Fluorescence Microscopy Solutions

Super-Resolution Microscopes

Comprehensive multimodal biological imaging using single-molecule localization microscopy (SMLM)

See Biology in Nanoscale Detail

Super-resolution microscopy techniques, including single-molecule localization microscopy (SMLM), allow life sciences researchers to greatly expand their applications in neuroscience, genomics, virology, and other biological fields. Bruker's Vutara super-resolution microscopy uses proprietary bi-plane detection, which overcomes many of the key challenges associated with light microscopy by enabling 3D sub-diffraction resolution without compromising speed or sensitivity. Our unique SMLM capabilities surpass the diffraction limit and generate higher-quality images of biological specimens, all in a single, easy-to-use system that fits on the benchtop. 

 

SMLM can also be combined with other super-resolution techniques, such as DNA-PAINT, smFISH, and OligoSTORM. Each application is supported by the Vutara SRX software, which lets researchers quickly and easily localize, visualize, and analyze their imaging data. To take your research one step further and address a greater number of targets, the PlexFlo Multiplexing Platform, controlled by SRX software, allows flexible configuration of fluidics sequences for sequential labeling experiments.

Super-Resolution Microscopy        

Frequently Asked Questions

Principles of SMLM

What are some super-resolution techniques?

Other commonly used super-resolution techniques with epi-fluorescent microscopes are Stimulated Emission Depletion (STED) and Structured Illumination Microscopy (SIM). Lattice light-sheet microscopes achieve SIM-level resolution. The resolution of STED is 30 nm, and SIM usually cites a resolution of around 100 nm. MINFLUX is a super-resolution microscopy technique combining STED and single-molecule localization. It allows you to resolve structures as small as a molecule along all three dimensions but is very slow.

What is Single Molecule Localization Microscopy (SMLM)?

SMLM is a super-resolution fluorescence microscopy technique that breaks the optical diffraction limit of standard light microscopy. The diffraction limit is between 200 nm and 350 nm.

What kind of resolution is achievable with SMLM?

The typical resolution cited for SMLM is 20 nm. However, SMLM can achieve higher resolutions of about 15 nm with SMLM methods such as DNA-PAINT.

Principles & Techniques

What is the principle of SMLM?

The principle of Single Molecule Localization Microscopy (SMLM) is to localize individual fluorescent molecules with high precision and reconstruct a super-resolution image from their coordinates. SMLM techniques control the switching of fluorophores between a bright (on) state and a dark (off) state, such that only a sparse subset of molecules emit light at any given time, and their point-spread functions (PSF) do not overlap. This approach allows the separation of overlapping signals from different fluorophores and the fitting of their point spread functions to determine their positions. Repeating this process over many frames allows the fitting algorithm to localize many molecules and use their coordinates to generate a high-resolution image.

What is PALM?

Photoactivated Light Microscopy (PALM) uses photoswitchable dyes or fluorescence proteins to achieve the on-off switching that enables all SMLM techniques. E.g., a fluorescent protein exists in a dark state and converts to a fluorescent state after exposure to 405 nm light. Now it emits photons when excited with the appropriate wavelength. The microscope collects the photons and uses them to localize the protein and the attached structure. The power of the 405 nm conversion laser is so low that only so few fluorophores are switched on that their point-spread functions (PSF) do not overlap. After localization, the fluorophores are bleached (switched off), and a new subset is activated. This process is repeated until the structures of interest are reconstructed. Often fluorescence proteins that change their emission wavelength after activation are used as an alternative.

PALM probes are typically fluorescent proteins. Examples of photoactivate probes used for PALM are paGFP, pamCherry, paTagRFP. Examples of photoconvertible probes used for PALM are mEos, Dendra, and mMaple.

PALM probes are commonly used in live cell experiments because they are endogenous. However, the length of an experiment is limited because the probes blink and then become photobleached. Since each fluorophore only blinks once, PALM probes are suitable for experiments that quantify the exact number of molecules.

What are STORM and dSTORM?

Stochastic Optical Reconstruction Microscopy (STORM) and direct Stochastic Optical Reconstruction Microscopy (dSTORM) are two super-resolution microscopy techniques that rely on organic probes that photo-switch from a dark state to an off state and back to a dark state. STORM and dSTORM require buffers with a thiol for a reduction and typically an oxygen scavenger. STORM uses an activator probe in addition to the imaging probe, while dSTORM does not. A high laser power drives the imaging molecules into a dark state, from which they can emerge periodically to the singlet state and fluoresce before returning to the dark state, thus producing a blink. The duration of individual blinks is typically 5-20 ms. A fluorophore molecule used for STORM or dSTORM can go from on to off state several times before the molecule photo-bleaches.

