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Miles, K. D.

Publications and source records attributed to Miles, K. D..

2 recordsLinked to original sources

Synchronicity in zebrafish locomotive circuit development mediated by electrical pacemaker interneurons

The earliest motor output in vertebrate animals is generated by clusters of early-born motor neurons that occupy distinct regions of the spinal cord, innervating stereotyped muscle groups. Even the simplest movements require coordinated activity across these motor pools, yet motor neurons are not directly interconnected and instead project to the periphery. Instead, emerging motor circuits might be synchronized by pacemaker interneurons. We hypothesize that pacemaker interneurons are required for synchronization of motor neuron activity throughout the spinal cord, coupling motor pools through electrical gap junctions to ultimately drive coordinated motor behavior. With functional imaging in the embryonic zebrafish spinal cord, we show that ipsilateral caudal interneurons possess periodic activity profiles prior to widespread motor circuit activity that transition to synchronized Ca2+ events in motor neurons throughout the spinal cord. Importantly, we also show that blockade of electrical gap junctions and ablation of pioneer pacemakers leads to desynchronization in developing motor circuits. Further, we use a genetic model of hyperactivity to gain critical insight into the consequences of errors in motor circuit formation and function, finding that Fragile X syndrome (FXS) model mutant zebrafish are hyperexcitable from the earliest phases of spontaneous behavior, show reduced sensitivity to blockade of electrical gap junctions, and have increased expression of the gap junction protein Connexin 36. Taken together, our work highlights the importance of pacemakers in the development of motor circuits and suggests that the origins of hyperactivity in neurodevelopmental disorders may be established during the initiation of motor circuit formation.

neuroscience↗

Fmrp regulates neuronal balance in embryonic motor circuit formation

Motor behavior requires the balanced production and integration of a variety of neural cell types. Motor neurons are positioned in discrete locations in the ventral spinal cord, targeting specific muscles to drive locomotive contractions. Specialized spinal interneurons modulate and synchronize motor neuron activity to achieve coordinated motor output. Changes in the ratios of spinal interneurons could drastically alter motor output by tipping the balance of inhibition and excitation onto target motor neurons. Importantly, individuals with Fragile X syndrome (FXS) and associated autism spectrum disorders often have significant motor challenges, including repetitive behaviors and epilepsy. FXS stems from the transcriptional silencing of the gene Fragile X Messenger Ribonucleoprotein 1 (FMR1), which encodes an RNA binding protein that is implicated in a multitude of crucial neurodevelopmental processes, including cell specification. We find that zebrafish fmr1 mutants generate surplus ventral lateral descending (VeLD) interneurons, an early-born cell derived from the pMN domain. These GABAergic interneurons are also associated with changes in synaptogenesis, as fmr1 mutants show increased early expression of the scaffold Gephyrin, but these postsynaptic sites fail to mature. Our work shows that Fmrp regulates the proportionate production of neurons that comprise early embryonic motor circuits. As VeLD interneurons are hypothesized to act as central pattern generators driving the earliest spontaneous movements, this imbalance could profoundly influence the formation and long-term function of motor circuits driving locomotion.

neuroscience↗