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1.
Eur Phys J E Soft Matter ; 47(5): 30, 2024 May 08.
Article En | MEDLINE | ID: mdl-38720027

The aggregation or clustering of proteins and other macromolecules plays an important role in the formation of large-scale molecular assemblies within cell membranes. Examples of such assemblies include lipid rafts, and postsynaptic domains (PSDs) at excitatory and inhibitory synapses in neurons. PSDs are rich in scaffolding proteins that can transiently trap transmembrane neurotransmitter receptors, thus localizing them at specific spatial positions. Hence, PSDs play a key role in determining the strength of synaptic connections and their regulation during learning and memory. Recently, a two-dimensional (2D) diffusion-mediated aggregation model of PSD formation has been developed in which the spatial locations of the clusters are determined by a set of fixed anchoring sites. The system is kept out of equilibrium by the recycling of particles between the cell membrane and interior. This results in a stationary distribution consisting of multiple clusters, whose average size can be determined using an effective mean-field description of the particle concentration around each anchored cluster. In this paper, we derive corrections to the mean-field approximation by applying the theory of diffusion in singularly perturbed domains. The latter is a powerful analytical method for solving two-dimensional (2D) and three-dimensional (3D) diffusion problems in domains where small holes or perforations have been removed from the interior. Applications range from modeling intracellular diffusion, where interior holes could represent subcellular structures such as organelles or biological condensates, to tracking the spread of chemical pollutants or heat from localized sources. In this paper, we take the bounded domain to be the cell membrane and the holes to represent anchored clusters. The analysis proceeds by partitioning the membrane into a set of inner regions around each cluster, and an outer region where mean-field interactions occur. Asymptotically matching the inner and outer stationary solutions generates an asymptotic expansion of the particle concentration, which includes higher-order corrections to mean-field theory that depend on the positions of the clusters and the boundary of the domain. Motivated by a recent study of light-activated protein oligomerization in cells, we also develop the analogous theory for cluster formation in a three-dimensional (3D) domain. The details of the asymptotic analysis differ from the 2D case due to the contrasting singularity structure of 2D and 3D Green's functions.


Cell Membrane , Diffusion , Cell Membrane/metabolism , Cell Membrane/chemistry , Membrane Microdomains/chemistry , Membrane Microdomains/metabolism , Models, Biological
2.
J Nanobiotechnology ; 22(1): 231, 2024 May 08.
Article En | MEDLINE | ID: mdl-38720360

BACKGROUND: Circulating tumor cells (CTCs) are considered as a useful biomarker for early cancer diagnosis, which play a crucial role in metastatic process. Unfortunately, the tumor heterogeneity and extremely rare occurrence rate of CTCs among billions of interfering leukocytes seriously hamper the sensitivity and purity of CTCs isolation. METHODS: To address these, we firstly used microfluidic chips to detect the broad-spectrum of triple target combination biomarkers in CTCs of 10 types of cancer patients, including EpCAM, EGFR and Her2. Then, we constructed hybrid engineered cell membrane-camouflaged magnetic nanoparticles (HE-CM-MNs) for efficient capture of heterogeneous CTCs with high-purity, which was enabled by inheriting the recognition ability of HE-CM for various CTCs and reducing homologous cell interaction with leukocytes. Compared with single E-CM-MNs, HE-CM-MNs showed a significant improvement in the capture efficiency for a cell mixture, with an efficiency of 90%. And the capture efficiency of HE-CM-MNs toward 12 subpopulations of tumor cells was ranged from 70 to 85%. Furthermore, by using HE-CM-MNs, we successfully isolated heterogeneous CTCs with high purity from clinical blood samples. Finally, the captured CTCs by HE-CM-MNs could be used for gene mutation analysis. CONCLUSIONS: This study demonstrated the promising potential of HE-CM-MNs for heterogeneous CTCs detection and downstream analysis.


Biomarkers, Tumor , Cell Membrane , Cell Separation , Magnetite Nanoparticles , Neoplastic Cells, Circulating , Neoplastic Cells, Circulating/pathology , Neoplastic Cells, Circulating/metabolism , Humans , Magnetite Nanoparticles/chemistry , Cell Separation/methods , Cell Line, Tumor , Cell Membrane/metabolism , Cell Membrane/chemistry , Biomarkers, Tumor/blood , Receptor, ErbB-2 , Epithelial Cell Adhesion Molecule/metabolism , ErbB Receptors/genetics , ErbB Receptors/metabolism , Neoplasms
3.
Methods Cell Biol ; 186: 1-24, 2024.
Article En | MEDLINE | ID: mdl-38705595

