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Biochimica et Biophysica Acta (BBA) - Biomembranes

Elsevier BV

All preprints, ranked by how well they match Biochimica et Biophysica Acta (BBA) - Biomembranes's content profile, based on 36 papers previously published here. The average preprint has a 0.02% match score for this journal, so anything above that is already an above-average fit. Older preprints may already have been published elsewhere.

1
Refining structural models of membrane proteins withdisordered domains in phospholipid nanodiscs

Pedersen, M. C.; Johansen, N. T.; Roche, J.; Jaarvaa, M.; Tornroth-Horsefield, S.; Arleth, L.

2022-10-31 biophysics 10.1101/2022.10.28.512841 medRxiv
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Small-angle scattering can be used to derive structural information about membrane proteins reconstituted in suitable carrier systems enabling solubilization of the membrane proteins in question. Since the studies are done in solution, there is no need for crystallization or deposition on sample grids, and it is in principle possible to obtain structural information about intrinsically disordered regions which cannot be resolved by crystallography or the quantitative link to which is hard to establish using e.g. electron microscopy methods. In this study, tetramers of the gated spinach aquaporin SoPIP2;1 were reconstituted into nanodiscs and small-angle x-ray scattering data were recorded. From these data, we refine structural models of the entire nanodisc-membrane protein complex including the flexible regions using newly developed models based on Fast Debye sums. We introduce software for these computations available via online repositories and discuss the implications and limitations of these methods. Author summaryWhen it comes to investigating the structure and function of the proteins, a particular class of proteins are known to be cumbersome and problematic: membrane proteins that reside in the cell membrane and regulate and facilitate a number of critical biological processes. Such proteins can often not be studied by conventional means as they unravel and denature structurally or even precipitate in solution. To add insult to injury, such membrane proteins also often contain parts that are intrinsically disordered rendering them irresolvable by e.g. traditional crystallographic techniques and hard to describe structurally. Here, we present a combined computational and experimental approach (as well as the necessary software) to analyze and determine the structure of such proteins in close-to-native conditions in so-called nanodiscs, a biological carrier systems, using small-angle scattering and molecular simulations.

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Dynamics of lipids in the yeast lipid droplets

Fomina, M.; Mamontov, E.; O'Neill, H.; Close, D.; Borreguero, J.; Morrell-Falvey, J.

2021-10-24 biophysics 10.1101/2021.10.22.465485 medRxiv
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The physical properties and chemical composition of lipid droplets inside cells of the yeast Cryptococcus curvatus were investigated using quasi-elastic neutron scattering and mass spectrometry with complementary surface modeling using 3D microscopy. With temperature decrease from 310 to 280 K, their phase remained fluid, i.e., the droplets remained in the physiological state, unlike synthetic lipid membranes that transition to a gel phase. The lipid dynamics in the droplet was described by a model implying diffusion of the lipid and its hydrocarbon chains. The diffusion coefficient of the lipid chains (274x10-3 [A]2/ps at 310 K) was much higher than that observed in a synthetic lipid membrane because of the larger volume (up to 12 [A]) for the local dynamics in the droplet. These physical properties were correlated with the types of lipids composing the droplet. Based on that, the lipid packing and resulting energetic value of the yeast droplets are discussed in relation to their usefulness as biofuels.

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The best of both worlds: A new lipid complex has micelle and bicelle-like properties

Rieth, M. D.

2022-03-01 biophysics 10.1101/437327 medRxiv
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Bicelles have been demonstrated to be a valuable tool for studying membrane protein interactions and structure in vitro. They are distinguished by a distinct lipid bilayer that mimics the plasma membrane of cells making it more native-like than its detergent micelle counter-part. Bicelles are typically comprised of a long-chain phospholipid such as dimyristoylphosphatidylcholine (DMPC) and a short-chain phospholipid such as dihexanoylphosphatidylcholine (DHPC). When mixed together in solution DMPC-DHPC bicelles assume a discoidal structure comprised of a heterogeneous arrangement where the short-chain lipids gather around the rim of the disk and the long-chain lipids form the flat, planar, bilayer region. In this study, the nonionic surfactant, C8E5, was used to prepare mixtures with DMPC to determine if it adopts properties similar to bicelles with a q [≥] 0.5. At q [≥] 0.5, DMPC-DHPC bicelles are bilayered and DMPC is sequestered from the detergent micelle-like DHPC. Mixtures of DMPC and C8E5 were prepared at various q values, a parameter used to describe the mole ratio of DMPC to DHPC in the preparation of bicelles. Employing biophysical methods like dynamic light scattering, 31P-NMR and analytical ultracentrifugation, properties of these lipid-detergent complexes are described. Interestingly they adopted a spherical-shaped micellar structure morphology and did not assume a discoidal shape typical of bicelles at q [≥] 0.5. However, they appear to retain bilayer-like properties that may prove beneficial for in vitro biophysical studies of membrane proteins.

