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Biology subjects

Seven, Y. B.

Publications and source records attributed to Seven, Y. B..

2 recordsLinked to original sources

Microglia regulate motor neuron plasticity via reciprocal fractalkine/adenosine signaling

Microglia are innate CNS immune cells that play key roles in supporting key CNS functions including brain plasticity. We now report a previously unknown role for microglia in regulating neuroplasticity within spinal phrenic motor neurons, the neurons driving diaphragm contractions and breathing. We demonstrate that microglia regulate phrenic long-term facilitation (pLTF), a form of respiratory memory lasting hours after repetitive exposures to brief periods of low oxygen (acute intermittent hypoxia; AIH) via neuronal/microglial fractalkine signaling. AIH-induced pLTF is regulated by the balance between competing intracellular signaling cascades initiated by serotonin vs adenosine, respectively. Although brainstem raphe neurons release the relevant serotonin, the cellular source of adenosine is unknown. We tested a model in which hypoxia initiates fractalkine signaling between phrenic motor neurons and nearby microglia that triggers extracellular adenosine accumulation. With moderate AIH, phrenic motor neuron adenosine 2A receptor activation undermines serotonin-dominant pLTF; in contrast, severe AIH drives pLTF by a unique, adenosine-dominant mechanism. Phrenic motor neuron fractalkine knockdown, cervical spinal fractalkine receptor inhibition on nearby microglia, and microglial depletion enhance serotonin-dominant pLTF with moderate AIH but suppress adenosine-dominant pLTF with severe AIH. Thus, microglia play novel functions in the healthy spinal cord, regulating hypoxia-induced neuroplasticity within the motor neurons responsible for breathing.

physiology↗

Daily fluctuations in spinal adenosine determine mechanisms of respiratory motor plasticity

Plasticity is a fundamental property of the neuromotor system controlling breathing. One key example of respiratory motor plasticity is phrenic long-term facilitation (pLTF), a persistent increase in phrenic nerve activity after exposure to intermittent low oxygen or acute intermittent hypoxia (AIH). pLTF can arise from distinct intracellular signaling cascades initiated by serotonin and adenosine; these cascades interact via powerful crosstalk inhibition. We demonstrate the serotonin/adenosine balance varies dramatically with time-of-day and details of the AIH protocol. Using a "standard" AIH protocol, the mechanism driving pLTF shifts from serotonin-dominant, adenosine-constrained during rest, to adenosine-dominant, serotonin-constrained in the active phase. This mechanistic flip results from daily changes in basal spinal adenosine levels across time-of-day combined with hypoxia-evoked spinal adenosine release. Since AIH is emerging as a promising therapeutic modality to restore respiratory (and non-respiratory) movements in people with spinal injury or ALS, new knowledge that time-of-day and protocol details impact mechanisms driving pLTF has experimental, biological and translational implications.

physiology↗