Micropipette Fabrication

Micropipette fabrication is the process of forming narrow, glass-based tools that manipulate cells, tissues, or microscopic volumes in biological research. Typically, a glass capillary is heated and pulled under controlled tension, causing the softened glass to elongate and separate into fine-tipped pipettes; tip diameter, taper, and shape depend on the glass, heat, pulling force, and cooling conditions. Researchers may further bevel or polish the tip to improve penetration and fluid control. Fabricated micropipettes support microinjection, cell aspiration, electrophysiology, and patch-clamp recording, where precise geometry helps deliver reagents, measure cellular properties, or establish stable contact with cell membranes.

Micropipette Fabrication - Related Videos

Research

JoVE Journal - Bioengineering

Micropipette Aspiration of Substrate-attached Cells to Estimate Cell Stiffness

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Cited by 30 •

2012

Here we describe a quick and simple method to measure cell stiffness. The general principle of this approach is to measure membrane deformation in response to well-defined negative pressure applied through a micropipette to the cell surface. This method provides a powerful tool to study biomechanical properties of substrate-attached cells.

Fabricating Nanogaps by Nanoskiving

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Cited by 3 •

2013

The fabrication of electrically addressable, high-aspect-ratio (> 1000:1) metal nanowires separated by gaps of single nanometers using either sacrificial layers of aluminum and silver or self-assembled monolayers as templates is described. These nanogap structures are fabricated without a clean room or any photo- or electron-beam lithographic processes by a form of edge lithography known as nanoskiving.

Fabrication of Amperometric Electrodes

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Cited by 8 •

2009

This protocol describes how to generate carbon fiber electrodes. The electrodes are subsequently used to detect catecholamine release from vesicles with carbon fiber amperometry.

Fabricating Cotton Analytical Devices

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2016

To investigate simple fabrication approaches for multiple assay needs, we created a fluid-absorbing channel system made of cotton material. This device was used to establish a multiple detection platform, and solve contamination issues that commonly affect lateral flow-based biomedical devices, for clinical urinalysis of nitrite, total protein, and urobilinogen.

Fabrication and Characterization of Superconducting Resonators

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Cited by 3 •

2016

Superconducting microwave resonators are of interest for detection of light, quantum computing applications and materials characterization. This work presents a detailed procedure for fabrication and characterization of superconducting microwave resonator scattering parameters.

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