Broadly speaking, cell tracking dyes are fluorescent compounds that bind stably to components on or within the cells so the fate of the labeled cells can be followed. Their staining should be bright and homogeneous without affecting cell function. For purposes of monitoring cell proliferation, each time a cell divides the intensity of cell tracking dye should diminish equally between daughter cells. These dyes can be grouped into two different classes. Protein reactive dyes label cells by reacting covalently but non-selectively with intracellular proteins. Carboxyfluorescein diacetate succinimidyl ester (CFSE) is the prototypic general protein label. Membrane intercalating dyes label cells by partitioning non-selectively and non-covalently within the plasma membrane. The PKH membrane dyes are examples of lipophilic compounds whose chemistry allows for their retention within biological membranes without affecting cellular growth, viability, or proliferation when used properly. Here we provide considerations based for labeling cell lines and peripheral blood mononuclear cells using both classes of dyes. Examples from optimization experiments are presented along with critical aspects of the staining procedures to help mitigate common risks. Of note, we present data where a logarithmically growing cell line is labeled with both a protein dye and a membrane tracking dye to compare dye loss rates over 6days. We found that dual stained cells paralleled dye loss of the corresponding single stained cells. The decrease in fluorescence intensity by protein reactive dyes, however, was more rapid than that with the membrane reactive dyes, indicating the presence of additional division-independent dye loss.


Cell Proliferation , Fluoresceins , Fluorescent Dyes , Staining and Labeling , Succinimides , Humans , Fluorescent Dyes/chemistry , Fluoresceins/chemistry , Succinimides/chemistry , Staining and Labeling/methods , Cell Tracking/methods , Leukocytes, Mononuclear/cytology , Leukocytes, Mononuclear/metabolism , Animals , Cell Membrane/metabolism , Cell Membrane/chemistry
4.
J Phys Chem B ; 128(18): 4456-4463, 2024 May 09.
Article En | MEDLINE | ID: mdl-38691101

Ionic liquids (ILs) have shown promising potential in membrane protein extraction; however, the underlying mechanism remains unclear. Herein, we employed GPU-accelerated molecular dynamics (MD) simulations to investigate the dynamic insertion process of ILs into cell membranes containing membrane proteins. Our findings reveal that ILs spontaneously insert into the membrane, and the presence of membrane proteins significantly decelerates the rate of IL insertion into the membrane. Specifically, the relationship between the insertion rate and inserting free energy exhibits non-monotonic changes, which can be attributed to interfacial effects. The protein-water interface acts as trap for free ions and ionic clusters, while free ions preferentially insert into the membrane from the protein-lipid interface, which limits the insertion rate due to its narrowness. Thus, the insertion rate is governed by a combination of the free energy and interfacial effects. These findings provide valuable insights into the interfacial effects of protein-lipid bilayers and have implications for various biochemical-related applications.


Cell Membrane , Imidazoles , Ionic Liquids , Lipid Bilayers , Molecular Dynamics Simulation , Ionic Liquids/chemistry , Imidazoles/chemistry , Cell Membrane/chemistry , Cell Membrane/metabolism , Lipid Bilayers/chemistry , Lipid Bilayers/metabolism , Membrane Proteins/chemistry , Membrane Proteins/metabolism , Thermodynamics , Water/chemistry
5.
Anal Chem ; 96(19): 7747-7755, 2024 May 14.
Article En | MEDLINE | ID: mdl-38691774

Accurate classification of tumor cells is of importance for cancer diagnosis and further therapy. In this study, we develop multimolecular marker-activated transmembrane DNA computing systems (MTD). Employing the cell membrane as a native gate, the MTD system enables direct signal output following simple spatial events of "transmembrane" and "in-cell target encounter", bypassing the need of multistep signal conversion. The MTD system comprises two intelligent nanorobots capable of independently sensing three molecular markers (MUC1, EpCAM, and miR-21), resulting in comprehensive analysis. Our AND-AND logic-gated system (MTDAND-AND) demonstrates exceptional specificity, allowing targeted release of drug-DNA specifically in MCF-7 cells. Furthermore, the transformed OR-AND logic-gated system (MTDOR-AND) exhibits broader adaptability, facilitating the release of drug-DNA in three positive cancer cell lines (MCF-7, HeLa, and HepG2). Importantly, MTDAND-AND and MTDOR-AND, while possessing distinct personalized therapeutic potential, share the ability of outputting three imaging signals without any intermediate conversion steps. This feature ensures precise classification cross diverse cells (MCF-7, HeLa, HepG2, and MCF-10A), even in mixed populations. This study provides a straightforward yet effective solution to augment the versatility and precision of DNA computing systems, advancing their potential applications in biomedical diagnostic and therapeutic research.