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Impact of viral membrane oxidation on SARS-CoV-2 spike protein transmembrane anchoring stability

Ghasemitarei, M.; Gyursanszky, C.; Karttunen, M.; Ala-Nissila, T.

2026-03-27 biochemistry 10.64898/2026.03.27.714475 medRxiv
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Reactive oxygen species generated during inflammation can oxidize viral envelope lipids, with outcomes ranging from modulated infectivity to viral inactivation. For SARS-CoV-2, the molecular mechanisms by which membrane lipid oxidation influences spike protein anchoring remain poorly understood. We use all-atom molecular dynamics (MD) simulations to quantify how graded oxidation of 1-palmitoyl-2-oleoyl-sn-glycero-3-phosphocholine (POPC) affects the anchoring of the SARS-CoV-2 spike transmembrane (TM) region in an endoplasmic-reticulum-Golgi intermediate compartment (ERGIC)-like multicomponent membrane. Viral envelopes containing 0, 25, 50, 75, and 100% oxidized POPC (PoxnoPC) corresponding to 0 - 55% oxidation of all PO-type phospholipids were simulated with the spike TM helix and cytoplasmic tail embedded in a POPC/POPE/POPI/POPS/cholesterol mixture. Steered MD and umbrella sampling were used to calculate the potential of mean force (PMF) for extracting the TM+CT region along the membrane normal. Partial oxidation (25 - 75% POPC) produced reductions in the detachment barrier that were not statistically distinguishable from the native system within the sampling uncertainty, whereas full POPC oxidation lowered the anchoring free energy by about 23% (from 606 {+/-} 39 to 464 {+/-} 38 kJ mol-1), indicating that oxidation of roughly half of the glycerophospholipids can measurably weaken spike-membrane coupling. Despite this reduction, the remaining barrier (about 180kBT ) is still large, suggesting that oxidation alone may be insufficient for spontaneous spike detachment and likely acts synergistically with mechanical forces during fusion or immune engagement. Analysis of acyl-chain order parameters, area per lipid, membrane thickness, number-density profiles, and lateral lipid clustering reveals that POPC peroxidation decreases lipid order, thins and softens the bilayer, and disrupts cholesterol-stabilized clusters that refer to large cooperative lipid assemblies (>10 lipids) identified via RDF-based clustering. These oxidation-induced changes reduce hydrophobic matching around the TM helix and facilitate its extraction from the viral envelope. Our results provide a mechanistic link between lipid peroxidation, membrane nanostructure, and spike anchoring, supporting lipid oxidation for example during cold atmospheric plasma or ozone treatment as a physically grounded contributing antiviral mechanism against SARS-CoV-2.

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A Dynamic NMR Lineshape Simulation Framework for Lipid Diffusion and Membrane Thinning in Bicelles and Nanodiscs

Wi, S.; Ramamoorthy, A.

2026-02-26 biophysics 10.64898/2026.02.24.707804 medRxiv
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Membrane mimetics such as lipid bicelles and nanodiscs have become indispensable platforms for high-resolution structural, dynamical, and functional studies of membrane-associated systems by NMR spectroscopy, cryo-electron microscopy, and X-ray crystallography. In particular, magnetically aligned bicelles and nanodiscs uniquely enable the measurement of anisotropic NMR interactions, providing direct access to membrane geometry, lipid order, thickness, and molecular dynamics. However, the quantitative interpretation of such anisotropic NMR spectra has been hindered by the absence of physically rigorous dynamic models that properly account for the coupled effects of molecular diffusion, orientational distribution, and membrane deformation. Here, we present a comprehensive theoretical framework for the dynamic simulation of 31P chemical shift anisotropy and 14N quadrupolar NMR lineshapes in bicelles and nanodiscs. The model explicitly incorporates lipid diffusion, orientational distributions on curved membrane geometries, and membrane thinning, enabling physically consistent and quantitatively accurate reproduction of experimentally observed anisotropic lineshapes. Using this framework, we simulate dynamic 31P and 14N NMR spectra of DMPC/DHPC bicelles and nanodiscs and demonstrate how membrane thinning and lipid diffusion govern the apparent reduction of anisotropic interactions commonly observed upon peptide or protein association. This approach establishes a general physical basis for interpreting anisotropic NMR spectra of aligned membrane mimetics and provides a unified platform for quantitative investigation of membrane structure, dynamics, and membrane-active biomolecular interactions.

