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Published on: May 19, 2017
14-3-3 Proteins Buffer Intracellular Calcium Sensing Receptors to Constrain Signaling
Michael P Grant1, Alice Cavanaugh1, Gerda E Breitwieser1
1Weis Center for Research, Geisinger Clinic, Danville, Pennsylvania, United States of America.
Abstract:
Calcium sensing receptors (CaSR) interact with 14-3-3 binding proteins at a carboxyl terminal arginine-rich motif. Mutations identified in patients with familial hypocalciuric hypercalcemia, autosomal dominant hypocalcemia, pancreatitis or idiopathic epilepsy support the functional importance of this motif. We combined total internal reflection fluorescence microscopy and biochemical approaches to determine the mechanism of 14-3-3 protein regulation of CaSR signaling. Loss of 14-3-3 binding caused increased basal CaSR signaling and plasma membrane levels, and a significantly larger signaling-evoked increase in plasma membrane receptors. Block of core glycosylation with tunicamycin demonstrated that changes in plasma membrane CaSR levels were due to differences in exocytic rate. Western blotting to quantify time-dependent changes in maturation of expressed wt CaSR and a 14-3-3 protein binding-defective mutant demonstrated that signaling increases synthesis to maintain constant levels of the immaturely and maturely glycosylated forms. CaSR thus operates by a feed-forward mechanism, whereby signaling not only induces anterograde trafficking of nascent receptors but also increases biosynthesis to maintain steady state levels of net cellular CaSR. Overall, these studies suggest that 14-3-3 binding at the carboxyl terminus provides an important buffering mechanism to increase the intracellular pool of CaSR available for signaling-evoked trafficking, but attenuates trafficking to control the dynamic range of responses to extracellular calcium.
Insights
14-3-3 proteins buffer calcium sensing receptor (CaSR) signaling by regulating receptor trafficking and synthesis. Loss of 14-3-3 binding increases CaSR levels and signaling, impacting calcium homeostasis.
Area of Science:
- Molecular biology
- Cell signaling
- Biochemistry
Background:
- Calcium sensing receptors (CaSR) are crucial for calcium homeostasis.
- CaSR interacts with 14-3-3 proteins at its C-terminus, a motif implicated in various diseases.
- The precise regulatory mechanism of this interaction on CaSR signaling remains unclear.
Purpose of the Study:
- To elucidate the mechanism by which 14-3-3 proteins regulate CaSR signaling.
- To investigate the role of 14-3-3 binding in CaSR trafficking and biosynthesis.
- To understand how CaSR signaling dynamics are controlled by 14-3-3 interactions.
Main Methods:
- Total internal reflection fluorescence microscopy to observe CaSR dynamics.
- Biochemical approaches including Western blotting for protein quantification.
- Analysis of CaSR maturation and glycosylation states.
Main Results:
- Loss of 14-3-3 binding leads to elevated basal CaSR signaling and plasma membrane levels.
- CaSR plasma membrane levels are modulated by changes in the exocytic rate.
- CaSR signaling activates a feed-forward mechanism, increasing both receptor synthesis and anterograde trafficking.
- 14-3-3 binding acts as a buffer, modulating CaSR trafficking and controlling response dynamic range.
Conclusions:
- 14-3-3 proteins are essential regulators of CaSR signaling dynamics.
- 14-3-3 binding attenuates CaSR trafficking, controlling the dynamic range of cellular responses.
- CaSR utilizes a feed-forward mechanism involving biosynthesis and trafficking for signal amplification and homeostasis.
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