Activity-dependent homeostatic specification of transmitter expression in embryonic neurons
- 1 June 2004
- journal article
- research article
- Published by Springer Nature in Nature
- Vol. 429 (6991) , 523-530
- https://doi.org/10.1038/nature02518
Abstract
Neurotransmitters are essential for interneuronal signalling, and the specification of appropriate transmitters in differentiating neurons has been related to intrinsic neuronal identity and to extrinsic signalling proteins. Here we show that altering the distinct patterns of Ca2+ spike activity spontaneously generated by different classes of embryonic spinal neurons in vivo changes the transmitter that neurons express without affecting the expression of markers of cell identity. Regulation seems to be homeostatic: suppression of activity leads to an increased number of neurons expressing excitatory transmitters and a decreased number of neurons expressing inhibitory transmitters; the reverse occurs when activity is enhanced. The imposition of specific spike frequencies in vitro does not affect labels of cell identity but again specifies the expression of transmitters that are inappropriate for the markers they express, during an early critical period. The results identify a new role of patterned activity in development of the central nervous system.Keywords
This publication has 52 references indexed in Scilit:
- Calcium signalling: dynamics, homeostasis and remodellingNature Reviews Molecular Cell Biology, 2003
- Directed Differentiation of Embryonic Stem Cells into Motor NeuronsCell, 2002
- LIM Factor Lhx3 Contributes to the Specification of Motor Neuron and Interneuron Identity through Cell-Type-Specific Protein-Protein InteractionsPublished by Elsevier ,2002
- Expression of Phox2 Transcription Factors and Induction of the Dopaminergic Phenotype in Primary Sensory NeuronsMolecular and Cellular Neuroscience, 2002
- Specific Frequencies of Spontaneous Ca2+ Transients Upregulate GAD 67 Transcripts in Embryonic Spinal NeuronsMolecular and Cellular Neuroscience, 2000
- A Genetic Analysis of Synaptic DevelopmentNeuron, 2000
- Effects of ciliary neurotrophic factor (CNTF) and depolarization on neuropeptide expression in cultured sympathetic neuronsDevelopmental Biology, 1992
- A critical period of transcription required for differentiation of the action potential of spinal neuronsNeuron, 1989
- Spontaneous release of transmitter from growth cones of embryonic neuronesNature, 1983
- Evidence for neurotransmitter plasticity in vivo: Developmental changes in properties of cholinergic sympathetic neuronsDevelopmental Biology, 1983