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Comparing the conformational diversity of α1A-Adrenoceptor in Micelles and Phospholipid Bilayer Models

Tanipour, M. H.; Wu, F.-J.; Sethi, A.; Scott, D.; Gooley, P.

2026-08-11 biochemistry 10.64898/2026.08.10.743833 medRxiv
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1A-adrenoceptor (1A-AR) is a class A G-protein coupled receptor (GPCR) that stimulates smooth muscle contraction in response to adrenaline and noradrenaline. GPCRs exist in a dynamic equilibrium between multiple conformational states. Ligand binding induces structural rearrangements via conserved microswitches, which are thought to shift the equilibrium and trigger signalling. For structural and biochemical studies, GPCRs must be solubilised from the membrane, typically using detergent micelles. However, detergents can disrupt native dynamics of membrane proteins, potentially confounding experimental results. To address this, phospholipid bilayer mimetics such as nanodiscs and saposin nanoparticles (SNPs) have been developed to provide a more native-like environment. Thermostabilised 1A-AR serves as a GPCR prototype and can be expressed and isotopically labelled for NMR purposes. To investigate how membrane mimetics influence the conformational diversity of 1A-AR, we compared 1H 13C3-HMQC NMR experiments of 13CH3-Met labelled 1A-AR incorporated into either DDM, LMNG, or SNPs, in presence of ligands with varying efficacies. Several methionine residues are positioned near key microswitches, including M2035.57, located closed to the G protein binding site. Its resonance has been proposed as a readout of receptor conformational state, shifting with ligand efficacy. Spectra of 13CH3-Met labelled 1A-AR in LMNG closely resembled those in DDM with some temperature-dependent dynamic variation. In contrast, incorporation into SNPs led to a complete loss of M2035.57 signal, consistent with an intermediate exchange rate. These findings demonstrate that the membrane environment can profoundly influence conformational dynamics in GPCR NMR studies. Our results highlight the need to carefully consider membrane environment when interpreting NMR data and underscore the value of benchmarking against biologically relevant controls.

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Effect of very long-chain lipids on the organization of biological membranes: A simulation perspective

Quas, A.; Rickhoff, C.; Wedlich-Soldner, R.; Heuer, A.

2025-04-10 biophysics 10.1101/2025.04.08.647797 medRxiv
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Lipids in all biological membranes are distributed heterogeneously across the bilayer. A particularly striking example for this asymmetry is the yeast plasma membrane (PM), which exhibits a high concentration of very long-chain sphingolipids (SL) in its outer leaflet. Experimental observations indicate the existence of highly ordered gel-like PM domains that are enriched in SL but depleted in the major yeast sterol ergosterol. For a better mechanistic understanding of these unusual domains we have performed coarse-grained molecular dynamics simulations with membranes containing varying concentrations of very long-chain lipids. In agreement with experimental results we observed formation of a gel phase, with high order parameter of the acyl chains and hexagonal arrangement of lipid tails, at higher concentrations of very long-chain lipids. Our simulations also show that ergosterol is excluded from these gel regions and that, even when embedded into a liquid disordered phase, gels remain stable on the simulation time scale.

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Lipid specificity of action of SARS-CoV-2 fusion peptide fragments on model membranes

Shekunov, E. V.; Volynsky, P. E.; Efimova, S. S.; Aliper, E. T.; Efremov, R. G.; Ostroumova, O. S.

2024-12-11 biophysics 10.1101/2024.12.11.627892 medRxiv
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The study focuses on investigating the interaction of SARS-CoV-2 fusion peptide fragment with model membranes of various lipid composition to elucidate the molecular mechanisms of peptide-derived membrane fusion. The work utilized the short fragment of SARS-CoV-2 fusion peptide which is homologous to 816-827 region of the native SARS-CoV-2 FP (FP816-827) and contains the highly conserved LLF motif responsible for membrane fusion, and its ineffective analogue (mFP816-827), where LLF motif was replaced for AAA. Using fluorescence fusion assay, it was demonstrated that the LLF motif plays a key role in inducing liposome fusion, whereas its replacement completely abolishes this capability. The fusogenic activity of the peptide strictly depended on the vesicle lipid composition. It was potentiated by phosphatidylethanolamine and inhibited by phosphatidylserine. Molecular dynamics revealed that both peptides predominantly adopt an -helical conformation; however, the native peptide interacts more strongly with the hydrophobic core of the membrane by increasing peptide-lipid hydrophobic contacts, while the mutant version exhibits a more superficial localization. Differential scanning microcalorimetry data indicated that the ability of FP816- 827 to disturb lipid packing increased with decreasing membrane lipid tail length. The molecular mechanisms underlying the fusogenic activity of the SARS-CoV-2 fusion peptide were identified, specifically its ability to cluster phospholipid head groups in its own vicinity. As a result, local regions with positive spontaneous curvature are formed in the outer monolayer, facilitating membrane fusion. The findings highlight the role of membrane composition and lipid architecture in the mechanism of viral fusion with host cells.

