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Silencing of Activity During Hypoxia Improves Functional Outcomes in Motor Neuron Networks in vitro
Vegard Fiskum1, Axel Sandvig1,2,3,4, Ioanna Sandvig1
1Department of Neuromedicine and Movement Science, Faculty of Medicine and Health Sciences, Norwegian University of Science and Technology, Trondheim, Norway.
Abstract:
The effects of hypoxia, or reduced oxygen supply, to brain tissue can be disastrous, leading to extensive loss of function. Deoxygenated tissue becomes unable to maintain healthy metabolism, which leads to increased production of reactive oxygen species (ROS) and loss of calcium homoeostasis, with damaging downstream effects. Neurons are a highly energy demanding cell type, and as such they are highly sensitive to reductions in oxygenation and some types of neurons such as motor neurons are even more susceptible to hypoxic damage. In addition to the immediate deleterious effects hypoxia can have on neurons, there can be delayed effects which lead to increased risk of developing neurodegenerative diseases such as amyotrophic lateral sclerosis (ALS), even if no immediate consequences are apparent. Furthermore, impairment of the function of various hypoxia-responsive factors has been shown to increase the risk of developing several neurodegenerative disorders. Longitudinal assessment of electrophysiological network activity is underutilised in assessing the effects of hypoxia on neurons and how their activity and communication change over time following a hypoxic challenge. This study utilised multielectrode arrays and motor neuron networks to study the response to hypoxia and the subsequent development of the neuronal activity over time, as well as the effect of silencing network activity during the hypoxic challenge. We found that motor neuron networks exposed to hypoxic challenge exhibited a delayed fluctuation in multiple network activity parameters compared to normoxic networks. Silencing of activity during the hypoxic challenge leads to maintained bursting activity, suggesting that functional outcomes are better maintained in these networks and that there are activity-dependent mechanisms involved in the network damage following hypoxia.
Insights
Hypoxia damages brain tissue and motor neurons, increasing neurodegenerative disease risk. Silencing neuronal activity during hypoxia preserves network function, suggesting activity-dependent damage mechanisms.
Area of Science:
- Neuroscience
- Cellular Biology
- Physiology
Background:
- Hypoxia (reduced oxygen) severely impacts brain tissue, disrupting metabolism and leading to reactive oxygen species (ROS) production and calcium imbalance.
- Neurons, especially motor neurons, are highly sensitive to oxygen deprivation due to their high energy demands, increasing susceptibility to hypoxic damage.
- Hypoxic effects can be delayed, elevating the risk of neurodegenerative diseases like amyotrophic lateral sclerosis (ALS), and impaired hypoxia-responsive factors exacerbate this risk.
Purpose of the Study:
- To investigate the long-term effects of hypoxia on neuronal network activity using multielectrode arrays.
- To explore how motor neuron networks respond to hypoxic challenges over time.
- To determine the impact of silencing network activity during hypoxia on functional outcomes.
Main Methods:
- Utilized multielectrode arrays to monitor electrophysiological network activity in motor neuron networks.
- Exposed motor neuron networks to hypoxic conditions and compared their activity to normoxic controls.
- Investigated the effect of silencing network activity during the hypoxic challenge.
Main Results:
- Motor neuron networks exposed to hypoxia showed delayed fluctuations in network activity parameters compared to normoxic networks.
- Silencing network activity during hypoxia resulted in maintained bursting activity.
- Findings suggest activity-dependent mechanisms contribute to network damage following hypoxia.
Conclusions:
- Hypoxia induces delayed changes in motor neuron network activity.
- Preserving network activity during hypoxic events may mitigate functional damage.
- Activity-dependent mechanisms play a crucial role in hypoxic neuronal injury, offering potential therapeutic targets.

