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Elucidating the molecular mechanisms that underlie the target control of motoneuron death
1Department of Physiology/Pharmacology, School of Biomedical Sciences, and SRC Bioinformatics and Applied Genomics, University of Queensland, Australia. Banks@plpk.uq.edu.au
Abstract:
Approximately half of the motoneurons generated during normal embryonic development undergo programmed cell death. Most of this death occurs during the time when synaptic connections are being formed between motoneurons and their target, skeletal muscle. Subsequent muscle activity stemming from this connection helps determine the final number of surviving motoneurons. These observations have given rise to the idea that motoneuron survival is dependent upon access to muscle derived trophic factors, presumably through intact neuromuscular synapses. However, it is not yet understood how the muscle regulates the supply of such trophic factors, or if there are additional mechanisms operating to control the fate of the innervating motoneuron. Recent observations have highlighted target independent mechanisms that also operate to support the survival of motoneurons, such as early trophic-independent periods of motoneuron death, trophic factors derived from Schwann cells and selection of motoneurons during pathfinding. Here we review recent investigations into motoneuron cell death when the molecular signalling between motoneurons and muscle has been genetically disrupted. From these studies, we suggest that in addition to trophic factors from muscle and/or Schwann cells, specific adhesive interactions between motoneurons and muscle are needed to regulate motoneuron survival. Such interactions, along with intact synaptic basal lamina, may help to regulate the supply and presentation of trophic factors to motoneurons.
Insights
Motoneuron survival depends on muscle connections and trophic factors. New research suggests specific adhesive interactions and basal lamina are crucial for regulating motoneuron fate.
Area of Science:
- Neuroscience
- Developmental Biology
- Cell Biology
Background:
- During embryonic development, about half of motoneurons undergo programmed cell death.
- This motoneuron death often coincides with synapse formation between motoneurons and skeletal muscle.
- Muscle activity influences the final number of surviving motoneurons, suggesting a dependence on muscle-derived factors.
Purpose of the Study:
- To investigate the mechanisms regulating motoneuron survival.
- To explore the role of molecular signaling between motoneurons and muscle in cell fate.
- To identify factors beyond trophic support that influence motoneuron survival.
Main Methods:
- Review of recent investigations into motoneuron cell death.
- Analysis of studies involving genetic disruption of molecular signaling between motoneurons and muscle.
Main Results:
- Motoneuron survival is influenced by both muscle-derived and Schwann cell-derived trophic factors.
- Target-independent mechanisms, including early cell death periods and pathfinding selection, also play a role.
- Specific adhesive interactions between motoneurons and muscle are essential for survival.
Conclusions:
- Motoneuron survival requires more than just trophic support; specific adhesive interactions are critical.
- Intact neuromuscular synapses and synaptic basal lamina are important for regulating trophic factor supply and presentation.
- Understanding these complex interactions is key to comprehending motoneuron development and survival.
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