DNA , Epithelial Cell Adhesion Molecule , MicroRNAs , Humans , Epithelial Cell Adhesion Molecule/metabolism , DNA/chemistry , MicroRNAs/analysis , MicroRNAs/metabolism , Mucin-1/metabolism , Mucin-1/analysis , Computers, Molecular , MCF-7 Cells , Biomarkers, Tumor/metabolism , Biomarkers, Tumor/analysis , Cell Membrane/metabolism , Cell Membrane/chemistry , Hep G2 Cells
6.
Langmuir ; 40(19): 9975-9984, 2024 May 14.
Article En | MEDLINE | ID: mdl-38695640

Plasma membranes not only maintain the intracellular microenvironment through their phospholipid bilayer but also eliminate exogenous compounds outside the cell membranes. Most drugs especially with high polarity are prevented from entering into cells to exert their effects. Therefore, it is of great significance to design effective drug carriers with a penetrating ability toward plasma membranes. In this study, a dual-templated MIP (dt-MIPs) carrier with controllable microstructure and high drug loading capacity was prepared using highly expressed sphingomyelin on the plasma membrane and tenofovir (TFV), a first-line drug for HIV and chronic hepatitis B, as template molecules. The drug release experiments performed in vitro under simulated physiological conditions demonstrated that sustained and stable adsorption of TFV on dt-MIPs was more than 80% over 50 h. By a combination of flow cytometry and confocal microscopy, dt-MIPs were found to have efficient cell permeability. Furthermore, mass-spectrometry-based intracellular pharmacokinetic studies demonstrated that TFV was delivered completely into cells within 30 min with the delivery of dt-MIPs. The study presented above suggested that dt-MIPs are expected to be alternative nanoscale drug carriers for enhanced drug permeability and controlled release.


Cell Membrane , Drug Carriers , Sphingomyelins , Sphingomyelins/chemistry , Drug Carriers/chemistry , Cell Membrane/metabolism , Cell Membrane/chemistry , Humans , Tenofovir/chemistry , Tenofovir/pharmacokinetics , Drug Liberation
7.
Nanoscale ; 16(17): 8236-8255, 2024 May 02.
Article En | MEDLINE | ID: mdl-38584466

Osteoporosis, characterized by a reduction in bone mineral density, represents a prevalent skeletal disorder with substantial global health implications. Conventional therapeutic strategies, exemplified by bisphosphonates and hormone replacement regimens, though effective, encounter inherent limitations and challenges. Recent years have witnessed the surge of cell-membrane-coated nanoparticles (CMNPs) as a promising intervention for osteoporosis, leveraging their distinct attributes including refined biocompatibility, heightened pharmaceutical payload capacity, as well as targeted drug release kinetics. However, a comprehensive review consolidating the application of CMNPs-based therapy for osteoporosis remains absent within the existing literature. In this review, we provide a concise overview of the distinctive pathogenesis associated with osteoporosis, alongside an in-depth exploration of the physicochemical attributes intrinsic to CMNPs derived from varied cellular sources. Subsequently, we explore the potential utility of CMNPs, elucidating emerging trends in their deployment for osteoporosis treatment through multifaceted therapeutic approaches. By linking the notable attributes of CMNPs with their roles in mitigating osteoporosis, this review serves as a catalyst for further advances in the design of advanced CMNPs tailored for osteoporosis management. Ultimately, such progress is promising for enhancing outcomes in anti-bone loss interventions, paving the way for clinical translation in the near future.


Cell Membrane , Nanoparticles , Osteoporosis , Humans , Osteoporosis/drug therapy , Nanoparticles/chemistry , Nanoparticles/therapeutic use , Cell Membrane/metabolism , Cell Membrane/chemistry , Drug Delivery Systems , Animals
8.
Colloids Surf B Biointerfaces ; 238: 113892, 2024 Jun.
Article En | MEDLINE | ID: mdl-38581834

Receptor and ligand binding mediated targeted drug delivery systems (DDS) sometimes fail to target to tumor sites, and cancer cell membrane (CCM) coating can overcome the dilemma of immune clearance and nonspecific binding of DDS in vivo. In order to enhance the targeting ability and improve the anti-tumor effect, a dual targeting DDS was established based on U87MG CCM mediated homologous targeting and cyclic peptide RGD mediated active targeting. The DDS was prepared by coating RGD doped CCM onto doxorubicin (DOX) loaded liposomes. The homologous and active dual targeting ability endowed the DDS (RGD-CCM-LP-DOX) exhibited superior cancer cell affinity, improved tissue distribution and enhanced anti-tumor effects. In vivo pharmacodynamic studies revealed that RGD-CCM-LP-DOX exhibited superior therapeutic effect compared with homologous targeting CCM-LP-DOX and non-targetable LP-DOX injection. H&E staining, Ki 67 staining and TUNEL staining confirmed that RGD-CCM-LP-DOX not only increased anti-tumor efficacy, but also reduced tissue toxicity by changing the distribution in vivo. The experimental results showed that the RGD doped CCM camouflaged liposome DDS is a better choice for chemotherapeutics delivery.


