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Updated: Apr 4, 2026

Optogenetic Entrainment of Hippocampal Theta Oscillations in Behaving Mice
Published on: June 29, 2018
Theta-rhythmic drive between medial septum and hippocampus in slow-wave sleep and microarousal: a Granger causality
1J Crayton Pruitt Family Department of Biomedical Engineering, University of Florida, Gainesville, Florida; and.
Abstract:
Medial septum (MS) plays a critical role in controlling the electrical activity of the hippocampus (HIPP). In particular, theta-rhythmic burst firing of MS neurons is thought to drive lasting HIPP theta oscillations in rats during waking motor activity and REM sleep. Less is known about MS-HIPP interactions in nontheta states such as non-REM sleep, in which HIPP theta oscillations are absent but theta-rhythmic burst firing in subsets of MS neurons is preserved. The present study used Granger causality (GC) to examine the interaction patterns between MS and HIPP in slow-wave sleep (SWS, a nontheta state) and during its short interruptions called microarousals (a transient theta state). We found that during SWS, while GC revealed a unidirectional MS→HIPP influence over a wide frequency band (2-12 Hz, maximum: ∼8 Hz), there was no theta peak in the hippocampal power spectra, indicating a lack of theta activity in HIPP. In contrast, during microarousals, theta peaks were seen in both MS and HIPP power spectra and were accompanied by bidirectional GC with MS→HIPP and HIPP→MS theta drives being of equal magnitude. Thus GC in a nontheta state (SWS) vs. a theta state (microarousal) primarily differed in the level of HIPP→MS. The present findings suggest a modification of our understanding of the role of MS as the theta generator in two regards. First, a MS→HIPP theta drive does not necessarily induce theta field oscillations in the hippocampus, as found in SWS. Second, HIPP theta oscillations entail bidirectional theta-rhythmic interactions between MS and HIPP.
Insights
The medial septum (MS) influences the hippocampus (HIPP) even without theta oscillations during sleep. During microarousals, both brain regions show bidirectional theta activity, changing our understanding of MS-HIPP interactions.
Area of Science:
- Neuroscience
- Computational Neuroscience
- Systems Neuroscience
Background:
- The medial septum (MS) is crucial for hippocampal (HIPP) electrical activity, particularly theta oscillations during waking and REM sleep.
- The interaction between MS and HIPP during non-theta states, like non-REM sleep, is less understood, despite preserved MS theta-rhythmic firing.
Purpose of the Study:
- To investigate the Granger causality (GC) interaction patterns between MS and HIPP during slow-wave sleep (SWS) and microarousals.
- To clarify the role of MS in theta generation and MS-HIPP interactions in different brain states.
Main Methods:
- Utilized Granger causality (GC) analysis to assess directed interactions between MS and HIPP.
- Analyzed neural activity during slow-wave sleep (SWS) and transient microarousals in rats.
Main Results:
- During SWS (non-theta state), GC showed unidirectional MS→HIPP influence (2-12 Hz) without hippocampal theta peaks.
- During microarousals (theta state), theta peaks appeared in both MS and HIPP, with bidirectional GC (MS↔HIPP) of equal magnitude.
- The primary difference in GC between SWS and microarousals was the presence of HIPP→MS influence during microarousals.
Conclusions:
- A MS→HIPP theta drive does not always induce hippocampal theta oscillations, as observed in SWS.
- Hippocampal theta oscillations are associated with bidirectional, theta-rhythmic interactions between the MS and HIPP.
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