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Livneh, N.

Publications and source records attributed to Livneh, N..

2 recordsLinked to original sources

It is about time: neural temporal scaling accounts for robust hunting behavior across temperatures

Animals are often required to maintain stable performance in critical behaviors despite environmental fluctuations. Temperature broadly affects neural activity, and even localized shifts in brain temperature can alter behavior. However, whether widespread changes across the brain, such as those experienced by ectotherms, disrupt survival-critical behaviors remains unclear. Here, we show that larval zebrafish maintain robust hunting performance across a 10{degrees}C ecological range. Although behavior accelerates with temperature, spatial parameters, such as bout distance and turn angle, remain stable. This invariance results from coordinated adjustments in tail beat frequency and movement duration. Brain-wide calcium imaging revealed that behavioral temporal scaling is mirrored at the level of single neurons. A simple rate model showed that temperature-dependent changes in neural time constants can account for compensatory tail dynamics, enabling stability without active regulation. These findings suggest that neural temporal scaling can preserve performance under diffuse temperature fluctuations, supporting robust behavior in natural environments.

neuroscience↗

Distinct brain-wide neural dynamics predict social approach behavior

Social behavior is essential for animal survival and adaptation, requiring the integration of sensory cues to guide interactions with conspecifics. A key component of social behavior is approach, where animals actively move to-ward social partners to maintain group cohesion, establish affiliations, and coordinate actions. While a continuous stream of social information is encoded across sensory modalities, it remains unclear whether a distinct neural process underlies social approach. Here, we developed a novel assay in which a head-fixed, tail-free zebrafish interacts with a freely swimming conspecific, enabling precise quantification of social behavior alongside whole-brain functional imaging at cellular resolution. We demonstrate that zebrafish approach behavior is jointly shaped by spatial and temporal information from conspecifics rather than by these features acting independently. Social approach behavior is preceded by distinct brain-wide neural activity patterns emerging seconds before movement onset, characterized by increased activity in a small subset of forebrain neurons and decreased activity in midbrain and hindbrain neuronal populations. These activity patterns reliably predict upcoming approach movements from each of these regions separately. Moreover, the extent to which neural activity distinguishes approach from non-approach movements predicts individual differences in social behavior, directly linking neural dynamics to behavioral variability. Together, our findings reveal a neural mechanism underlying social approach behavior, highlighting how a distributed yet functionally coordinated network facilitates social interaction.

neuroscience↗