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Quilgars, C.

Publications and source records attributed to Quilgars, C..

2 recordsLinked to original sources

When Little Means a Lot: Impact of a Brief Early-life Motor Training on Mouse Neuromuscular Development.

In this study, we aimed to determine the impact of an increase in motor activity during the highly plastic period of development of the motor spinal cord and hindlimb muscles in newborn mice. A swim training regimen, consisting of two sessions per day for two days, was conducted in 1 and 2-day-old (P1, P2) pups. P3-trained pups showed a faster acquisition of a four-limb swimming pattern, accompanied by dysregulated gene expression in the lateral motor column, alterations in the intrinsic membrane properties of motoneurons (MNs) and synaptic plasticity, as well as increased axonal myelination in motor regions of the spinal cord. Network-level changes were also observed, as synaptic events in MNs and spinal noradrenaline and serotonin contents were modified by training. At the muscular level, slight changes in neuromuscular junction morphology and myosin subtype expression in hindlimb muscles were observed in trained animals. Furthermore, the temporal sequence of acquiring the adult-like swimming pattern and postural development in trained pups showed differences persisting until almost the second postnatal week. A very short motor training performed just after birth is thus able to induce functional adaptation in the developing neuromuscular system that could persist several days. This highlights the vulnerability of the neuromuscular apparatus during development and the need to evaluate carefully the impact of any given sensorimotor procedure when considering its application to improve motor development or in rehabilitation strategies.

neuroscience↗

A galanin-positive population of lumbar spinal cord neurons modulates sexual behavior and arousal

During sex, male arousal increases to the ejaculatory threshold, allowing genital sensory input to trigger ejaculation. While copulation and sexual arousal are thought to be centrally regulated by the brain, ejaculation is considered a reflex controlled by a spinal circuit. In this framework, the spinal cord is assumed to be strongly inhibited by descending input from the brain until the ejaculatory threshold, playing no role in the regulation of copulatory behavior. However, this remains untested. Here, we mapped the spinal circuit controlling the bulbospongiosus muscle, which is involved in sperm expulsion in mice. Our findings reveal that bulbospongiosus muscle-motor neurons receive input from galanin-expressing interneurons. This galanin-positive population receives genital input and, while its stimulation leads to bulbospongiosus muscle activity, the evoked muscle-potentials are dependent on spinalization, the males internal state and decrease with repeated stimulation. Moreover, ablation of galanin neurons affected the latency to ejaculate and altered the copulatory pattern. These results suggest an unexpected role of spinal circuits in the control of copulation and arousal, in addition to its established role in ejaculation.

neuroscience↗