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Oligomeric polymorphism of HIV-1 Vpu protein in lipid environment and in solution

Majeed, S.; Adetuyi, O.; Islam, M. M.; Zhao, B.; Georgieva, E. R.

2022-08-26 biochemistry 10.1101/2022.08.26.505453 medRxiv
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The HIV-1 encoded protein Vpu forms an oligomeric ion channel/pore in membranes and interacts with multiple host proteins to support virus lifecycle. However, Vpu molecular mechanisms are currently not well understood. The structures of full-length Vpu in its monomeric and oligomeric forms are unknown, although both the monomer and oligomer are deemed important. Here, we report on the diversity of Vpu oligomeric structures and how the environment affects the Vpu oligomer formation. We produced a uniquely designed MBP-Vpu chimera protein in E. coli in soluble form. We subjected this protein to analytical size exclusion chromatography (SEC) and negative staining electron microscopy (nsEM). Strikingly, we found that MBP-Vpu forms stable oligomers in solution, presumably driven by Vpu transmembrane domain self-association. Our coarse modeling suggests that these oligomers are pentamers, in agreement with the pentameric membrane-bound Vpu. To the best of our knowledge, this is the first observation of Vpu self-association out of lipid membrane environment. We further found that MBP-Vpu oligomer stability decreases when the protein was reconstituted in lipid membrane mimetics, such as {beta}-DDM, and mixtures of lyso PC/PG or DHPC/DHPG--In these cases significant oligomer heterogeneity was observed with oligomeric order lesser than that of MBP-Vpu oligomer in solution, but larger oligomers were observed as well. Importantly, we found that in lyso PC/PG, above certain protein concentration, MBP-Vpu forms linear array-like structures, which is also novel. Thus, our studies provide unique information about Vpu protein quaternary organization by capturing multiple Vpu oligomeric structures, which we believe are physiologically relevant.

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Outer membrane vesicles as realistic models of bacterial membranes in interaction studies by Surface Plasmon Resonance

Bril'kov, M.; Stenbakk, V.; Jakubec, M.; Vasskog, T.; Kristoffersen, T.; Cavanagh, J. P.; Ericson, J. U.; Isaksson, J.; Flaten, G. E.

2023-07-07 molecular biology 10.1101/2023.07.07.548064 medRxiv
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One way to mitigate the ongoing antimicrobial resistance crisis is to discover and develop new classes of antibiotics. As all antibiotics at some point needs to either cross or interact with the bacterial membrane, there is a need for representative models of bacterial membranes and efficient methods to characterize the interactions to novel antimicrobials - both to generate new knowledge and to screen compound libraries. Since the bacterial cell envelope is a complex assembly of lipids, lipopolysaccharides, membrane proteins and other components, constructing realistic synthetic liposome-based models of the membrane is both difficult and expensive. We here propose to let the bacteria do the hard work for us. Outer membrane vesicles (OMVs) are naturally secreted by Gram-negative bacteria, playing a role in communication between bacteria, as virulence factors, molecular transport or being a part of the antimicrobial resistance mechanism. OMVs consist of the bacterial outer membrane and thus inherit many components and properties of the native outer cell envelope. In this work we have isolated and characterized OMVs from E. coli mutant strains and clinical isolates of the ESKAPE members Klebsiella pneumoniae, Acinetobacter baumannii and Pseudomonas aeruginosa. The OMVs were shown to be representative models for the bacterial membrane in terms of lipid composition with strain specific variations. The OMVs were further used to probe the interactions between OMV and antimicrobial peptides (AMPs) as model compounds by Surface Plasmon Resonance (SPR) and provide proof-of-principle that OMVs can be used as an easily accessible and highly realistic model for the bacterial surface in interaction studies. This further enables direct monitoring of the effect of induction by antibiotics, or the response to host-pathogen interactions.