When choosing probes for dSTORM, their photophysical properties, such as their blinking ability, must be considered. Alexa 647 is an excellent photo-switching probe that can cycle up to 16 times before photobleaching and activates well. Cy3B is a good second probe for two-color experiments with AF 647. For three-color experiments, AF 488 is a viable choice for labeling the most densely labeled structure being imaged.

 

What are PAINT and DNA-PAINT?

PAINT stands for Points Accumulation for Imaging in Nanoscale Topography. It is an imaging technique that relies on the temporary binding of a ligand with a fluorophore to produce a localization event or blink. When the PAINT ligand is not bound to the substrate, it moves around in the sample solution and appears as fluorescent background. However, when it attaches to the substrate, the ligand with the fluorophore becomes immobilized and can be localized.

One of the most common forms of PAINT is DNA-PAINT. In this technique, a small oligonucleotide with a fluorophore attached (called an imaging strand) is complementary to another oligonucleotide (called a docking strand) attached to the target being imaged. The imaging strands bind temporarily to the docking strands and are localized. Binding times range from 100 to 300 milliseconds and depend on the oligonucleotide length. Docking strands can be attached to antibodies, nanobodies, directly to a target protein, or part of a larger oligonucleotide sequence attached to DNA or RNA.

Using multiplexing with fluidics, DNA_PAINT can label more targets than can be separated chromatically with multiple fluorophores. Additionally, the localization precision of DNA-PAINT can be better than that seen with STORM or PALM because DNA-PAINT has higher photon counts.

Apply SMLM to your Research

Can standard fluorescent labeling methods be used for SMLM?

Single-Molecule Localization Microscopy (SMLM) can use standard fluorescent labeling methods. Immunofluorescence labeling methods are currently the most common labeling method for SMLM. Another option is to use fluorophores conjugated to nanobodies to label targets. This method has the advantage of having a smaller linkage error, which refers to the distance between the fluorophore and the labeled target molecule.

Genetically fused self-labeling protein tags, such as SNAP and Halo tags, can be used for Single-Molecule Localization Microscopy (SMLM) and offer the advantage of reduced linkage errors. Photoactivated Localization Microscopy (PALM) typically uses genetically encoded fluorescent proteins. However, for SMLM, a photoactivatable or photoconvertible fluorescent protein is required. Standard Green Fluorescent Protein (GFP) is unsuitable for SMLM but can be labeled with nanobodies.

It is important to note that for SMLM studies, samples must be mounted on coverslips rather than on covered slides because samples must be exposed to buffers during image acquisition.

How does analysis of SMLM data compare to analysis of other fluorescence microscopy techniques, including other super resolution techniques?

Single-Molecule Localization Microscopy (SMLM) data analysis fundamentally differs from other fluorescence microscopy techniques because it is based on localized, single-dye molecules rather than pixels representing the summed intensity of multiple dye molecules. SMLM data analysis uses the coordinates of each localization. The precision of a localization is 10-20 nm compared to the diffraction limit of a standard microscope of 200 – 300 nm. In SMLM, the analytical algorithms used for data analysis are statistical methods to analyze the density and distribution of molecules, clusters, and colocalization at the molecular level.

In contrast, other fluorescence microscopy techniques, such as wide-field, confocal, STED, and SIM, are pixel-based and rely on standard image analysis algorithms. While STED and SIM can provide a resolution of 30-100 nm in measuring the distance between objects, they cannot directly measure the density of objects, such as clusters or colocalization at the molecular level, like SMLM can.

Is it possible to acquire and analyze 3-D data with SMLM?

Acquiring and analyzing 3D data with Single-Molecule Localization Microscopy (SMLM) is possible. While early implementations of SMLM were only in 2D, and some researchers still use 2D SMLM on home-built systems, currently available commercial systems provide 3D localization for SMLM. Most systems use astigmatism, a point-spread function (PSF) engineering method, to localize particles in 3D.

The Vutara VXL from Bruker is a unique Single-Molecule Localization Microscopy (SMLM) system that uses a biplane method to acquire 3D data. In this method, the emission is split into two paths with a 600 nm difference in path length. By calibrating the system using experimental point spread functions (PSFs), the biplane method can collect localizations over a one-um range for a single sample plane. It can also collect 3D data over a larger range by performing Z series. This approach allows for deeper imaging, imaging adherent cells and tissue slices of 50 um and thicker, and even model organisms.

What kind of samples can SMLM image?

Single-Molecule Localization Microscopy (SMLM) can be used to analyze various samples. For example, the Vutara VXL from Bruker allows for imaging adherent cells, tissue slices 50 um and thicker, and even model organisms such as C. elegans and Drosophila. Samples can be fixed, or, with appropriate labeling methods, live cell imaging can be performed.

How does SMLM compare to electron microscopy (EM)?

