Cornu Ammonis Subfields

Cornu Ammonis subfields are anatomically and functionally distinct regions of the hippocampus, commonly designated CA1 through CA4, that organize neural processing underlying learning and memory. Their specialized cellular architecture and connectivity support information flow through hippocampal circuits: dentate gyrus granule cells project to CA3, CA3 pyramidal neurons connect to CA1 through Schaffer collateral pathways, and CA1 integrates and relays processed signals. Studying these subfields helps researchers relate hippocampal structure to spatial navigation, memory formation, and synaptic plasticity. It also provides a framework for investigating how neurological disorders, including epilepsy and Alzheimer’s disease, selectively affect hippocampal circuitry.

Cornu Ammonis Subfields - Related Videos

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JoVE EoE - Neurophysiology

Generating Local Cornu Ammonis 1 (CA1) Gamma Oscillations Using Tetanic Stimulations in a Hippocampal Brain Slice

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2025

This video demonstrates the procedure of inducing local CA1 gamma oscillations in a CA1 hippocampal mouse brain slice using tetanic simulations. This method is important to understand the neuronal network activity.

Organotypic Hippocampal Slice Cultures As a Model to Study Neuroprotection and Invasiveness of Tumor Cells

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Cited by 18 •

2017

Organotypic hippocampal slice cultures (OHSC) represent an in vitro model that simulates the in vivo situation very well. Here we describe a vibratome-based improved slicing protocol to obtain high quality slices for use in assessing the neuroprotective potential of novel substances or the biological behavior of tumor cells.

High-resolution In Vivo Manual Segmentation Protocol for Human Hippocampal Subfields Using 3T Magnetic Resonance Imaging

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Cited by 9 •

2015

The goal of this manuscript is to study the hippocampus and hippocampal subfields using MRI. The manuscript describes a protocol for segmenting the hippocampus and five hippocampal substructures: cornu ammonis (CA) 1, CA2/CA3, CA4/dentate gyrus, strata radiatum/lacunosum/moleculare, and subiculum.

In Vivo Two-Photon Imaging of Microglial Dynamics in the Mouse Hippocampus

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2025

Source: Kamei, R., et. al., In Vivo Chronic Two-Photon Imaging of Microglia in the Mouse Hippocampus. J. Vis. Exp. (2022)The video demonstrates the setup and imaging process for in vivo two-photon microscopy of microglial dynamics in the hippocampal CA1 (Cornu ammonis 1) and dentate gyrus, ensuring optimal optical alignment and structural integrity assessment.

Electroencephalography-Based Recording Technique to Record the Epileptiform Activity

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2025

This video describes the technique for recording the epileptiform activity of rhinal cortex-hippocampus organotypic slices ex vivo using electrophysiology or EEG set-up. This helps to study the dynamics and progression of epileptogenesis and screen potential therapeutic targets to treat epilepsy.

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