Cell Membrane , Doxorubicin , Drug Delivery Systems , Liposomes , Doxorubicin/pharmacology , Doxorubicin/chemistry , Doxorubicin/administration & dosage , Liposomes/chemistry , Animals , Humans , Mice , Cell Membrane/metabolism , Cell Membrane/drug effects , Cell Membrane/chemistry , Oligopeptides/chemistry , Mice, Inbred BALB C , Antibiotics, Antineoplastic/pharmacology , Antibiotics, Antineoplastic/chemistry , Antibiotics, Antineoplastic/administration & dosage , Cell Line, Tumor , Mice, Nude , Cell Proliferation/drug effects , Antineoplastic Agents/pharmacology , Antineoplastic Agents/chemistry , Antineoplastic Agents/administration & dosage , Tissue Distribution , Drug Screening Assays, Antitumor
9.
Colloids Surf B Biointerfaces ; 238: 113909, 2024 Jun.
Article En | MEDLINE | ID: mdl-38599076

Nasopharyngeal carcinoma (NPC) is a common head and neck malignancy, which is characterized by high incidence and aggression with poor diagnosis and limited therapeutic opportunity. The innovative strategy for achieving precise NPC active-targeting drug delivery has emerged as a prominent focus in clinical research. Here, a minimalist cancer cell membrane (CCM) shielded biomimetic nanoparticle (NP) was designed for NPC active-targeting therapy. Chemotherapeutant model drug doxorubicin (DOX) was loaded in polyamidoamine (PAMAM) dendrimer. The PAMAM/DOX (PD) NP was further shielded by human CNE-2 NPC CCM. Characterization results verified that the biomimetic PAMAM/DOX@CCM (abbreviated as PDC) NPs had satisfactory physical properties with high DOX-loading and excellent stability. Cell experiments demonstrated that the CNE-2 membrane-cloaked PDC NPs presented powerful cellular uptake in the sourcing cells by homologous targeting and adhesive interaction. Further in vivo results confirmed that this biomimetic nanoplatform had extended circulation and remarkable tumor-targeting capability, and the PDC NPs effectively suppressed the progression of CNE-2 tumors by systemic administration. This CCM-shielded biomimetic NP displayed a minimalist paradigm nanoplatform for precise NPC therapy, and the strategy of CCM-shielded biomimetic drug delivery system (DDS) has great potential for extensive cancer active-targeting therapy.


Biomimetic Materials , Cell Membrane , Doxorubicin , Nanoparticles , Nasopharyngeal Carcinoma , Nasopharyngeal Neoplasms , Humans , Doxorubicin/pharmacology , Doxorubicin/chemistry , Nanoparticles/chemistry , Nasopharyngeal Carcinoma/drug therapy , Nasopharyngeal Carcinoma/pathology , Biomimetic Materials/chemistry , Biomimetic Materials/pharmacology , Cell Membrane/chemistry , Cell Membrane/metabolism , Cell Membrane/drug effects , Animals , Nasopharyngeal Neoplasms/drug therapy , Nasopharyngeal Neoplasms/pathology , Dendrimers/chemistry , Mice , Cell Line, Tumor , Drug Delivery Systems , Antibiotics, Antineoplastic/pharmacology , Antibiotics, Antineoplastic/chemistry , Antibiotics, Antineoplastic/administration & dosage , Cell Proliferation/drug effects , Mice, Nude , Mice, Inbred BALB C , Biomimetics , Particle Size
10.
Nanotechnology ; 35(30)2024 May 07.
Article En | MEDLINE | ID: mdl-38636478

Alzheimer's disease (AD) is a progressive neurodegenerative disorder characterized by the accumulation of amyloid plaques in the brain. The toxicity of amyloid to neuronal cell surfaces arises from interactions between small intermediate aggregates, namely amyloid oligomers, and the cell membrane. The nature of these interactions changes with age and disease progression. In our previous work, we demonstrated that both membrane composition and nanoscale structure play crucial roles in amyloid toxicity, and that membrane models mimicking healthy neuron were less affected by amyloid than model membranes mimicking AD neuronal membranes. This understanding introduces the possibility of modifying membrane properties with membrane-active molecules, such as melatonin, to protect them from amyloid-induced damage. In this study, we employed atomic force microscopy and localized surface plasmon resonance to investigate the protective effects of melatonin. We utilized synthetic lipid membranes that mimic the neuronal cellular membrane at various stages of AD and explored their interactions with amyloid-ß(1-42) in the presence of melatonin. Our findings reveal that the early diseased membrane model is particularly vulnerable to amyloid binding and subsequent damage. However, melatonin exerts its most potent protective effect on this early-stage membrane. These results suggest that melatonin could act at the membrane level to alleviate amyloid toxicity, offering the most protection during the initial stages of AD.


