ArticleBiophysical journal2023
Lipid packing is disrupted in copolymeric nanodiscs compared with intact membranes.
Article in Biophysical journal, 2023. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 19 papers.
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Who cites it
19 citing papers in PubMed, 36 citations in OpenAlex.
- Understanding charged polymer-lipid interactions in model membranes revealed by EPR and solid-state NMR: Implications for membrane protein studies.Chemistry and physics of lipids · 2026Article
- The Shape of Things to Come: α-Helical Membrane Protein Folding on the Ribosome.Chemical reviews · 2026Review
- Lipids regulate epidermal growth factor receptor activation by its ligands.Biochemical Society transactions · 2026Review
- Examining the thermotropic properties of large circularized nanodiscs.Biochimica et biophysica acta. Biomembranes · 2025Article
- Injectables Protein-Based Nanodiscs in Cancer Drug Delivery: From Bench to Clinical Potential.AAPS PharmSciTech · 2025Review
- DeFrND: detergent-free reconstitution into native nanodiscs with designer membrane scaffold peptides.Nature communications · 2025Article
- Influence of lipid saturation on the structural properties of styrene maleic acid lipid nanoparticles (SMALPs).Biochimica et biophysica acta. Biomembranes · 2025Article
- Nanodiscs remain indispensable for Cryo-EM studies of membrane proteins.Current opinion in structural biology · 2025Review
- The Conformational Equilibria of a Human GPCR Compared between Lipid Vesicles and Aqueous Solutions by IntegrativeJournal of the American Chemical Society · 2025Article
- Tunable Terpolymer Series for the Systematic Investigation of Membrane Proteins.Biomacromolecules · 2025Article
- Discovery of Therapeutic Antibodies Targeting Complex Multi-Spanning Membrane Proteins.BioDrugs : clinical immunotherapeutics, biopharmaceuticals and gene therapy · 2024Review
- The membrane insertion of the pro-apoptotic protein Bax is a Tom22-dependent multi-step process: a study in nanodiscs.Cell death discovery · 2024Article
- Influence of lipid bilayer on the structure of the muscle-type nicotinic acetylcholine receptor.Proceedings of the National Academy of Sciences of the United States of America · 2024Article
- Membrane mimetic-dependence of GPCR energy landscapes.Structure (London, England : 1993) · 2024Article
- Sulfonated polystyrenes: pH and MgEuropean polymer journal · 2023Article
- Solution NMR investigations of integral membrane proteins: Challenges and innovations.Current opinion in structural biology · 2023Review
- Do Nanodisc Assembly Conditions Affect Natural Lipid Uptake?Journal of the American Society for Mass Spectrometry · 2023Article
- Lipid packing in biological membranes governs protein localization and membrane permeability.Biophysical journal · 2023Article
- Membranes in focus.Biophysical journal · 2023Article
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2 authors at 1 institution in 1 country.
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Abstract
Discoidal lipid-protein nanoparticles known as nanodiscs are widely used tools in structural and membrane biology. Amphipathic, synthetic copolymers have recently become an attractive alternative to membrane scaffold proteins for the formation of nanodiscs. Such copolymers can directly intercalate into, and form nanodiscs from, intact membranes without detergents. Although these copolymer nanodiscs can extract native membrane lipids, it remains unclear whether native membrane properties are also retained. To determine the extent to which bilayer lipid packing is retained in nanodiscs, we measured the behavior of packing-sensitive fluorescent dyes in various nanodisc preparations compared with intact lipid bilayers. We analyzed styrene-maleic acid (SMA), diisobutylene-maleic acid (DIBMA), and polymethacrylate (PMA) as nanodisc scaffolds at various copolymer-to-lipid ratios and temperatures. Measurements of Laurdan spectral shifts revealed that dimyristoyl-phosphatidylcholine (DMPC) nanodiscs had increased lipid headgroup packing compared with large unilamellar vesicles (LUVs) above the lipid melting temperature for all three copolymers. Similar effects were observed for DMPC nanodiscs stabilized by membrane scaffolding protein MSP1E1. Increased lipid headgroup packing was also observed when comparing nanodiscs with intact membranes composed of binary mixtures of 1-palmitoyl-2-oleoyl-phosphocholine (POPC) and di-palmitoyl-phosphocholine (DPPC), which show fluid-gel-phase coexistence. Similarly, Laurdan reported increased headgroup packing in nanodiscs for biomimetic mixtures containing cholesterol, most notable for relatively disordered membranes. The magnitudes of these ordering effects were not identical for the various copolymers, with SMA being the most and DIBMA being the least perturbing. Finally, nanodiscs derived from mammalian cell membranes showed similarly increased lipid headgroup packing. We conclude that nanodiscs generally do not completely retain the physical properties of intact membranes.
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