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Biology subjects

Telian, G. I.

Publications and source records attributed to Telian, G. I..

2 recordsLinked to original sources

Paraventricular thalamus gates hippocampal coding of salient experiences.

Adaptive behavior requires neural circuits that encode salient stimuli to guide approach and avoidance. The hippocampal ventral subiculum (vSub) encodes information related to avoidance and reward seeking, yet how upstream inputs shape its representations of salient appetitive and aversive events remains unclear. Here, we show that a projection from the anterior paraventricular thalamus (PVT) to vSub carries an aversive-state signal that biases vSub representations toward threat-related information. In anxiety-provoking environments, anterior PVT to vSub activity is associated with avoidance behavior and enhanced vSub discrimination of threat and safety. During associative learning, this circuit preferentially promotes vSub responses to threat-predictive cues and aversive outcomes while constraining representations of rewarding stimuli. These findings refine canonical limbic circuit models by identifying a direct thalamic influence over hippocampal coding of rewarding versus aversive stimuli and the approach-avoidance behaviors they guide.

neuroscience↗

Spatial integration during active tactile sensation drives elementary shape perception

Active haptic sensation is critical for object identification and manipulation, such as for tool use in humans, or prey capture in rodents. The neural circuit basis for recognizing objects through active touch alone is poorly understood. To address this gap, we combined optogenetics, two photon imaging, and high-speed behavioral tracking in mice solving a novel surface orientation discrimination task with their whiskers. We found that orientation discrimination required animals to summate input from multiple whiskers specifically along the whisker arc. Many animals discriminated the orientation of the stimulus per se, as their performance was invariant to the specific location of the presented stimulus. Two photon imaging showed that populations of neurons in the barrel cortex encoded each of the discriminated orientations, and this coding depended on integration over the whisker array. Finally, acute optogenetic inactivation of the barrel cortex strongly impaired surface orientation discrimination, and even cell-type specific optogenetic suppression of layer 4 excitatory neurons degraded performance, implying a role for superficial layers in this computation. These data suggest a model in which spatial summation over an active haptic array generates representations of an objects surface orientations. These computations may facilitate the encoding of complex three-dimensional objects during active exploration.

neuroscience↗