Electron microscopy (EM) can provide a resolution of up to 1 nm or better, about 20 times better than the resolution of Single-Molecule Localization Microscopy (SMLM). However, SMLM allows the labeling, imaging, and identification of specific targets.

Resources

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Publications

Browse Super-Resolution Microscopy Articles

Year Journal Title Authors Applications
2024 bioRxiv The molecular mechanism of on-demand sterol biosynthesis at organelle contact sites. Zung N, Aravindan N ... Schuldiner M
2024 Science Native architecture of a human GBP1 defense complex for cell-autonomous immunity to infection. Zhu S, Bradfield CJ ... MacMicking JD Cells; Membrane; Bacteria
2024 bioRxiv GABA and astrocytic cholesterol determine the lipid environment of GABA(A)R in cultured cortical neurons. Yuan Z, Pavel MA, and Hansen SB
2024 Nano Lett One Stone, Two Birds: High-Brightness Aggregation-Induced Emission Photosensitizers for Super-Resolution Imaging and Photodynamic Therapy. Wang Z, Zhou Y ... Meng L Diseases; Eukaryota; Chemicals and Drugs
2024 Microsc Microanal Indirect Correlative Light and Electron Microscopy (iCLEM): A Novel Pipeline for Multiscale Quantification of Structure From Molecules to Organs. Struckman HL, Moise N ... Veeraraghavan R Cells; Membrane; Cellular Structures
2024 bioRxiv Increased interaction between connexin43 and microtubules is critical for glioblastoma stem-like cell maintenance and tumorigenicity. Smyth JW, Guo S ... Lamouille S
2024 J Am Chem Soc Targeted Photoconvertible BODIPYs Based on Directed Photooxidation-Induced Conversion for Applications in Photoconversion and Live Super-Resolution Imaging. Saladin L, Breton V ... Collot M Cells; Nervous System; Eukaryota
2024 Nature RNA-mediated symmetry breaking enables singular olfactory receptor choice. Pourmorady AD, Bashkirova EV ... Lomvardas S Cells; Nervous System; Genetic Phenomena
2024 Elife Mechanical activation of TWIK-related potassium channel by nanoscopic movement and rapid second messenger signaling. Petersen EN, Pavel MA ... Hansen SB Cells; Membrane; Signal Transduction
2024 bioRxiv Enhancer-promoter hubs organize transcriptional networks promoting oncogenesis and drug resistance. Perlman BS, Burget N ... Faryabi RB
2024 bioRxiv Long axial-range double-helix point spread functions for 3D volumetric super-resolution imaging. Nakatani Y, Gaumer S ... Gustavsson AK
2024 J Extracell Vesicles Characterisation of LPS+ bacterial extracellular vesicles along the gut-hepatic portal vein-liver axis. Jain H, Kumar A ... Deep G Cells; EV; Bacteria
2024 bioRxiv Lysine Demethylase 4A is a Centrosome Associated Protein Required for Centrosome Integrity and Genomic Stability. Chowdhury P, Wang X ... Dere R
2024 Neurophotonics Molecular mapping of neuronal architecture using STORM microscopy and new fluorescent probes for SMLM imaging. Breton V, Nazac P ... Danglot L
2024 ACS Omega Fast In Vitro Synthesis and Direct Labeling of Nanobodies for Prototyping in Microscopy Applications. Behrens L, Walter RM ... Zemella A
2024 Methods Mol Biol Quantitative Super-Resolution Imaging of ER-Phagy Initiation in Cells. Balakrishnan A, Glogger M, and Heilemann M Cells; Organelles; Cellular Structures
2023 Nat Cell Biol Curved adhesions mediate cell attachment to soft matrix fibres in three dimensions. Zhang W, Lu CH ... Cui B Cells; Membrane; Cellular Structures
2023 bioRxiv Curved adhesions mediate cell attachment to soft matrix fibres in 3D. Zhang W, Lu CH ... Cui B
2023 Membranes (Basel) Cholesterol Regulation of Membrane Proteins Revealed by Two-Color Super-Resolution Imaging. Yuan Z, and Hansen SB
2023 Nature PLSCR1 is a cell-autonomous defence factor against SARS-CoV-2 infection. Xu D, Jiang W ... MacMicking JD Cells; Viruses; Diseases
2023 PLoS Pathog An ACAT inhibitor suppresses SARS-CoV-2 replication and boosts antiviral T cell activity. Wing PAC, Schmidt NM ... McKeating JA Cells; Viruses; Immunology