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Interplay Between Cholesterol Concentration and Membrane Curvature in Liposomes Revealed by Molecular Dynamics Simulations

Khodadadi, E.; Derakhshani-Molayousefi, M.; Khodadadi, E.; Moradi, M.

2026-07-17 biophysics 10.64898/2026.07.15.738831 medRxiv
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Liposomes are widely used as model membranes and nanoscale drug delivery systems, where cholesterol plays a key role in regulating bilayer structure and dynamics. However, how cholesterol concentration influences the structure and dynamics of liposome and how this influence is dependent on membrane curvature are not fully understood at the molecular level. In this work, coarse-grained molecular dynamics simulations using the MARTINI force field were employed to examine the concentration-dependent behavior of cholesterol in planar and curved membranes composed of cholesterol and unsaturated phospholipids, namely DOPC. More specifically, a planar lipid bilayer and an approximately 50-nm liposome were simulated to represent two extreme limits of small and large curvature, respectively. Increasing cholesterol concentration led to thicker membranes and reduced solvent exposure, consistent with cholesterols condensing effect. Membrane curvature enhanced interleaflet coupling and increased tail interdigitation relative to planar systems. Notably, DOPC flip-flop rate in spherical bilayers exhibited a non-monotonic dependence on cholesterol content, reflecting a balance between curvature-induced packing stress and cholesterol-driven ordering. These findings provide molecular-level insight into how cholesterol and curvature together shape the structure and dynamics of unsaturated lipid bilayers.

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HIV-1 Gag Specificity For Pip2-Containing Membranes Might Be Driven By Macromolecular Electric Properties Rather Than Molecular Affinities

Perez Socas, L. B.; Ambroggio, E. E.

2022-08-26 cell biology 10.1101/2022.08.25.505363 medRxiv
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The HIV-1 assembly occurs at the plasma membrane, where the GAG polyprotein plays a crucial role. The GAG-membrane association is directed by the matrix domain (MA), which is myristoylated and has a highly basic region that interacts with the anionic lipids. Several evidence suggests that the presence of phosphatidylinositol-(4,5)-bisphosphate (PIP2) highly influence this binding. In addition, MA also interacts with nucleic acids, which is proposed to be important for the specificity of GAG for PIP2-containing membranes. It is proposed that RNA could have a chaperone function when interacting with the MA domain, preventing GAG from associating with unspecific lipid interfaces. Here, we study the interaction of MA with monolayer and bilayer membrane systems, focused on the specificity for PIP2 and on the possible effects of a GAG N-terminal peptide to impair the binding for either RNA or membrane. We found that RNA decreases the kinetics of the protein association with lipid monolayers but without any effect on the selectivity for PIP2. Interestingly, for bilayer systems, this selectivity increases in presence of both the peptide and RNA, even for highly negative charged compositions, where MA by itself doesnt discriminate between membranes with or without PIP2. Therefore, we propose that the specificity of MA for PIP2-membranes might be related to the electrostatic properties of both membrane and protein local environments, rather than a simple difference in molecular affinities. This scenario gives a new understanding of the regulation mechanism with a macromolecular view instead of considering molecular interactions within a ligand-receptor model. ImportanceHIV-1 virions are formed at the PM of infected cells through a direct interaction of the viral GAG protein with lipids. This is a finely regulated process governed by the GAG N-terminal matrix domain, MA. Here, we obtained compelling evidence on how this process depends on the local dielectric environments of both, the membrane and MA. Using bio-membrane mimicking systems, we found how MA myristoylation is involved in the interfacial absorption and anchoring of the protein, where the interaction with RNA negatively regulates this process but in a lesser extent when traces of the PIP2 lipid are present. Additionally, an N-terminal GAG-derived peptide competes with MA for the nucleic acid binding and impair the protein-membrane interaction when PIP2 is absent. All these data allowed us to propose a model for MA association with lipid interfaces and how it depends on oligonucleotide binding, lipid composition and competing peptide presence.

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Recombinant production in Escherichia coli of functionally active alpha-hemolysin from the human pathogen Staphylococcus aureus

Diaz-Varela, J. L.; Sabia, V.; Heras-Marquez, D.; Laxalde-Fernandez, D.; Martinez-del-Pozo, A.; Garcia-Linares, S.

