Cell Cortex

The cell cortex is a thin, dynamic layer of cytoskeletal proteins beneath the plasma membrane that helps determine cell shape, stiffness, and mechanical behavior. It consists primarily of an actin filament network connected to the membrane, where actin polymerization and depolymerization remodel the cortex while myosin motors generate contractile forces. By coordinating membrane tension, adhesion, polarity, and cell surface movements, the cortex supports processes such as cell migration, division, and tissue organization. Studying cell cortex mechanics helps explain how cells sense and respond to physical forces in development, immunity, wound healing, and disease.

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JoVE EoE - Neuroimaging

Time-Lapse Imaging of Transfected Primary Mouse Cerebral Cortex Cells

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2025

Source: Landeira, B. S.,et al., Live Imaging of Primary Cerebral Cortex Cells Using a 2D Culture System. J. Vis. Exp. (2017)The video demonstrates the use of time-lapse imaging to track fluorescently labeled cortical progenitors, monitor their division and differentiation, and study lineage development in primary cerebral cortex...

Live Imaging of Primary Cerebral Cortex Cells Using a 2D Culture System

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Cited by 2 •

2017

Live imaging is a powerful tool to study cellular behaviors in real time. Here, we describe a protocol for time-lapse video-microscopy of primary cerebral cortex cells that allows a detailed examination of the phases enacted during the lineage progression from primary neural stem cells to differentiated neurons and glia.

Isolating and Culturing Oligodendrocyte Precursor Cells from Mouse Pup Brain Cortex

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2025

This video demonstrates a technique for isolating and culturing oligodendrocyte precursor cells (OPCs) from the mouse pup brain cortex.

Detecting Cortex Fragments During Bacterial Spore Germination

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Cited by 8 •

2016

Herein, we describe a colorimetric assay to detect the presence of reducing sugars during bacterial spore germination.

Isolation of Microglia from the Cortex of an Adult Mouse Brain

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2025

The video demonstrates a technique for isolating microglia from the cortex of an adult mouse brain. First, the cortex undergoes segmentation and homogenization to remove neurons and other glial cells, preserving microglia. Following that, the cell suspension is exposed to anti-myelin magnetic microbeads and a magnetic field, effectively separating microglia and myeloid cells from myelin debris and cells containing myelin.

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