Further characterization of the red beet plasma-membrane ca-2+-atpase using gtp as an alternative substrate
Further characterization of the red beet plasma-membrane ca-2+-atpase using gtp as an alternative substrate
The GTP-driven component of Ca2+ uptake in red beet (Beta vulgaris L.) plasma membrane vesicles was further characterized to confirm its association with the plasma membrane Ca2+-translocating ATPase and assess its utility as a probe for this transport system. Uptake of 45Ca2+ in the presence of GTP demonstrated similar properties to those previously observed for red beet plasma membrane vesicles utilizing ATP with respect to pH optimum, sensitivity to orthovanadate, dependence on Mg:substrate concentration and dependence on Ca2+ concentration. Calcium uptake in the presence of GTP was also strongly inhibited by erythrosin B, a potent inhibitor of the plant plasma membrane Ca2+-ATPase. Furthermore, after treatment with EGTA to remove endogenous calmodulin, the stimulation of 45Ca2+-uptake by exogenous calmodulin was nearly equivalent in the presence of either ATP or GTP. Taken together these results support the proposal that GTP-driven 45Ca2+ uptake represents the capacity of the plasma membrane Ca2+-translocating ATPase to utilize this nucleoside triphosphate as an alternative substrate. When plasma membrane vesicles were phosphorylated with [γ-32P]-GTP, a rapidly turning over, 100 kilodalton phosphorylated peptide was observed which contained an acyl-phosphate linkage. While it is proposed that this peptide could represent the catalytic subunit of the plasma membrane Ca2+-ATPase, it is noted that this molecular weight is considerably lower than the 140 kilodalton size generally observed for plasma membrane Ca2+-ATPases present in animal cells
747-754
Williams, L.E
79ee1856-3732-492b-8ac5-239749c85d9e
Schueler, S.B.
7233f1bd-65d2-46b6-b5cf-b03f731ac49b
Briskin, D.P.
eeeac322-fc44-4421-a584-d67922be5517
1 March 1990
Williams, L.E
79ee1856-3732-492b-8ac5-239749c85d9e
Schueler, S.B.
7233f1bd-65d2-46b6-b5cf-b03f731ac49b
Briskin, D.P.
eeeac322-fc44-4421-a584-d67922be5517
Williams, L.E, Schueler, S.B. and Briskin, D.P.
(1990)
Further characterization of the red beet plasma-membrane ca-2+-atpase using gtp as an alternative substrate.
Plant Physiology, 92 (3), .
(doi:10.1104/pp.92.3.747).
Abstract
The GTP-driven component of Ca2+ uptake in red beet (Beta vulgaris L.) plasma membrane vesicles was further characterized to confirm its association with the plasma membrane Ca2+-translocating ATPase and assess its utility as a probe for this transport system. Uptake of 45Ca2+ in the presence of GTP demonstrated similar properties to those previously observed for red beet plasma membrane vesicles utilizing ATP with respect to pH optimum, sensitivity to orthovanadate, dependence on Mg:substrate concentration and dependence on Ca2+ concentration. Calcium uptake in the presence of GTP was also strongly inhibited by erythrosin B, a potent inhibitor of the plant plasma membrane Ca2+-ATPase. Furthermore, after treatment with EGTA to remove endogenous calmodulin, the stimulation of 45Ca2+-uptake by exogenous calmodulin was nearly equivalent in the presence of either ATP or GTP. Taken together these results support the proposal that GTP-driven 45Ca2+ uptake represents the capacity of the plasma membrane Ca2+-translocating ATPase to utilize this nucleoside triphosphate as an alternative substrate. When plasma membrane vesicles were phosphorylated with [γ-32P]-GTP, a rapidly turning over, 100 kilodalton phosphorylated peptide was observed which contained an acyl-phosphate linkage. While it is proposed that this peptide could represent the catalytic subunit of the plasma membrane Ca2+-ATPase, it is noted that this molecular weight is considerably lower than the 140 kilodalton size generally observed for plasma membrane Ca2+-ATPases present in animal cells
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Published date: 1 March 1990
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Local EPrints ID: 483300
URI: http://eprints.soton.ac.uk/id/eprint/483300
ISSN: 0032-0889
PURE UUID: 29a18000-7268-4dbb-b9c0-055c34b1e9e8
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Date deposited: 27 Oct 2023 16:45
Last modified: 17 Mar 2024 05:17
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Author:
S.B. Schueler
Author:
D.P. Briskin
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