PubMed Health⌕ Search

PubMed · 9250385

Functions for interneuronal nets in the hippocampus.

Abstract

Recent advances in the physiology of hippocampal interneurons are summarized in this article. These findings suggest that through their interconnectivity inhibitory interneurons can maintain large-scale oscillations at various frequency ranges (theta, gamma, and 200-Hz bands). We suggest that networks of inhibitory interneurons within the forebrain impose coordinated oscillatory "contexts" for the "content" carried by networks of principal cells. These oscillating inhibitory networks may provide the precise temporal structure necessary for ensembles of neurons to perform specific functions, such as memory trace formation and retrieval. In addition, synaptic inhibition is shown to reduce the somadendritic backpropagation of sodium spikes and to prevent the occurrence of calcium spikes in dendrites. These observations indicate that interneurons are in an excellent position to control neuronal plasticity and allow synaptic transmission either with or without long-term modification of synaptic strength.

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

G Buzsáki. 1997. Functions for interneuronal nets in the hippocampus.. https://pubmed.ncbi.nlm.nih.gov/9250385/

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related citations

RBFOX3 regulates hippocampal transcriptomic programs to maintain synaptic and ultrastructural integrity.

RBFOX3 is a neuron-specific RNA-binding protein essential for maintaining brain circuit homeostasis and functional connectivity. Genetic disruptions in RBFOX3 are clinically linked to cognitive impairment, epilepsy, and sleep disorders. Although global Rbfox3 knockout (Rbfox3-/-) mouse models have established its necessity in hippocampus-dependent neuronal circuits and behaviors, the underlying hippocampal transcriptomic landscape and synaptic ultrastructure remain poorly understood. To address these gaps, we integrated hippocampal RNA-sequencing from Rbfox3-/- mice with high-throughput sequencing of RNA isolated by crosslinking immunoprecipitation analysis. We identified 3,401 differentially expressed genes in the hippocampus of Rbfox3-/- mice, confirming 1,920 as candidate RBFOX3 targets. Gene Ontology enrichment analysis revealed that these candidate targets converge on pathways governing neuronal morphogenesis, synaptic transmission, dendritic development, and cognition. Furthermore, transmission electron microscopy of the hippocampal dentate gyrus revealed that while the overall presynaptic area remained unaltered, Rbfox3 deletion reduced presynaptic vesicle number, presynaptic mitochondria area, and postsynaptic density thickness. Collectively, our findings demonstrate that RBFOX3 acts as a critical regulator orchestrating the transcriptomic programs required for hippocampal structural and functional maturation, revealing that its loss compromises both the metabolic and structural architecture of the synapse.

Hippocampus↗

Phase-model analysis of coupled neuronal oscillators with multiple connections.

Synchronization of the coupled neuronal oscillators with multiple connections of different coupling nature is analyzed using the phase-model reduction method. Each coupling connection contributes to the dynamic behavior of the system in a complex nonlinear fashion. In the phase-model scheme, the contribution of the individual connections can be separated in terms of the effective coupling functions associated with each connection and a linear superposition of them provides the total effective coupling of the coupled system. The case of multiple connections with various conduction time delays is also examined, which is shown to be capable of promoting synchronization over an ensemble of spatially distributed neuronal oscillators in an efficient way.

Hippocampus↗

Remembering: functional organization of the declarative memory system.

How do brain systems support our subjective experience of recollection and our senses of familiarity and novelty? A new functional imaging study concludes that each of these functions is accomplished by a distinct component of the medial temporal lobe, shedding new light on the functional organization of this memory system.

Hippocampus↗