Pre-stretched Anisotropic Surface

A pre-stretched anisotropic surface is a material interface that is mechanically elongated before use and exhibits different physical or mechanical properties along different directions. When the pre-strain is released, transferred, or maintained, it creates directional variations in stiffness, topography, or tension that influence how cells adhere, spread, and orient. In neuroscience, such surfaces can model the aligned and mechanically heterogeneous environments encountered by neurons and glial cells, helping researchers examine cytoskeletal organization, axon guidance, and cell migration. They also support the design of neural interfaces and engineered culture platforms in which controlled mechanical cues complement biochemical signals.

Pre-stretched Anisotropic Surface - Related Videos

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JoVE EoE - Neuronal Culture Techniques

Co-Culture of Schwann Cells with DRG Neurons on a Pre-Stretched Membrane

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2025

The video demonstrates the co-culturing of dorsal root ganglion (DRG) neurons with Schwann cells. DRG neurons are first grown on a pre-stretched membrane for aligned axon growth. Schwann cells are then introduced, which attach to the axons, insulating them and promoting neural cell survival and function.

Anisotropic Polyvinyl Alcohol Phantom Fabrication for Ultrasound Elastography: Procedure and Quality Controls

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2026

This protocol describes a robust, reproducible method for fabricating anisotropic polyvinyl alcohol (PVA) phantoms—essential tools for validating ultrasound elastography techniques targeting mechanically anisotropic soft tissues (e.g., skeletal muscle).

Stretching Micropatterned Cells on a PDMS Membrane

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Cited by 6 •

2014

This manuscript presents a technique to apply or release forces on adherent cells or tissues using unidirectional stretching.

A Novel Stretching Platform for Applications in Cell and Tissue Mechanobiology

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Cited by 6 •

2014

We present in this article a novel stretching platform that can be used to investigate single cell responses to complex anisotropic biaxial mechanical deformation and quantify the mechanical properties of biological tissues.

Grafting Multiwalled Carbon Nanotubes with Polystyrene to Enable Self-Assembly and Anisotropic Patchiness

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Cited by 5 •

2018

A procedure for the synthesis of polystyrene-grafted multiwalled carbon nanotubes using successive chemical modification steps to selectively introduce the polymer chains to the sidewalls and their self-assembly via anisotropic patchiness is presented.

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