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Monitoring ER/SR Calcium Release with the Targeted Ca2+ Sensor CatchER+
Published on: May 19, 2017
Importance of transmembrane segment M1 of the sarcoplasmic reticulum Ca2+-ATPase in Ca2+ occlusion and phosphoenzyme
Anja Pernille Einholm1, Bente Vilsen, Jens Peter Andersen
1Institute of Physiology, University of Aarhus, Ole Worms Allé 160, DK-8000 Aarhus C, Denmark.
Abstract:
The functional consequences of a series of point mutations in transmembrane segment M1 of sarcoplasmic reticulum Ca2+-ATPase were analyzed in steady-state and transient kinetic experiments examining the partial reaction steps involved in Ca2+ interaction and phosphoenzyme turnover. Arginine or leucine substitution of Glu51, Glu55, or Glu58, located in the N-terminal third of M1, did not affect these functions. Arginine or leucine substitution of Asp59, located right at the bend of M1 seen in the crystal structure of the thapsigargin-bound form, caused a 10-fold increase of the rate of Ca2+ dissociation toward the cytoplasmic side. Mutation of Leu60 to alanine or proline and of Val62 to alanine also enhanced Ca2+ dissociation, whereas an 11-fold reduction of the rate of Ca2+ dissociation was observed upon alanine substitution of Leu65, thus providing evidence for a relation of the middle part of M1 to a gating mechanism controlling the dissociation of occluded Ca2+ from its membranous binding sites. Moreover, phosphoenzyme processing was affected by some of the latter mutations, in particular leucine substitution of Asp59, and alanine substitution of Leu65 accelerated the transition to ADP-insensitive phosphoenzyme and blocked its dephosphorylation, thus demonstrating that this part of M1, besides being important in Ca2+ interaction, furthermore, is a critical element in the long range signaling between the transmembrane domain and the cytoplasmic catalytic site.
Insights
Point mutations in sarcoplasmic reticulum Ca2+-ATPase M1 segment reveal key roles in calcium ion (Ca2+) binding and release. Specific mutations alter Ca2+ dissociation rates and affect phosphoenzyme processing, impacting cellular calcium transport.
Area of Science:
- Biochemistry
- Molecular Biology
- Membrane Protein Function
Background:
- Sarcoplasmic reticulum Ca2+-ATPase (SERCA) is crucial for muscle contraction by pumping calcium ions (Ca2+) into the sarcoplasmic reticulum.
- Transmembrane segment M1 plays a role in Ca2+ transport, but its precise function in gating and signaling remains unclear.
Purpose of the Study:
- To investigate the functional consequences of point mutations in transmembrane segment M1 of SERCA.
- To elucidate the role of specific residues in Ca2+ binding, dissociation, and phosphoenzyme turnover.
Main Methods:
- Steady-state and transient kinetic experiments were performed on mutated SERCA proteins.
- Analysis focused on partial reaction steps of Ca2+ interaction and phosphoenzyme turnover.
Main Results:
- Mutations at Glu51, Glu55, and Glu58 in M1 did not significantly affect Ca2+ interaction or phosphoenzyme turnover.
- Mutations at Asp59, Leu60, and Val62 increased the rate of Ca2+ dissociation.
- Mutation at Leu65 significantly reduced Ca2+ dissociation and altered phosphoenzyme processing, indicating a role in gating and signaling.
Conclusions:
- The middle portion of M1 is involved in a gating mechanism controlling occluded Ca2+ dissociation.
- Specific residues in M1 are critical for long-range signaling between the transmembrane domain and the cytoplasmic catalytic site.
- Mutations in M1 impact both Ca2+ binding/dissociation and the subsequent steps of the SERCA catalytic cycle.
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