Deciphering hippocampal place codes in weak theta rhythms

G Gautam Agarwal S Seiji Akera B Brian Lustig E Eva Pastalkova A Albert K. Lee F Friedrich T. Sommer

Abstract

Abstract Local field potentials (LFPs) reflect coordination among neural populations, yet their exact relationship to neural computation remains unknown. One exception is the theta rhythm of the rodent hippocampus, which organizes sequential firing among place cells, enabling spike timing to track the animal’s path through its environment. But when the animal stops, the theta rhythm becomes irregular, which is assumed to disrupt its ability to carry spatial information. Here we challenge this assumption by developing an artificial neural network that discovers position-tuned theta rhythms (pThetas) from LFPs even in the absence of strong theta oscillations. Using recordings from male rats, we provide evidence that pTheta is distinct from the dominant theta rhythm, while reflecting rhythmic coordination among place cell populations. Our work suggests that weak and intermittent oscillations, as seen in many brain regions and species, can convey information commensurate with population spike codes when decoded using information-based rather than variance-based principles.

Article Details

Volume / Issue Vol. 17, Issue 1
Published February 13, 2026
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (6)

G

Gautam Agarwal

S

Seiji Akera

B

Brian Lustig

E

Eva Pastalkova

A

Albert K. Lee

F

Friedrich T. Sommer