Amyloid beta-Peptides , Melatonin , Microscopy, Atomic Force , Surface Plasmon Resonance , Melatonin/pharmacology , Melatonin/chemistry , Microscopy, Atomic Force/methods , Amyloid beta-Peptides/chemistry , Amyloid beta-Peptides/metabolism , Peptide Fragments/chemistry , Peptide Fragments/metabolism , Lipid Bilayers/chemistry , Alzheimer Disease/metabolism , Humans , Cell Membrane/metabolism , Cell Membrane/drug effects , Cell Membrane/chemistry
11.
Chem Commun (Camb) ; 60(36): 4810-4813, 2024 Apr 30.
Article En | MEDLINE | ID: mdl-38602391

The non-canonical amino acid adamantylglycine (Ada) is introduced into peptides to allow high-affinity binding to cucurbit[7]uril (CB7). Introduction of Ada into a cell-penetrating peptide (CPP) sequence had minimal influence on the membrane transport, yet enabled up- and down-regulation of the membrane transport activity.


Cell-Penetrating Peptides , Glycine , Heterocyclic Compounds, 2-Ring , Imidazolidines , Macrocyclic Compounds , Glycine/chemistry , Glycine/analogs & derivatives , Glycine/metabolism , Cell-Penetrating Peptides/chemistry , Cell-Penetrating Peptides/metabolism , Imidazoles/chemistry , Humans , Bridged-Ring Compounds/chemistry , Bridged-Ring Compounds/metabolism , Adamantane/chemistry , Adamantane/analogs & derivatives , Cell Membrane/metabolism , Cell Membrane/chemistry , Biological Transport
12.
Nanoscale ; 16(18): 9108-9122, 2024 May 09.
Article En | MEDLINE | ID: mdl-38646798

Nanoparticles' (NPs) permeation through cell membranes, whether it happens via passive or active transport, is an essential initial step for their cellular internalization. The NPs' surface coating impacts the way they translocate through the lipid bilayer and the spontaneity of the process. Understanding the molecular details of NPs' interaction with cell membranes allows the design of nanosystems with optimal characteristics for crossing the lipid bilayer: computer simulations are a powerful tool for this purpose. In this work, we have performed coarse-grained molecular dynamics simulations and free energy calculations on spherical titanium dioxide NPs conjugated with polymer chains of different chemical compositions. We have demonstrated that the hydrophobic/hydrophilic character of the chains, more than the nature of their terminal group, plays a crucial role in determining the NPs' interaction with the lipid bilayer and the thermodynamic spontaneity of NPs' translocation from water to the membrane. We envision that this computational work will be helpful to the experimental community in terms of the rational design of NPs for efficient cell membrane permeation.


Lipid Bilayers , Molecular Dynamics Simulation , Nanoparticles , Polymers , Titanium , Lipid Bilayers/chemistry , Titanium/chemistry , Polymers/chemistry , Nanoparticles/chemistry , Hydrophobic and Hydrophilic Interactions , Thermodynamics , Cell Membrane/chemistry , Cell Membrane/metabolism
13.
Colloids Surf B Biointerfaces ; 238: 113893, 2024 Jun.
Article En | MEDLINE | ID: mdl-38631282

Targeted drug delivery has emerged as a pivotal approach within precision medicine, aiming to optimize therapeutic efficacy while minimizing systemic side effects. Advanced biomimetic membrane-coated formulations have garnered significant interest from researchers as a promising strategy for targeted drug delivery, site-specific accumulation and heightened therapeutic outcomes. Biomimetic nanotechnology is able to retain the biological properties of the parent cell thus are able to exhibit superior targeting compared to conventional formulations. In this review, we have described different types of cell membrane camouflaged NPs. Mechanism of isolation and coating of the membranes along with the applications of each type of membrane and their mechanism to reach the desired site. Furthermore, a fusion of different membranes in order to prepare hybrid membrane biomimetic NPs which could possess better efficacy is discussed in detail in the review. Later, applications of the hybrid membrane-cloaked NPs along with current development were discussed in detail along with the challenges associated with it. Although membrane-cloaked NPs are currently in the preliminary stage of development, there is a huge potential to explore this biodegradable and biocompatible delivery system.