2025-01-15 biochemistry 10.1101/2025.01.14.632992 medRxiv
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Staphylococcus aureus is a human opportunistic pathogen capable of causing multiple infections in both humans and animals. It secretes a group of exotoxins, known as hemolysins, which are released to enhance its pathogenicity. All of them exhibit cytolytic activity on a variety of host cell types, but -hemolysin stands out for being the most thoroughly studied variant. In this work, we show the production and purification of S. aureus -hemolysin following a straightforward protocol and in sufficient quantity to consider it as a potential procedure for future biotechnological approaches. Functional and structural characterization has indeed revealed that the protein is fully functional, confirming the key role of cholesterol in the necessary protein-lipid interaction. Furthermore, it has also been shown that the purified toxin can be assembled into single-particle individual pores within soluble lipid platforms in the form of cholesterol-containing nanodiscs.

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Annexin A4 senses membrane curvature in a density-dependent manner

Florentsen, C. D.; Daniels, J. A.; Moreno-Pescador, G.; Qoqaj, I.; Nylandsted, J.; Bendix, P. M.

2021-11-02 biophysics 10.1101/2021.11.02.466919 medRxiv
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Annexins (ANXs) are a family of peripheral membrane binding proteins which play a vital role in the maintenance and function of cellular membranes. These proteins are known to be part of the plasma membrane repair machinery where they are known to bind to negatively charged lipids in the cell membrane in a calcium dependent manner. The shape of the plasma membrane is known to be a regulator of protein density and thereby affects several biological functions of the cell such as exo-and endocytosis, cell motility, immune responses and also membrane repair. Membrane deformation and curvature sensing by proteins is a well described phenomenon which can assist in recruitment of specific proteins to certain regions in the cell and facilitate membrane bending. Following ruptures in the plasma membrane, calcium influx assist in the association of ANXs with the membrane around the ruptured area. Due to the expected increase in curvature at the damaged membrane site, it has been suggested that both membrane curvature and Ca2+ participate in the recruitment of ANXs. We have investigated the curvature sensing of ANXA4 in giant unilamellar vesicles (GUVs) by pulling high curvature membrane tethers from the vesicle surface using optical tweezers showing that ANXA4 recruitment increases with higher membrane curvature. We also describe an assay for determining protein density on the plasma membrane by utilizing ANXA4s property as a calcium dependent membrane binding protein. This new assay allows us to investigate the effect of protein density on curvature sensing.

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Effects of nicotine on the thermodynamics of the DPPC phase coexistence region

Vieira, E. D.; Costa-Filho, A. J.; Basso, L. G.

2019-07-02 biophysics 10.1101/689588 medRxiv
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Phase separation plays critical roles in several membrane functions, and reduction or disappearance of phase coexistence by action of membrane-interacting molecules have been implicated in membrane function impairment. Here, we applied differential scanning calorimetry, electron paramagnetic resonance (EPR), and non-linear least-squares (NLLS) spectral simulations to study the effects of nicotine, a parasympathomimetic drug, on the two-phase coexistence of dipalmitoyl phosphatidylcholine (DPPC) lipid membrane. The thermodynamic quantities describing the DPPC phase coexistence are temperature dependent, giving rise to non-linear vant Hoff behavior. Our results showed that nicotine preferentially binds to the fluid phase and modifies the enthalpy and entropy changes of the DPPC heat capacity profile, while marginally perturbing the homogeneous gel and fluid phases. An EPR/NLLS/vant Hoff analysis of the DPPC phase coexistence revealed that nicotine significantly modified the temperature dependence of the free energy change of the two-phase equilibrium from a cubic to a parabolic behavior, resulting in an alteration of the thermodynamical driving force and the balance of the non-covalent interactions of the lipids in equilibrium. The thermotropic behavior of the enthalpy, entropy, and heat capacity changes, as determined by EPR, indicated that nicotine modified the relative contributions of hydrogen-bonding, electrostatic interactions, and conformational entropy of the lipids to the thermodynamics of the phase coexistence. The predominantly entropically-driven gel-fluid transition in nicotine-free DPPC changes to a temperature-triggered entropically-driven or enthalpically-driven process in nicotine-bound DPPC. Further applications of this thermodynamic EPR/NLLS/vant Hoff analysis are discussed.

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A New Determination Of The Transbilayer Distribution Of Plasma Membrane Cholesterol

Steck, T. L.; Lange, Y.

