Causal evidence of a line attractor encoding an affective state.

Vinograd, Amit; Nair, Aditya; Kim, Joseph H; Linderman, Scott W; Anderson, David J · Nature · 2024

basic_science · Level V

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Abstract

Continuous attractors are an emergent property of neural population dynamics that have been hypothesized to encode continuous variables such as head direction and eye position<sup>1-4</sup>. In mammals, direct evidence of neural implementation of a continuous attractor has been hindered by the challenge of targeting perturbations to specific neurons within contributing ensembles<sup>2,3</sup>. Dynamical systems modelling has revealed that neurons in the hypothalamus exhibit approximate line-attractor dynamics in male mice during aggressive encounters<sup>5</sup>. We have previously hypothesized that these dynamics may encode the variable intensity and persistence of an aggressive internal state. Here we report that these neurons also showed line-attractor dynamics in head-fixed mice observing aggression<sup>6</sup>. This allowed us to identify and manipulate line-attractor-contributing neurons using two-photon calcium imaging and holographic optogenetic perturbations. On-manifold perturbations yielded integration of optogenetic stimulation pulses and persistent activity that drove the system along the line attractor, while transient off-manifold perturbations were followed by rapid relaxation back into the attractor. Furthermore, single-cell stimulation and imaging revealed selective functional connectivity among attractor-contributing neurons. Notably, individual differences among mice in line-attractor stability were correlated with the degree of functional connectivity among attractor-contributing neurons. Mechanistic recurrent neural network modelling indicated that dense subnetwork connectivity and slow neurotransmission<sup>7</sup> best recapitulate our empirical findings. Our work bridges circuit and manifold levels<sup>3</sup>, providing causal evidence of continuous attractor dynamics encoding an affective internal state in the mammalian hypothalamus.

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