Cell Membrane , Drug Delivery Systems , Nanoparticles , Humans , Nanoparticles/chemistry , Cell Membrane/metabolism , Cell Membrane/chemistry , Biomimetic Materials/chemistry , Animals
14.
Anal Chem ; 96(18): 7231-7239, 2024 May 07.
Article En | MEDLINE | ID: mdl-38656982

Electrochemiluminescence (ECL) imaging, a rapidly evolving technology, has attracted significant attention in the field of cellular imaging. However, its primary limitation lies in its inability to analyze the motion behaviors of individual particles in live cellular environments. In this study, we leveraged the exceptional ECL properties of quantum dots (QDs) and the excellent electrochemical properties of carbon dots (CDs) to develop a high-brightness ECL nanoprobe (CDs-QDs) for real-time ECL imaging between living cells. This nanoprobe has excellent signal-to-noise ratio imaging capabilities for the single-particle tracking (SPT) of biomolecules. Our finding elucidated the enhanced ECL mechanism of CDs-QDs in the presence of reactive oxygen species through photoluminescence, electrochemistry, and ECL techniques. We further tracked the movement of single particles on membrane nanotubes between live cells and confirmed that the ECL-based SPT technique using CD-QD nanoparticles is an effective approach for monitoring the transport behaviors of biomolecules on membrane nanotubes between live cells. This opens a promising avenue for the advancement of ECL-based single-particle detection and the dynamic quantitative imaging of biomolecules.


Electrochemical Techniques , Luminescent Measurements , Nanotubes , Quantum Dots , Quantum Dots/chemistry , Humans , Electrochemical Techniques/methods , Nanotubes/chemistry , Luminescent Measurements/methods , HeLa Cells , Cell Membrane/metabolism , Cell Membrane/chemistry , Reactive Oxygen Species/metabolism , Reactive Oxygen Species/analysis , Carbon/chemistry
15.
ACS Nano ; 18(19): 12537-12546, 2024 May 14.
Article En | MEDLINE | ID: mdl-38684051

This paper describes how branch lengths of anisotropic nanoparticles can affect interactions between grafted ligands and cell-membrane receptors. Using live-cell, single-particle tracking, we found that DNA aptamer-gold nanostar nanoconstructs with longer branches showed improved binding efficacy to human epidermal growth factor receptor 2 (HER2) on cancer cell membranes. Inhibiting nanoconstruct-HER2 binding promoted nonspecific interactions, which increased the rotational speed of long-branched nanoconstructs but did not affect that of short-branched constructs. Bivariate analysis of the rotational and translational dynamics showed that longer branch lengths increased the ratio of targeting to nontargeting interactions. We also found that longer branches increased the nanoconstruct-cell interaction times before internalization and decreased intracellular trafficking velocities. Differences in binding efficacy revealed by single-particle dynamics can be attributed to the distinct protein corona distributions on short- and long-branched nanoconstructs, as validated by transmission electron microscopy. Minimal protein adsorption at the high positive curvature tips of long-branched nanoconstructs facilitated binding of DNA aptamer ligands to HER2. Our study reveals the significance of nanoparticle branch length in regulating local chemical environment and interactions with live cells at the single-particle level.


Aptamers, Nucleotide , Cell Membrane , Gold , Metal Nanoparticles , Receptor, ErbB-2 , Humans , Anisotropy , Gold/chemistry , Aptamers, Nucleotide/chemistry , Aptamers, Nucleotide/metabolism , Cell Membrane/metabolism , Cell Membrane/chemistry , Receptor, ErbB-2/metabolism , Receptor, ErbB-2/chemistry , Metal Nanoparticles/chemistry , Cell Line, Tumor , Ligands
16.
ACS Nano ; 18(19): 12427-12452, 2024 May 14.
Article En | MEDLINE | ID: mdl-38687909