2026-02-11 cell biology 10.1101/2025.11.13.687888 medRxiv
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The transbilayer distribution of plasma membrane cholesterol remains uncertain despite repeated analysis. We propose a new mechanism driving cholesterol sidedness: sterols form simple stoichiometric associations with phospholipids. Our model postulates that the phospholipids in the plasma membrane bilayer are fully complexed with cholesterol. The cholesterol in each leaflet is then the product of the abundance of its phospholipid and its sterol stoichiometry. Notably, lipid affinities are not relevant. Applying literature values for the composition, abundance and sterol stoichiometry of the phospholipid in each leaflet, the model predicts that two-thirds of the cholesterol in the human erythrocyte membrane bilayer is located in its outer leaflet, an exofacial to endofacial ratio of 2:1. The model also predicts that the overall cholesterol content of the bilayer is [~]0.75 mole/mole phospholipid, in agreement with literature values. Furthermore, our analysis suggests that the areas of the two membrane leaflets are about the same. The concordance of prediction with observation validates the model and the values used for the parameters. The sterol in the exofacial leaflet of the plasma membrane of any cell is predicted to exceed that on its contralateral side when its phospholipids have a higher sterol stoichiometry and are fully complexed. SynopsisWe propose that the transbilayer distribution of cholesterol in the plasma membrane bilayer is determined by its complexation with the phospholipids in the two leaflets. Because the complexes are homeostatically filled to stoichiometric equivalence, leaflet cholesterol is given by the abundance of its phospholipids multiplied by its sterol stoichiometry. The model predicts that two-thirds of the cholesterol in the human erythrocyte membrane bilayer resides in the outer leaflet. It also predicts the cholesterol content of the bilayer as a whole.

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Order disorder phase transitions in the plasma membrane of HeLa cells measured by fluorescent analysis of solvatochromic probes

Faerber, N.; Mauritz, S. C. F.; Huber, M. G.; Klymchenko, A. S.; Westerhausen, C.

2025-01-30 biophysics 10.1101/2025.01.29.635609 medRxiv
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Using the solvatochromic membrane probes Laurdan and Pro12A we investigated order-disorder phase transitions in cellular lipid membranes of HeLa cells. Due to internalization of Laurdan its fluorescence signal yields information about inner and outer cellular membranes while Pro12A exclusively stains the plasma membrane. The two different membrane-embedded dyes show an emission redshift upon increasing disorder of the surrounding lipids that can be quantified by the Generalized Polarization (GP). First, we compare the sensitivity of both probes to lipid phase transitions by analyzing GP of synthetic lipid vesicles as function of temperature. Second, we investigate the temperature dependent lipid order of HeLa cell membranes and find that the plasma membrane shows a partially reversible order-disorder transition regime at temperatures between T = 20 {degrees}C and T = 70 {degrees}C. Third, we calorimetrically detect an irreversible transition at T = 55 {degrees}C and conclude that the optically detected restructuring of the plasma membrane can be partially attributed to protein denaturation. At last, it is shown that the reversible plasma membrane transition temperature Tm shifts from Tm = 25 {degrees}C to Tm =-16 {degrees}C upon cholesterol depletion and sharpens from a half width of {Delta}TFWHM = 60 K to {Delta}TFWHM = 8 K. The reversibility and the sensitivity to cholesterol of this transition indicate a temperature-induced lipid melting within the plasma membrane of HeLa cells.

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Effects of Cholesterol on Nanodisc Formation and Magnetic Alignment in DMPC and Glycyrrhizic Acid Systems Probed by 31P and 14N Solid-State NMR

Rokonujjaman, M.; Wi, S.; Ramamoorthy, A.

2026-08-29 biophysics 10.64898/2026.08.26.747314 medRxiv
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Nanodiscs and bicelles are widely used as membrane mimetics for structural studies of membrane-associated systems. Studies have reported that their magnetic alignment behavior and phase stability are highly sensitive to composition and temperature. In this study, we systematically investigate the effects of cholesterol on bicelle formation and magnetic alignment in DMPC + 0.2 glycyrrhizic acid (GA) systems using a combined 31P and 14N solid-state NMR experimental and simulation-based approach. Temperature dependent 31P NMR spectra reveal a clear transition from vesicle dominant to aligned bicelles/nanodsics phase, while 1N quadrupolar splitting and lineshape analysis provides quantitative insights into heterogeneous lipid bilayer populations, distinguishing large aligned nanodiscs (B(L)), small nanodiscs (B(S)), and isotropic/random components (B(R)). A strong correlation is observed between the 31P derived bicelle fraction and the 14N B(L) population, confirming that macroscopic alignment in the presence of an external magnetic field directly reflects the growth of large, well-ordered nanodiscs. Cholesterol is found to play a critical dual role by modulating membrane order and curvature. At low cholesterol concentration (0 to 5 mole percent), nanodiscs alignment occurs gradually with increasing temperature, while at higher cholesterol concentration (15 to 25 mole percent), the alignment is delayed and accompanied by broader spectral features, indicating structural heterogeneity. Notably, 10 mole percent cholesterol consistently provides the optimal balance, enabling efficient temperature dependent conversion to aligned bicelles while maintaining high B(L) populations (about 70-80 percentage) and minimal isotropic fractions. In contrast, higher cholesterol maintains significant B(S) and B(R) populations, even at elevated temperature. The 14N quadrupolar coupling (Cq is approximately 8.5 to 9.2 kHz for aligned nanodiscs) remains nearly invariant across compositions, showing that cholesterol does not change local headgroup dynamics but instead redistributes lipid populations. These findings establish a combined 31P and 14N solid -state NMR approach provides a valuable platform for quantitatively correlating membrane structure, dynamics, and alignment, offering practical guidelines for optimizing bicelle systems for high resolution solid-state NMR studies of membrane associated biomolecules.

