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Pfaff, S. L.

Publications and source records attributed to Pfaff, S. L..

2 recordsLinked to original sources

A spinal synergy of excitatory and inhibitory neurons coordinates ipsilateral body movements

Innate and goal-directed movements require a high-degree of trunk and appendicular muscle coordination to preserve body stability while ensuring the correct execution of the motor action. The spinal neural circuits underlying motor execution and postural stability are finely modulated by propriospinal, sensory and descending feedback, yet how distinct spinal neuron populations cooperate to control body stability and limb coordination remains unclear. Here, we identified a spinal microcircuit composed of V2 lineage-derived excitatory (V2a) and inhibitory (V2b) neurons that together coordinate ipsilateral body movements during locomotion. Inactivation of the entire V2 neuron lineage does not impair intralimb coordination but destabilizes body balance and ipsilateral limb coupling, causing mice to adopt a compensatory festinating gait and be unable to execute skilled locomotor tasks. Taken together our data suggest that during locomotion the excitatory V2a and inhibitory V2b neurons act antagonistically to control intralimb coordination, and synergistically to coordinate forelimb and hindlimb movements. Thus, we suggest a new circuit architecture, by which neurons with distinct neurotransmitter identities employ a dual-mode of operation, exerting either synergistic or opposing functions to control different facets of the same motor behavior.

neuroscience↗

Mitf is a Schwann Cell Sensor of Axonal Integrity that Drives Nerve Repair

Schwann cells respond to acute axon damage by transiently transdifferentiating into specialized repair cells that restore sensorimotor function. However, the molecular systems controlling repair cell formation and function are not well defined and consequently it is unclear whether this form of cellular plasticity has a role in peripheral neuropathies. Here we identify Mitf as a transcriptional sensor of axon damage under the control of Nrg-ErbB-PI3K-PI5K-mTorc2 signaling. Mitf regulates a core transcriptional program for generating functional repair Schwann cells following injury and during peripheral neuropathies caused by CMT4J and CMT4D. In the absence of Mitf, core genes for epithelial-to-mesenchymal transition, metabolism and dedifferentiation are misexpressed and nerve repair is disrupted. Taken together, our findings demonstrate that Schwann cells monitor axonal health using a phosphoinositide signaling system that controls Mitf, which is critical for activating cellular plasticity and counteracting neural disease. HighlightsO_LIMitf-induced Schwann cell plasticity is triggered by peripheral neuropathy. C_LIO_LINrg-ErbB signaling activates Mitf via cytoplasmic-to-nuclear translocation. C_LIO_LIMitf restores sensorimotor function following axonal breakdown. C_LIO_LIMitf regulates a core repair program across both injury and neurodegeneration. C_LI

neuroscience↗