2023 Methods Cell Biol Single-molecule imaging in the primary cilium. Weiss LE, Love JF ... Gustavsson AK Cells; Signal Transduction; Cellular Structures
2023 J Clin Invest NaV1.6 dysregulation within myocardial T-tubules by D96V calmodulin enhances proarrhythmic sodium and calcium mishandling. Tarasov M, Struckman HL ... Radwanski PB Cells; Diseases; Eukaryota
2023 bioRxiv Unraveling Chamber-specific Differences in Intercalated Disc Ultrastructure and Molecular Organization and Their Impact on Cardiac Conduction. Struckman HL, Moise N ... Veeraraghavan R
2023 bioRxiv Unraveling Chamber-specific Differences in Intercalated Disc Ultrastructure and Molecular Organization and Their Impact on Cardiac Conduction. Struckman HL, Moise N ... Veeraraghavan R
2023 JACC Clin Electrophysiol Unraveling Impacts of Chamber-Specific Differences in Intercalated Disc Ultrastructure and Molecular Organization on Cardiac Conduction. Struckman HL, Moise N ... Veeraraghavan R Cells; Diseases; Eukaryota
2023 JACC Clin Electrophysiol Unraveling Impacts of Chamber-Specific Differences in Intercalated Disc Ultrastructure and Molecular Organization on Cardiac Conduction. Struckman HL, Moise N ... Veeraraghavan R Cells; Diseases; Eukaryota
2023 Adv Mater Brain-Targeted Liposomes Loaded with Monoclonal Antibodies Reduce Alpha-Synuclein Aggregation and Improve Behavioral Symptoms in Parkinson's Disease. Sela M, Poley M ... Schroeder A Nervous System; Diseases; Eukaryota
2023 Nat Commun Combinatorial expression of neurexins and LAR-type phosphotyrosine phosphatase receptors instructs assembly of a cerebellar circuit. Sclip A, and Sudhof TC Cells; Nervous System; Eukaryota
2023 Biomed Opt Express Super-Resolution-Chip: an in-vitro platform that enables super-resolution microscopy of co-cultures and 3D systems. Sade O, Boneberg R ... Maoz BM
2023 Glia Expression and subcellular localization of mitochondrial docking protein, syntaphilin, in oligodendrocytes and CNS myelin sheath. Nakamura DS, Gothie JM ... Kennedy TE Cells; Membrane; Organelles
2023 Elife CaV1 and CaV2 calcium channels mediate the release of distinct pools of synaptic vesicles. Mueller BD, Merrill SA ... Jorgensen EM Cells; Synapses; Membrane
2023 JACC Clin Electrophysiol Vascular Endothelial Barrier Protection Prevents Atrial Fibrillation by Preserving Cardiac Nanostructure. Mezache L, Soltisz AM ... Veeraraghavan R Cells; Diseases; Eukaryota
2023 JACC Clin Electrophysiol Vascular Endothelial Barrier Protection Prevents Atrial Fibrillation by Preserving Cardiac Nanostructure. Mezache L, Soltisz AM ... Veeraraghavan R Cells; Diseases; Eukaryota
2023 Sci Adv Neurexin-2: An inhibitory neurexin that restricts excitatory synapse formation in the hippocampus. Lin PY, Chen LY ... Sudhof TC
2023 Nanoscale Horiz Super-resolution imaging of linearized chromatin in tunable nanochannels. Lee JH, Chiu JH ... Takayama S Cells; Chromosomes; Cell Nucleus
2023 iScience Human neutrophils communicate remotely via calcium-dependent glutamate-induced glutamate release. Kopach O, Sylantyev S ... Rusakov DA
2023 bioRxiv A hierarchical pathway for assembly of the distal appendages that organize primary cilia. Kanie T, Love JF ... Jackson PK
2023 Nat Commun Synapsin condensation controls synaptic vesicle sequestering and dynamics. Hoffmann C, Rentsch J ... Milovanovic D Cells; Synapses; Membrane
2023 STAR Protoc Super-resolution imaging of synaptic scaffold proteins in rat hippocampal neurons. Guzikowski NJ, and Kavalali ET Cells; Synapses; Membrane
2023 Cell Calcium Distinct pools of synaptic vesicles are released by different calcium channels. Dolphin AC Cells; Synapses; Organelles
2023 bioRxiv Super-resolution imaging of potassium channels with genetically encoded EGFP. Call IM, Bois JL, and Hansen SB
2023 Europace Personalized ablation vs. conventional ablation strategies to terminate atrial fibrillation and prevent recurrence. Azzolin L, Eichenlaub M ... Loewe A Diseases; Eukaryota
2022 Nat Commun Teneurins assemble into presynaptic nanoclusters that promote synapse formation via postsynaptic non-teneurin ligands. Zhang X, Lin PY ... Sudhof TC Cells; Synapses; Membrane
