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Paired Patch Clamp Recordings from Motor-neuron and Target Skeletal Muscle in Zebrafish
Published on: November 20, 2010
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
Abstract:
Numerous studies, performed mainly on dissociated cells, have shown that calcium signals have a role during different stages of neuronal development. However, the actions of calcium during neuronal development in vivo remain to be established. The present study has investigated the role of intracellular calcium signals during development of motoneurons in the spinal cord of intact zebrafish embryos. Loading blastomeres of early embryos with either the calcium buffer BAPTA or the calcium reporter dye Calcium Green, was shown to disrupt motoneuron development in the spinal cord of embryos at 24 h postfertilisation. Loading the calcium buffer BAPTA, at an intracellular concentration of 1 mM, into the blastomeres of early embryos did not alter the resting levels of intracellular calcium, but significantly dampened transient rises in intracellular calcium in the cells of later stage embryos. Loading cells with 1 mM BAPTA significantly decreased the number of motoneurons present in the spinal cord at 24 h, indicating that calcium signals are important for normal motoneuron differentiation. Furthermore, in those BAPTA-filled cells that did adopt a motoneuron cell fate, axogenesis was found to be inhibited, suggestive of a role for calcium signalling in neurite initiation. This work provides evidence that calcium signals are necessary at several stages of motoneuron development in vivo.
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.

