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McGee, A. W.

Publications and source records attributed to McGee, A. W..

2 recordsLinked to original sources

Structural remodeling of peripheral taste neurons is fast and independent of taste cell turnover

Taste bud cells are constantly replaced in taste buds as old cells die and new cells migrate into the bud. The perception of taste relies on new taste bud cells integrating with existing neural circuitry, yet how these new cells connect with a taste ganglion neuron is unknown. Do taste ganglion neurons remodel to accommodate taste bud cell renewal? If so, how much of the taste axon structure is fixed and how much remodels? Here we measured the motility and branching of individual taste arbors (the portion of the axon innervating taste buds) over time with two-photon in vivo microscopy. Terminal branches of taste arbors continuously and rapidly remodel within the taste bud. This remodeling is faster than predicted by taste bud cell renewal, with terminal branches added and lost concurrently. Surprisingly, ablating new taste cells with chemotherapeutic agents revealed that remodeling of the terminal branches of taste arbors does not rely of the renewal of taste bud cells. Although the arbor structure remodeling was fast and intrinsically controlled, no new arbors were added, and few were lost over 100 days. Taste ganglion neurons maintain a stable number of nerve arbors that are each capable of high-speed remodeling. Arbor structural plasticity would permit arbors to locate new taste bud cells, while stability of arbor number could support constancy in the degree of connectivity and function for each neuron over time.

neuroscience↗

Monocular deprivation during the critical period alters neuronal tuning and the composition of visual circuitry

Abnormal visual experience during a developmental critical period degrades cortical responsiveness. Yet how experience-dependent plasticity alters the response properties of individual neurons and composition of visual circuitry is unclear. Here we measured with calcium imaging in alert mice how monocular deprivation (MD) during the developmental critical period affects binocularity, orientation, and spatial frequency tuning for neurons in primary visual cortex. Tracking the tuning properties for several hundred neurons revealed that the interconversion of monocular and binocular neurons relies on the quality of visual experience to determine the ratio of monocular neurons responsive to the contralateral and ipsilateral eye. In addition, a population of neurons more responsive to the closed eye were exchanged for neurons with tuning properties more similar to the responsive neurons altered by MD. Thus, plasticity during the critical period adapts to recent experience by both altering the tuning of responsive neurons and recruiting neurons with matching tuning properties.

neuroscience↗