2022 Mol Biol Cell Precise measurement of nanoscopic septin ring structures with deep learning-assisted quantitative superresolution microscopy. Zehtabian A, Muller PM ... Ewers H Cells; Cellular Structures; Microscopy
2022 Commun Biol Hydroxychloroquine blocks SARS-CoV-2 entry into the endocytic pathway in mammalian cell culture. Yuan Z, Pavel MA ... Hansen SB Cells; Viruses; Lipids
2022 Commun Biol Author Correction: Hydroxychloroquine blocks SARS-CoV-2 entry into the endocytic pathway in mammalian cell culture. Yuan Z, Pavel MA ... Hansen SB
2022 Elife Probing the segregation of evoked and spontaneous neurotransmission via photobleaching and recovery of a fluorescent glutamate sensor. Wang CS, Chanaday NL ... Kavalali ET Cells; Synapses; Membrane
2022 Adv Sci (Weinh) Nebulized mRNA-Encoded Antibodies Protect Hamsters from SARS-CoV-2 Infection. Vanover D, Zurla C ... Santangelo PJ Viruses; Diseases; Nucleic Acids, Nucleotides, and Nucleosides
2022 Front Physiol TRPC1 channels underlie stretch-modulated sarcoplasmic reticulum calcium leak in cardiomyocytes. Streiff ME, Corbin AC ... Sachse FB
2022 Front Immunol Spatial organization and early signaling of the B-cell receptor in CLL. Shorer Arbel Y, Bronstein Y ... Herishanu Y Signal Transduction; Diseases; Eukaryota
2022 Autophagy Human platelets display dysregulated sepsis-associated autophagy, induced by altered LC3 protein-protein interaction of the Vici-protein EPG5. Schwertz H, Rowley JW ... Rondina MT Cells; Organelles; Cellular Structures
2022 PLoS Biol The synaptic scaffold protein MPP2 interacts with GABAA receptors at the periphery of the postsynaptic density of glutamatergic synapses. Schmerl B, Gimber N ... Shoichet SA Cells; Synapses; Membrane
2022 J Cell Biol Engineered synaptic tools reveal localized cAMP signaling in synapse assembly. Sando R, Ho ML ... Sudhof TC Cells; Synapses; Membrane
2022 EMBO J Phospholipid imbalance impairs autophagosome completion. Polyansky A, Shatz O ... Elazar Z Cells; Organelles; Cellular Structures
2022 Adv Biol (Weinh) Engineering Gelation Kinetics in Living Silk Hydrogels by Differential Dynamic Microscopy Microrheology and Machine Learning. Martineau RL, Bayles AV ... Gupta MK Bacteria; Microscopy; Eukaryota
2022 ACS Nano Designer Liposomic Nanocarriers Are Effective Biofilm Eradicators. Kluzek M, Oppenheimer-Shaanan Y ... Klein J Bacteria; Lipids; Chemicals and Drugs
2022 Nat Commun Capture at the ER-mitochondrial contacts licenses IP(3) receptors to stimulate local Ca(2+) transfer and oxidative metabolism. Katona M, Bartok A ... Hajnoczky G Cells; Organelles; Signal Transduction
2022 Cell Rep Nano-organization of spontaneous GABAergic transmission directs its autonomous function in neuronal signaling. Guzikowski NJ, and Kavalali ET Cells; Synapses; Membrane
2022 ACS Nano Synergizing Exchangeable Fluorophore Labels for Multitarget STED Microscopy. Glogger M, Wang D ... Heilemann M Microscopy; Chemicals and Drugs
2022 Biomacromolecules Fluorescent Polymer-AS1411-Aptamer Probe for dSTORM Super-Resolution Imaging of Endogenous Nucleolin. Fabre L, Rousset C ... Favier A Microscopy; Nucleic Acids, Nucleotides, and Nucleosides; Nucleoproteins
2022 Nat Methods Fluorogenic DNA-PAINT for faster, low-background super-resolution imaging. Chung KKH, Zhang Z ... Bewersdorf J Microscopy; DNA; Nucleic Acids, Nucleotides, and Nucleosides
2022 Cell Rep Methods Multimodal imaging of synaptic vesicles with a single probe. An SJ, Stagi M ... Zenisek D Cells; Synapses; Organelles
2022 Cell Rep Methods Rapid 3D-STORM imaging of diverse molecular targets in tissue. Albrecht NE, Jiang D ... Samuel MA Cells; Synapses; Membrane
2021 J Phys Chem B Single-Molecule Tracking of Chromatin-Associated Proteins in the C. elegans Gonad. von Diezmann L, and Rog O Cells; Chromosomes; Cell Nucleus
2021 Nat Protoc Implementation of a 4Pi-SMS super-resolution microscope. Wang J, Allgeyer ES ... Bewersdorf J Microscopy; Eukaryota