Light-driven modulation of neuronal activity at high spatial-temporal resolution is becoming of high interest in neuroscience. In addition to optogenetics, nongenetic membrane-targeted nanomachines that alter the electrical state of the neuronal membranes are in demand. Here, we engineered and characterized a photoswitchable conjugated compound (BV-1) that spontaneously partitions into the neuronal membrane and undergoes a charge transfer upon light stimulation. The activity of primary neurons is not affected in the dark, whereas millisecond light pulses of cyan light induce a progressive decrease in membrane resistance and an increase in inward current matched to a progressive depolarization and action potential firing. We found that illumination of BV-1 induces oxidation of membrane phospholipids, which is necessary for the electrophysiological effects and is associated with decreased membrane tension and increased membrane fluidity. Time-resolved atomic force microscopy and molecular dynamics simulations performed on planar lipid bilayers revealed that the underlying mechanism is a light-driven formation of pore-like structures across the plasma membrane. Such a phenomenon decreases membrane resistance and increases permeability to monovalent cations, namely, Na+, mimicking the effects of antifungal polyenes. The same effect on membrane resistance was also observed in nonexcitable cells. When sustained light stimulations are applied, neuronal swelling and death occur. The light-controlled pore-forming properties of BV-1 allow performing "on-demand" light-induced membrane poration to rapidly shift from cell-attached to perforated whole-cell patch-clamp configuration. Administration of BV-1 to ex vivo retinal explants or in vivo primary visual cortex elicited neuronal firing in response to short trains of light stimuli, followed by activity silencing upon prolonged light stimulations. BV-1 represents a versatile molecular nanomachine whose properties can be exploited to induce either photostimulation or space-specific cell death, depending on the pattern and duration of light stimulation.


Neurons , Neurons/drug effects , Neurons/metabolism , Animals , Cell Membrane/metabolism , Cell Membrane/chemistry , Light , Lipid Bilayers/chemistry , Molecular Dynamics Simulation , Rats , Mice , Optogenetics
17.
J Phys Chem B ; 128(18): 4354-4366, 2024 May 09.
Article En | MEDLINE | ID: mdl-38683784

G protein-coupled receptors (GPCRs) are a major gateway to cellular signaling, which respond to ligands binding at extracellular sites through allosteric conformational changes that modulate their interactions with G proteins and arrestins at intracellular sites. High-resolution structures in different ligand states, together with spectroscopic studies and molecular dynamics simulations, have revealed a rich conformational landscape of GPCRs. However, their supramolecular structure and spatiotemporal distribution is also thought to play a significant role in receptor activation and signaling bias within the native cell membrane environment. Here, we applied single-molecule fluorescence techniques, including single-particle tracking, single-molecule photobleaching, and fluorescence correlation spectroscopy, to characterize the diffusion and oligomerization behavior of the muscarinic M1 receptor (M1R) in live cells. Control samples included the monomeric protein CD86 and fixed cells, and experiments performed in the presence of different orthosteric M1R ligands and of several compounds known to change the fluidity and organization of the lipid bilayer. M1 receptors exhibit Brownian diffusion characterized by three diffusion constants: confined/immobile (∼0.01 µm2/s), slow (∼0.04 µm2/s), and fast (∼0.14 µm2/s), whose populations were found to be modulated by both orthosteric ligands and membrane disruptors. The lipid raft disruptor C6 ceramide led to significant changes for CD86, while the diffusion of M1R remained unchanged, indicating that M1 receptors do not partition in lipid rafts. The extent of receptor oligomerization was found to be promoted by increasing the level of expression and the binding of orthosteric ligands; in particular, the agonist carbachol elicited a large increase in the fraction of M1R oligomers. This study provides new insights into the balance between conformational and environmental factors that define the movement and oligomerization states of GPCRs in live cells under close-to-native conditions.


Receptor, Muscarinic M1 , Ligands , Receptor, Muscarinic M1/metabolism , Receptor, Muscarinic M1/chemistry , Diffusion , Humans , Cell Membrane/metabolism , Cell Membrane/chemistry , Protein Multimerization/drug effects , Animals , Spectrometry, Fluorescence , Molecular Dynamics Simulation , Lipid Bilayers/chemistry , Lipid Bilayers/metabolism
18.
J Am Chem Soc ; 146(19): 13151-13162, 2024 May 15.
Article En | MEDLINE | ID: mdl-38687869

The nanoscopic layer of water that directly hydrates biological membranes plays a critical role in maintaining the cell structure, regulating biochemical processes, and managing intermolecular interactions at the membrane interface. Therefore, comprehending the membrane structure, including its hydration, is essential for understanding the chemistry of life. While cholesterol is a fundamental lipid molecule in mammalian cells, influencing both the structure and dynamics of cell membranes, its impact on the structure of interfacial water has remained unknown. We used surface-specific vibrational sum-frequency generation spectroscopy to study the effect of cholesterol on the structure and hydration of monolayers of the lipids 1,2-dipalmitoyl-sn-glycero-3-phosphocholine (DPPC), 1,2-dioleoyl-sn-glycero-3-phosphocholine (DOPC), and egg sphingomyelin (SM). We found that for the unsaturated lipid DOPC, cholesterol intercalates in the membrane without significantly changing the orientation of the lipid tails and the orientation of the water molecules hydrating the headgroups of DOPC. In contrast, for the saturated lipids DPPC and SM, the addition of cholesterol leads to clearly enhanced packing and ordering of the hydrophobic tails. It is also observed that the orientation of the water hydrating the lipid headgroups is enhanced upon the addition of cholesterol. These results are important because the orientation of interfacial water molecules influences the cell membranes' dipole potential and the strength and specificity of interactions between cell membranes and peripheral proteins and other biomolecules. The lipid nature-dependent role of cholesterol in altering the arrangement of interfacial water molecules offers a fresh perspective on domain-selective cellular processes, such as protein binding.


