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.

Plos One
|August 29, 2015
PubMed

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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