A critical initialization for biological neural networks

M Marius Pachitariu L Lin Zhong A Alexa Gracias A Amanda Minisi C Crystall Lopez C Carsen Stringer

Abstract

Abstract Intrinsically generated, brainwide neural activity displays macroscopic coordination among large populations of neurons that persists beyond the biophysical timescales of individual neurons 1–3 . It is not well understood how these macroscopic behaviours arise from microscopic, short-lived interactions between pairs of neurons. Here we show that the eigenvalue spectrum and dynamical properties of large-scale neural recordings in mice are similar to those produced by linear dynamics governed by a random symmetric matrix that is critically normalized. An exception was population activity in hippocampal area CA1, which resembled an efficient, uncorrelated neural code that may be optimized for information storage capacity. High-dimensional, global activity modes emerged in critically normalized artificial networks and persisted under sparse, clustered or spatial connectivity. These dynamics were useful for solving time-dependent tasks such as a zero-shot working memory task.

Article Details

Journal Nature
Volume / Issue Vol. 655, Issue 8124
Published July 23, 2026
Pages 990-996
ISSN 0028-0836
Publisher Nature Portfolio

Journal Info

Nature

Nature Portfolio

ISSN: 0028-0836 Health Sciences

Authors (6)

M

Marius Pachitariu

L

Lin Zhong

A

Alexa Gracias

A

Amanda Minisi

C

Crystall Lopez

C

Carsen Stringer