Cell Membrane , Cholesterol , Water , Cholesterol/chemistry , Water/chemistry , Cell Membrane/chemistry , Cell Membrane/metabolism , Phosphatidylcholines/chemistry , Sphingomyelins/chemistry , 1,2-Dipalmitoylphosphatidylcholine/chemistry
19.
J Phys Chem Lett ; 15(18): 4823-4827, 2024 May 09.
Article En | MEDLINE | ID: mdl-38668706

Amphotericin B is a popular antifungal antibiotic, but the exact way it works is still a matter of debate. Here, we used monolayers composed of phosphatidylcholine with ergosterol as a model of fungal lipid membranes to study drug incorporation from the aqueous phase and analyze the molecular reorganization of membranes underlying the biological activity of the antibiotic. The results show that the internalization of antibiotic molecules into membranes occurs only in the presence of ergosterol in the lipid phase. Comparison of images of solid-supported monolayers obtained by atomic force microscopy and lifetime imaging fluorescence microscopy shows the formation of intramembrane clusters of various sizes in the lipid phase, consisting mainly of antibiotic dimers and relatively large membrane pores (∼15 nm in diameter). The results reveal multiple modes of action of amphotericin B, acting simultaneously, each of which adversely affects the structural properties of the lipid membranes and their physiological functionality.


Amphotericin B , Phosphatidylcholines , Amphotericin B/chemistry , Phosphatidylcholines/chemistry , Ergosterol/chemistry , Antifungal Agents/chemistry , Microscopy, Atomic Force , Anti-Bacterial Agents/chemistry , Cell Membrane/chemistry , Microscopy, Fluorescence
20.
Nat Commun ; 15(1): 3521, 2024 Apr 25.
Article En | MEDLINE | ID: mdl-38664456

Recently, a novel cyclo-heptapeptide composed of alternating D,L-amino acids and a unique thiazolidine heterocycle, called lugdunin, was discovered, which is produced by the nasal and skin commensal Staphylococcus lugdunensis. Lugdunin displays potent antimicrobial activity against a broad spectrum of Gram-positive bacteria, including challenging-to-treat methicillin-resistant Staphylococcus aureus (MRSA). Lugdunin specifically inhibits target bacteria by dissipating their membrane potential. However, the precise mode of action of this new class of fibupeptides remains largely elusive. Here, we disclose the mechanism by which lugdunin rapidly destabilizes the bacterial membrane potential using an in vitro approach. The peptide strongly partitions into lipid compositions resembling Gram-positive bacterial membranes but less in those harboring the eukaryotic membrane component cholesterol. Upon insertion, lugdunin forms hydrogen-bonded antiparallel ß-sheets by the formation of peptide nanotubes, as demonstrated by ATR-FTIR spectroscopy and molecular dynamics simulations. These hydrophilic nanotubes filled with a water wire facilitate not only the translocation of protons but also of monovalent cations as demonstrated by voltage-clamp experiments on black lipid membranes. Collectively, our results provide evidence that the natural fibupeptide lugdunin acts as a peptidic channel that is spontaneously formed by an intricate stacking mechanism, leading to the dissipation of a bacterial cell's membrane potential.


Methicillin-Resistant Staphylococcus aureus , Methicillin-Resistant Staphylococcus aureus/drug effects , Molecular Dynamics Simulation , Water/chemistry , Membrane Potentials/drug effects , Cell Membrane/drug effects , Cell Membrane/metabolism , Cell Membrane/chemistry , Anti-Bacterial Agents/pharmacology , Anti-Bacterial Agents/chemistry , Membrane Lipids/chemistry , Membrane Lipids/metabolism , Staphylococcus lugdunensis/drug effects , Staphylococcus lugdunensis/chemistry , Staphylococcus lugdunensis/metabolism , Peptides, Cyclic/chemistry , Peptides, Cyclic/pharmacology , Spectroscopy, Fourier Transform Infrared , Microbial Sensitivity Tests , Nanotubes/chemistry , Antimicrobial Peptides/chemistry , Antimicrobial Peptides/pharmacology
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