Nanodisc Stacking

Nanodisc stacking is the organization of discoidal lipid-bilayer particles into ordered, multilayered assemblies, providing a way to study membrane organization beyond isolated nanodiscs. Stacking occurs when interactions between neighboring lipid surfaces and scaffold proteins overcome repulsive forces, with lipid composition, surface chemistry, and solution conditions influencing assembly and stability. In biology, these structures can concentrate membrane proteins, model membrane–membrane contacts, and support structural or biophysical analyses of lipid environments. Controlling nanodisc stacking may improve the design of biomimetic membranes and help researchers investigate how membrane components interact in densely organized biological systems.

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Synthesis of Nanodisc-Stabilized Membrane Protein Antigens Using a Cell-Free System

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2025

Source: Gilmore, S. F., et al. Cell-Free Scaled Production and Adjuvant Addition to a Recombinant Major Outer Membrane Protein from Chlamydia muridarum for Vaccine Development. J. Vis. Exp. (2022)This video demonstrates the cell-free synthesis of nanodisc-stabilized membrane protein antigens using a dual-compartment system. The device maintains optimal conditions for efficient protein synthesis, proper folding, and stable integration into nanodiscs.

A Technique for Stabilizing Membrane Proteins in Nanodiscs

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2026

This study outlines the procedure for reconstituting the membrane protein TWIK-related acid-sensitive K+ channel 2 (Task2) into nanodiscs. The successful assembly was confirmed by single-particle cryo-electron microscopy, which yielded well-defined two-dimensional class averages.

Co-Translational Insertion of Membrane Proteins into Preformed Nanodiscs

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Cited by 5 •

2020

Co-translational insertion into pre-formed nanodiscs makes it possible to study cell-free synthesized membrane proteins in defined lipid environments without contact with detergents. This protocol describes the preparation of essential system components and the critical parameters for improving expression efficiency and sample quality.

Scaling of Engineered Vascular Grafts Using 3D Printed Guides and the Ring Stacking Method

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Cited by 6 •

2017

Scalable engineered blood vessels would improve clinical applicability. Using easily sizable 3D-printed guides, rings of vascular smooth muscle were created and stacked into a tubular form, forming a vascular graft. Grafts can be sized to meet the range of human coronary artery dimensions by simply changing the 3D-printed guide size.

A Step-by-step Method for the Reconstitution of an ABC Transporter into Nanodisc Lipid Particles

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Cited by 23 •

2012

Nanodiscs are small discoid particles that incorporate membrane proteins into a small patch of phospholipid bilayer. We provide a visual protocol that shows the step-by-step incorporation of the MalFGK2 transporter into a disc.

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