Differential codes for free Ca(2+)-calmodulin signals in nucleus and cytosol

M N Teruel1, W Chen, A Persechini

  • 1Department of Cell Biology, Department of Pharmacology and Cancer Biology, Box 3709, Duke University Medical Center, Durham, NC 27710, USA.

Current Biology : CB
|February 9, 2000
PubMed
Abstract

Insights

Local differences in calcium-calmodulin (Ca2+-CaM) concentration regulate cellular signaling. Brief calcium spikes increase cytosolic Ca2+-CaM more than nuclear, while sustained increases equalize levels via CaM translocation.

Area of Science:

  • Cell Biology
  • Biochemistry
  • Molecular Signaling

Background:

  • Calcium signaling pathways often involve calmodulin (CaM) binding to Ca2+-CaM.
  • Local intracellular free Ca2+-CaM concentration differences may selectively activate signaling.

Purpose of the Study:

  • To test if local Ca2+-CaM concentration differences selectively activate signaling.
  • To investigate the dynamics of Ca2+-CaM distribution between nucleus and cytoplasm.

Main Methods:

  • Energy-transfer confocal microscopy of a fluorescent biosensor to measure free Ca2+-CaM.
  • Photobleaching recovery and translocation measurements of fluorescently labeled CaM.

Main Results:

  • Short calcium spikes transiently increased cytosolic Ca2+-CaM more than nuclear.
  • Prolonged calcium increases led to nuclear and cytosolic Ca2+-CaM equalization over minutes.
  • Ca2+-CaM concentration gradients and CaM translocation direction were reversed by altering cytosolic Ca2+-CaM-binding protein concentration.

Conclusions:

  • Subcellular Ca2+-CaM-binding protein distribution creates free Ca2+-CaM gradients, driving CaM translocation.
  • This mechanism dynamically regulates local free Ca2+-CaM concentrations and target activity.
  • Nuclear free Ca2+-CaM remains low during brief spikes but increases with sustained calcium elevation due to CaM translocation.

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