2021 Kidney360 Quantitative super-resolution microscopy reveals promoting mitochondrial interconnectivity protects against AKI. Taguchi K, Elias BC ... Brooks CR Cells; Organelles; Cellular Structures
2021 Biol Open MICAL-L1 is required for cargo protein delivery to the cell surface. Sikora R, Bun P ... Zahraoui A Cells; Membrane; Protein Binding
2021 Membranes (Basel) Quantitative Super-Resolution Microscopy to Assess Adhesion of Neuronal Cells on Single-Layer Graphene Substrates. Scalisi S, Pennacchietti F ... Cella Zanacchi F
2021 Elife Rapid recycling of glutamate transporters on the astroglial surface. Michaluk P, Heller JP, and Rusakov DA Cells; Nervous System; Eukaryota
2021 Elife Rapid recycling of glutamate transporters on the astroglial surface. Michaluk P, Heller JP, and Rusakov DA Cells; Nervous System; Eukaryota
2021 STAR Protoc Protocol for multicolor three-dimensional dSTORM data analysis using MATLAB-based script package Grafeo. Haas KT, and Peaucelle A Cells
2021 Nucleic Acids Res Comparison of loop extrusion and diffusion capture as mitotic chromosome formation pathways in fission yeast. Gerguri T, Fu X ... Uhlmann F Cells; Chromosomes; Cell Nucleus
2021 Nat Biotechnol Left-handed DNA-PAINT for improved super-resolution imaging in the nucleus. Geertsema HJ, Aimola G ... Ewers H Cells; Cell Nucleus; Organelles
2021 Dev Dyn Microtubules provide guidance cues for myofibril and sarcomere assembly and growth. Dhanyasi N, VijayRaghavan K ... Schejter ED Cells; Organelles; Cellular Structures
2021 Curr Opin Cell Biol Tracking and interpreting long-range chromatin interactions with super-resolution live-cell imaging. Brandao HB, Gabriele M, and Hansen AS Cells; Chromosomes; Cell Nucleus
2021 J Neurosci Complement Drives Synaptic Degeneration and Progressive Cognitive Decline in the Chronic Phase after Traumatic Brain Injury. Alawieh A, Chalhoub RM ... Tomlinson S Cells; Synapses; Membrane
2020 Nat Methods Nanoscale subcellular architecture revealed by multicolor three-dimensional salvaged fluorescence imaging. Zhang Y, Schroeder LK ... Bewersdorf J Cells; Organelles; Cellular Structures
2020 bioRxiv Hydroxychloroquine: mechanism of action inhibiting SARS-CoV2 entry. Yuan Z, Pavel MA ... Hansen SB
2020 Sci Rep Three-dimensional super-resolution fluorescence imaging of DNA. Yardimci S, Burnham DR ... Yardimci H Cells; Chromosomes; Cell Nucleus
2020 Nat Methods 3D ATAC-PALM: super-resolution imaging of the accessible genome. Xie L, Dong P ... Liu Z Microscopy; DNA; Genetic Phenomena
2020 Life Sci Alliance Regulation of axonal morphogenesis by the mitochondrial protein Efhd1. Ulisse V, Dey S ... Yaron A Cells; Organelles; Nervous System
2020 Microsc Microanal Super-Resolution Imaging Using a Novel High-Fidelity Antibody Reveals Close Association of the Neuronal Sodium Channel Na(V)1.6 with Ryanodine Receptors in Cardiac Muscle. Struckman HL, Baine S ... Veeraraghavan R Microscopy; Eukaryota; Chemicals and Drugs
2020 Mater Sci Eng C Mater Biol Appl Development of PLGA nanoparticles for sustained release of a connexin43 mimetic peptide to target glioblastoma cells. Roberts R, Smyth JW ... Foster EJ Cells; Diseases; Eukaryota
2020 Proc Natl Acad Sci U S A Studies on the mechanism of general anesthesia. Pavel MA, Petersen EN ... Hansen SB Cells; Membrane; Cellular Structures
2020 Nat Methods 3D mapping and accelerated super-resolution imaging of the human genome using in situ sequencing. Nguyen HQ, Chattoraj S ... Wu CT Cells; Chromosomes; Cell Nucleus
2020 Nat Methods 3D mapping and accelerated super-resolution imaging of the human genome using in situ sequencing. Nguyen HQ, Chattoraj S ... Wu CT Cells; Chromosomes; Cell Nucleus
2020 Sci Rep Vascular endothelial growth factor promotes atrial arrhythmias by inducing acute intercalated disk remodeling. Mezache L, Struckman HL ... Veeraraghavan R Cells; Membrane; Cellular Structures
2020 Nat Commun Fast and accurate sCMOS noise correction for fluorescence microscopy. Mandracchia B, Hua X ... Jia S Cells; Organelles; Cellular Structures
