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Luh, M.

Publications and source records attributed to Luh, M..

2 recordsLinked to original sources

Coordination of local and global responses in individual mouse thalamic local interneurons

Inhibitory interneurons, featuring presynaptic release sites and spiking activity in dendrites, present a puzzle in their signal organization and coordination. We investigated this in local interneurons (LINs) of the primary visual thalamus using two-photon calcium imaging in awake mice with both local and full-screen visual stimuli. Dendrites in single LINs showed consistent global responses to full-screen stimuli but varied responses to local stimuli. Dendrites from the same LIN exhibited different receptive fields that followed retinotopic progression. The similarity between dendritic and somatic responses decreased with increasing distance. Weak local stimuli could excite dendrites locally, while salient local stimuli triggered global responses. Salient global stimuli further enhanced motion selectivity, preference consistency, and peak responses. Thus, LINs leverage both local and global dendritic activation to perform spatially-organized, feature-selective, and size-dependent motion processing, providing new insights into the complexity and precision of sensory processing in the early visual system. HighlightsO_LILocal interneurons (LINs) exhibit diverse yet sharp tuning to moving stimuli. C_LIO_LIdisplay an orderly shift of receptive field centers along their dendrites. C_LIO_LIThe propagation of calcium signals under local stimuli depends on stimulus strength. C_LIO_LIFull-screen stimuli enhance motion selectivity and peak responses. C_LI

neuroscience↗

Coordination of distinct sources of excitatory inputs enhances motion selectivity in the mouse visual thalamus

Multiple sources innervate the visual thalamus to influence image-forming vision prior to the cortex, yet it remains unclear how non-retinal and retinal input coordinate to shape thalamic visual selectivity. Using dual-color two-photon calcium imaging in the thalamus of awake mice, we observed similar coarse-scale retinotopic organization between axons of superior colliculus neurons and retinal ganglion cells, both providing strong converging excitatory input to thalamic neurons. At a fine scale of [~]10 {micro}m, collicular boutons often shared visual feature preferences with nearby retinal boutons. Inhibiting collicular input significantly suppressed visual responses in thalamic neurons and specifically reduced motion selectivity in neurons preferring nasal-to-temporal motion. The reduction in motion selectivity could be the result of silencing sharply tuned direction-selective colliculogeniculate input. These findings suggest that the thalamus is not merely a relay but selectively integrates inputs from multiple regions to build stimulus selectivity and shape the information transmitted to the cortex. HIGHLIGHTSChronic dual-color calcium imaging reveals diverse visual tuning of collicular axonal boutons. Nearby collicular and retinal boutons often share feature preferences at [~]10 {micro}m scale Silencing of collicular input suppresses visual responses in the majority of thalamic neurons. Silencing of collicular input reduces motion selectivity in thalamic neurons.

neuroscience↗