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Impact of Peptide Initial Configuration and Membrane Composition on Melittin's Pore-Forming Ability under Unbiased All-Atom Molecular Dynamics Simulations

Zhao, Z.; Guo, Y.; Cai, J.; Xie, P.; Guan, J.; Yao, L.; Liu, Y.; Chung, C.-R.; Lee, T.-Y.; Chiang, Y.-C.

2025-05-30 biochemistry 10.1101/2025.05.28.656502 medRxiv
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The rising challenge of antimicrobial resistance has accelerated the search for alternative therapeutics. Antimicrobial peptides (AMPs), a class of naturally occurring defense molecules found across diverse species, are promising candidates. Despite their potent membrane-disrupting activity, the atomic details of the pore formation process remain insufficiently understood. In this study, we employed all-atom molecular dynamics (MD) simulations to investigate the pore formation process of melittin under different initial configurations. Simulations were conducted using three different membrane systems: a pure POPC bilayer, a mammalian membrane model (DOPC:Cholesterol, 9:1), and a bacterial membrane model (DOPE:DOPG, 3:1). For each system, we examined four different starting configurations, in which six melittin peptides were arranged in a star-like pattern. Our results demonstrated that the pore formation process strongly depends on the initial peptide configuration. In one specific initial arrangement (termed as Conf.I), pore formation consistently occurred within 100 nanoseconds, regardless of membrane composition. Furthermore, the simulations revealed that pore formation was more challenging in the mammalian membrane model and even more so in the bacterial membrane model, in comparison with the pure POPC bilayer. These findings are in line with previously reported minimum inhibitory concentration (MIC) and the 50% hemolysis concentration (HC50) of melittin in the literature. Additionally, we identified lysine-7 (K7) as the key residue in determining whether a stable pore can form. In configurations where the K7 side chain formed electrostatic interactions with the phosphate group of a lipid, melittin were anchored to the membrane surface, thereby preventing pore formation. In contrast, simulations of melittin mutants K7A and K7Q showed no such anchoring effect, and thus pore formation was possible in multiple initial configurations. Notably, the K7Q mutation showed a preference for pore formation in bacterial membranes over mammalian membranes, suggesting that reducing toxicity while maintaining antimicrobial efficacy is possible.

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The full model of the pMHC-TCR-CD3 complex: a structural and kinetics characterization

Alba, J.; Acuto, O.; D'Abramo, M.

2020-11-27 immunology 10.1101/2020.11.26.397687 medRxiv
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22.5%
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The machinery involved in cytotoxic T-cell activation requires three main characters such as: the major histocompatibility complex class I (MHC I) bound to the peptide (p), the T-cell receptor (TCR), and the CD3-complex which is a multidimer interfaced with the intracellular side. The pMHC:TCR interaction has been largely studied both in experimental and computational models, giving a contribution in understanding the complexity of the TCR triggering process. Nevertheless, a detailed study of the structural and dynamical characterization of the full complex (pMHC:TCR:CD3-complex) is still missing, due to insufficient data available on the CD3-chains arrangement around the TCR. The recent determination of the TCR:CD3-complex structure by means of Cryo-EM technique has given a chance to build the entire proteins system essential in the activation of T-cell, and thus in the adaptive immune response. Here, we present the first full model of the pMHC interacting with the TCR:CD3-complex, built in a lipid environment. To describe the conformational behaviour associated with the unbound and the bound states, all atoms Molecular Dynamics simulations were performed for the TCR:CD3-complex and for two pMHC:TCR:CD3-complex systems, bound to two different peptides. Our data point out that a conformational change affecting the TCR Constant {beta} (C{beta}) region occurs after the binding to the pMHC, revealing a key role of such a region in the propagation of the signal. Moreover, we found that the TCR reduces the flexibility of the MHC I binding groove, confirming our previous results.