2020 Nat Genet Cohesin promotes stochastic domain intermingling to ensure proper regulation of boundary-proximal genes. Luppino JM, Park DS ... Joyce EF Cells; Chromosomes; Cell Nucleus
2020 Proc Natl Acad Sci U S A beta-Arrestin2 is a critical component of the GPCR-eNOS signalosome. Liu S, Luttrell LM ... Rockey DC Cells; Signal Transduction; Diseases
2020 Nat Commun Decorating bacteria with self-assembled synthetic receptors. Lahav-Mankovski N, Prasad PK ... Margulies D Cells; Membrane; Bacteria
2020 Nat Rev Cardiol Transcriptional and epigenetic regulation of macrophages in atherosclerosis. Kuznetsova T, Prange KHM ... de Winther MPJ Cells; Immunology; Diseases
2020 Methods Imaging tripartite synapses using super-resolution microscopy. Heller JP, Odii T ... Rusakov DA Cells; Synapses; Membrane
2020 Front Oncol Progression-Mediated Changes in Mitochondrial Morphology Promotes Adaptation to Hypoxic Peritoneal Conditions in Serous Ovarian Cancer. Grieco JP, Allen ME ... Schmelz EM
2020 Int J Mol Sci Super-Resolution Imaging of Tight and Adherens Junctions: Challenges and Open Questions. Gonschior H, Haucke V, and Lehmann M Cells; Membrane; Cellular Structures
2020 ACS Nano Super-Resolution Fluorescence Imaging Reveals That Serine Incorporator Protein 5 Inhibits Human Immunodeficiency Virus Fusion by Disrupting Envelope Glycoprotein Clusters. Chen YC, Sood C ... Melikyan GB Diseases; Eukaryota; Chemicals and Drugs
2020 PLoS Pathog Polymerase-tagged respiratory syncytial virus reveals a dynamic rearrangement of the ribonucleocapsid complex during infection. Blanchard EL, Braun MR ... Santangelo PJ Cells; Viruses; Diseases
2020 Mol Biol Cell Novel fibrillar structure in the inversin compartment of primary cilia revealed by 3D single-molecule superresolution microscopy. Bennett HW, Gustavsson AK ... Jackson PK Cells; Cellular Structures; Microscopy
2020 Front Neural Circuits Ultradian Secretion of Growth Hormone in Mice: Linking Physiology With Changes in Synapse Parameters Using Super-Resolution Microscopy. Bednarz K, Alshafie W ... Stroh T Cells; Synapses; Membrane
2020 Physiol Rep Calcium-induced calcium release in proximity to hair cell BK channels revealed by PKA activation. Bai JP, Xue N ... Navaratnam D Cells; Signal Transduction; Nervous System
2020 Mol Biol Cell Plasma membrane tension regulates eisosome structure and function. Appadurai D, Gay L ... Babst M Cells; Membrane; Cellular Structures
2020 J Cell Biol Regulated resurfacing of a somatostatin receptor storage compartment fine-tunes pituitary secretion. Alshafie W, Francis V ... McPherson PS Cells; Signal Transduction; Nervous System
2020 Front Physiol Modulation of Calcium Transients in Cardiomyocytes by Transient Receptor Potential Canonical 6 Channels. Ahmad AA, Streiff ME ... Sachse FB
2020 Proc Natl Acad Sci U S A Correction for Liu et al., beta-Arrestin2 is a critical component of the GPCR-eNOS signalosome. ?
2019 Cytometry A Kinetics of Mimivirus Infection Stages Quantified Using Image Flow Cytometry. Yaakov LB, Mutsafi Y ... Minsky A Cells; Viruses; Cellular Structures
2019 Chempluschem The Effect of the Phospholipid Bilayer Environment on Cholesterol Crystal Polymorphism. Varsano N, Beghi F ... Addadi L Lipids; Chemicals and Drugs
2019 Chempluschem The Effect of the Phospholipid Bilayer Environment on Cholesterol Crystal Polymorphism. Varsano N, Beghi F ... Addadi L Lipids; Eukaryota; Chemicals and Drugs
2019 J Cell Biol Dynamic nanoscale morphology of the ER surveyed by STED microscopy. Schroeder LK, Barentine AES ... Bahmanyar S Cells; Membrane; Organelles
2019 Elife H3K9me2 orchestrates inheritance of spatial positioning of peripheral heterochromatin through mitosis. Poleshko A, Smith CL ... Epstein JA Cells; Chromosomes; Cell Nucleus
2019 Oxid Med Cell Longev Potential of Mitochondria-Targeted Antioxidants to Prevent Oxidative Stress in Pancreatic beta-cells. Plecita-Hlavata L, Engstova H ... Jezek P Cells; Membrane; Organelles
