Buffering intracellular calcium disrupts motoneuron development in intact zebrafish embryos

R Ashworth1, F Zimprich, S R Bolsover

  • 1UCL Life Sciences Imaging Consortium, Department of Physiology, Rockefeller Building, University College London, Gower Street, WC1E 6BT, London, UK. r.ashworth@ucl.ac.uk

Insights

Calcium signals are crucial for motoneuron development in zebrafish. This study shows that altering intracellular calcium levels disrupts motoneuron differentiation and neurite initiation in vivo.

Area of Science:

  • Neuroscience
  • Developmental Biology
  • Cell Signaling

Background:

  • Studies on dissociated cells suggest calcium signals are vital for neuronal development.
  • The role of calcium in neuronal development within a living organism (in vivo) requires further investigation.

Purpose of the Study:

  • To investigate the role of intracellular calcium signals in the in vivo development of spinal cord motoneurons in zebrafish embryos.
  • To determine if calcium signaling is essential for motoneuron differentiation and axogenesis.

Main Methods:

  • Early zebrafish embryos had blastomeres loaded with the calcium buffer BAPTA or the calcium reporter dye Calcium Green.
  • Intracellular calcium levels and motoneuron development were assessed at 24 hours post-fertilization.

Main Results:

  • Loading with BAPTA disrupted motoneuron development, decreasing the number of motoneurons.
  • BAPTA application dampened transient rises in intracellular calcium.
  • In surviving motoneurons, BAPTA treatment inhibited axogenesis (neurite initiation).

Conclusions:

  • Intracellular calcium signals are necessary for normal motoneuron differentiation in vivo.
  • Calcium signaling plays a critical role in neurite initiation during motoneuron development.
  • This study provides evidence for the essential role of calcium signals in multiple stages of in vivo motoneuron development.

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