Medial Entorhinal Cortex

The medial entorhinal cortex (MEC) is a brain region that converts sensory and self-motion information into spatial representations, making it essential for navigation, memory, and communication with the hippocampus. Its neurons include grid cells, which fire at regularly spaced locations as an animal moves through an environment, along with head-direction and border-related cells that encode orientation and boundaries. Through these coordinated activity patterns, the MEC supports path integration, spatial mapping, and the formation of context-dependent memories. Neuroscience research on the MEC helps explain how brains represent space and provides insight into memory disorders, including changes in entorhinal circuits associated with Alzheimer’s disease.

Medial Entorhinal Cortex - Related Videos

Research

JoVE Journal - Neuroscience

Preparation of Parasagittal Slices for the Investigation of Dorsal-ventral Organization of the Rodent Medial Entorhinal Cortex

0 Views •

Cited by 36 •

2012

We describe procedures for preparation and electrophysiological recording from brain slices that maintain the dorsal-ventral axis of the medial entorhinal cortex (MEC). Because neural encoding of location follows a dorsal-ventral organization within the MEC, these procedures facilitate investigation of cellular mechanisms important for navigation and memory.

Recording of Local Field Potential in Mouse Hippocampal-Entorhinal Cortex Slices

0 Views •

2025

The video demonstrates a procedure to record the local field potential (LFP) in mouse hippocampal-entorhinal cortex slices. Electrical stimulation is provided at the CA3 stratum radiatum of the hippocampus, which causes changes in the postsynaptic potential at the CA1 stratum pyramidale. The combined change in the membrane potential of CA1 neurons, termed the local field potential, is recorded.

Ex Vivo Optogenetic Interrogation of Long-Range Synaptic Transmission and Plasticity from Medial Prefrontal Cortex to Lateral Entorhinal Cortex

0 Views •

Cited by 2 •

2022

Here we present a protocol describing viral transduction of discrete brain regions with optogenetic constructs to permit synapse-specific electrophysiological characterization in acute rodent brain slices.

Real-Time Calcium Imaging of a Mouse Medial Prefrontal Cortex Using a Miniscope

0 Views •

2025

Source: Thapa, R., et. al., Stereotaxic Viral Injection and Gradient-Index Lens Implantation for Deep Brain In Vivo Calcium Imaging. J. Vis. Exp. (2021)The video demonstrates real-time calcium imaging using a miniscope in a transduced mouse, correlating neuronal activity with behavior.

Generation of Medial Thalamus-Anterior Cingulate Cortex Slices from Mouse Brains

0 Views •

2025

The video demonstrates the preparation of medial thalamus-anterior cingulate cortex (MT-ACC) slices from mouse brains. A mouse's brain is dissected, cuts are made to expose the MT-ACC pathway, and slices are generated using a vibratome. The MT-ACC slices are then maintained in oxygenated artificial cerebrospinal fluid.

View All Results

FAQs

Related Topics