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Protocol

Protocol for Engineered Compositional Asymmetry Within Nanodiscs

1
Biophysics Graduate Group, University of California, Davis, CA 95616, USA
2
Biosciences and Biotechnology Division, Lawrence Livermore National Laboratory, Livermore, CA 94550, USA
3
Materials Science Division, Lawrence Livermore National Laboratory, Livermore, CA 94550, USA
4
Department of Biomedical Engineering, University of California, Davis, CA 95616, USA
5
Institute for Digital Molecular Analytics & Science, Nanyang Technological University, Singapore 639798, Singapore
*
Author to whom correspondence should be addressed.
Membranes 2026, 16(1), 44; https://doi.org/10.3390/membranes16010044
Submission received: 28 October 2025 / Revised: 28 November 2025 / Accepted: 5 December 2025 / Published: 16 January 2026

Abstract

Membrane proteins remain the most challenging targets for structural characterization, yet their elucidation provides valuable insights into protein function, disease mechanisms, and drug specificity. Structural biology platforms have advanced rapidly in recent years, notably through the development and implementation of nanodiscs—discoidal lipid–protein complexes that encapsulate and solubilize membrane proteins within a controlled, native-like environment. While nanodiscs have become powerful tools for studying membrane proteins, faithfully reconstituting the compositional asymmetry intrinsic to nearly all biological membranes has not yet been achieved. Proper membrane leaflet lipid distribution is critical for accurate protein folding, stability, and insertion. Here, we share a protocol for reconstituting tailored compositional asymmetry within nanodiscs through membrane extraction from giant unilamellar vesicles (GUVs) treated with a leaflet-specific methyl-β-cyclodextrin (mβCD) lipid exchange. Nanodisc asymmetry is verified through a geometric approach: biotin-DPPE-preloaded mβCD engages in lipid exchange with the outer leaflet of POPC GUVs solubilized by the lipid-free membrane scaffold protein (MSP) Δ49ApoA-I to form nanodisc structures. Once isolated, nanodiscs are introduced to the biotin-binding bacterial protein streptavidin. High-speed atomic force microscopy imaging depicts nanodisc–dimer complexes, indicating that biotin-DPPE was successfully reconstituted into a single leaflet of the nanodiscs. This finding outlines the first step toward engineering tailored nanodisc asymmetry and mimicking the native environment of integral proteins—a potentially powerful tool for accurately reconstituting and structurally analyzing integral membrane proteins whose functions are modulated by lipid asymmetry.
Keywords: lipid; asymmetry; apolipoprotein; cyclodextrin; GUVs; nanodiscs lipid; asymmetry; apolipoprotein; cyclodextrin; GUVs; nanodiscs

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MDPI and ACS Style

Carnahan, C.F.; He, W.; Wang, Y.; Coleman, M.A.; Parikh, A.N. Protocol for Engineered Compositional Asymmetry Within Nanodiscs. Membranes 2026, 16, 44. https://doi.org/10.3390/membranes16010044

AMA Style

Carnahan CF, He W, Wang Y, Coleman MA, Parikh AN. Protocol for Engineered Compositional Asymmetry Within Nanodiscs. Membranes. 2026; 16(1):44. https://doi.org/10.3390/membranes16010044

Chicago/Turabian Style

Carnahan, Christopher F., Wei He, Yaqing Wang, Matthew A. Coleman, and Atul N. Parikh. 2026. "Protocol for Engineered Compositional Asymmetry Within Nanodiscs" Membranes 16, no. 1: 44. https://doi.org/10.3390/membranes16010044

APA Style

Carnahan, C. F., He, W., Wang, Y., Coleman, M. A., & Parikh, A. N. (2026). Protocol for Engineered Compositional Asymmetry Within Nanodiscs. Membranes, 16(1), 44. https://doi.org/10.3390/membranes16010044

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