N terminus in channel gating.
Importantly, we demonstrate pharmacological differences between the schistosome and human channels that may offer an opportunity for selective therapeutic targeting of schistosome STIM-ORAI-dependent calcium entry.
Author Summary Calcium channels represent potential targets to parasitic helminths.
We investigated Schistosoma mansoni CRAC channel activation through the expression of its proteins.
We have established that the fundamental protein conformational changes and protein-protein interactions underlying STIM-ORAI signaling are shared between humans and schistosome proteins.
Importantly, a key finding is that evolutionary divergence in residues that are not implicated in the basic mechanisms of STIM-ORAI activation appears to offer a window for pharmacological inhibitors that would be selective for the schistosome ORAI channel.
We identified pharmacological differences for two compounds tested.
These differences open avenues for the development of selective drugs that can target the S.
mansoni CRAC channel without affecting human physiology, thus offering the prospect of new treatments for schistosomiasis.

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