2019 Atherosclerosis Alpha-cyclodextrin inhibits cholesterol crystal-induced complement-mediated inflammation: A potential new compound for treatment of atherosclerosis. Pilely K, Bakke SS ... Garred P Cells; Immunology; Diseases
2019 Anesth Analg Polymodal Mechanism for TWIK-Related K+ Channel Inhibition by Local Anesthetic. Pavel MA, Chung HW ... Hansen SB Cells; Membrane; Signal Transduction
2019 Clin Ther Why Colchicine Should Be Considered for Secondary Prevention of Atherosclerosis: An Overview. Nidorf SM, and Thompson PL Diseases; Eukaryota; Chemicals and Drugs
2019 ACS Appl Mater Interfaces VIPER(nano): Improved Live Cell Intracellular Protein Tracking. Morgan E, Doh J ... Reich N Cells; Cellular Structures; Eukaryota
2019 Dev Cell Quantitative Super-Resolution Microscopy of the Mammalian Glycocalyx. Mockl L, Pedram K ... Moerner WE Cells; Membrane; Cellular Structures
2019 J Biol Chem Myeloid Acat1/Soat1 KO attenuates pro-inflammatory responses in macrophages and protects against atherosclerosis in a model of advanced lesions. Melton EM, Li H ... Chang TY Cells; Immunology; Diseases
2019 Neuron Neuroligin-4 Regulates Excitatory Synaptic Transmission in Human Neurons. Marro SG, Chanda S ... Wernig M Cells; Synapses; Membrane
2019 J Mol Biol A Mechanism of Modulating the Direction of Flagellar Rotation in Bacteria by Fumarate and Fumarate Reductase. Koganitsky A, Tworowski D ... Eisenbach M Cells; Bacteria; Protein Binding
2019 Methods Mol Biol A Method to Visualize the Nanoscopic Morphology of Astrocytes In Vitro and In Situ. Heller JP, and Rusakov DA Cells; Nervous System; Microscopy
2019 Cell Physiol Biochem The Mitochondria-Targeted Antioxidant MitoQ Modulates Mitochondrial Function and Endoplasmic Reticulum Stress in Pancreatic beta Cells Exposed to Hyperglycaemia. Escribano-Lopez I, Banuls C ... Victor VM Cells; Organelles; Signal Transduction
2019 Biochim Biophys Acta Bioenerg Mitochondrial cristae narrowing upon higher 2-oxoglutarate load. Dlaskova A, Spacek T ... Jezek P Cells; Membrane; Organelles
2019 J Cell Biol Single event visualization of unconventional secretion of FGF2. Dimou E, Cosentino K ... Nickel W Cells; Membrane; Cellular Structures
2019 Cell Chem Biol MemBright: A Family of Fluorescent Membrane Probes for Advanced Cellular Imaging and Neuroscience. Collot M, Ashokkumar P ... Klymchenko AS Cells; Membrane; Nervous System
2019 Arterioscler Thromb Vasc Biol MARK4 (Microtubule Affinity-Regulating Kinase 4)-Dependent Inflammasome Activation Promotes Atherosclerosis-Brief Report. Clement M, Chen X ... Li X Cells; Diseases; Eukaryota
2019 Sci Rep Enhancement of Cardiac Store Operated Calcium Entry (SOCE) within Novel Intercalated Disk Microdomains in Arrhythmic Disease. Bonilla IM, Belevych AE ... Gyorke S Cells; Organelles; Signal Transduction
2019 Atherosclerosis Ultramorphological analysis of plaque advancement and cholesterol crystal formation in Ldlr knockout mouse atherosclerosis. Baumer Y, McCurdy S ... Boisvert WA Cells; Immunology; Microscopy
2019 Nat Commun IP(3) receptor isoforms differently regulate ER-mitochondrial contacts and local calcium transfer. Bartok A, Weaver D ... Hajnoczky G Cells; Organelles; Signal Transduction
2019 Elife Robo2 regulates synaptic oxytocin content by affecting actin dynamics. Anbalagan S, Blechman J ... Levkowitz G Cells; Synapses; Membrane
2018 Sci Signal The receptor tyrosine kinase TrkB signals without dimerization at the plasma membrane. Zahavi EE, Steinberg N ... Perlson E Cells; Membrane; Cellular Structures
2018 Nat Commun Autophagy differentially regulates TNF receptor Fn14 by distinct mammalian Atg8 proteins. Winer H, Fraiberg M ... Elazar Z Cells; Organelles; Signal Transduction
2018 Nature Spatiotemporal regulation of liquid-like condensates in epigenetic inheritance. Wan G, Fields BD ... Kennedy S Cells; Organelles; Cellular Structures
2018 Elife The adhesion function of the sodium channel beta subunit (beta1) contributes to cardiac action potential propagation. Veeraraghavan R, Hoeker GS ... Gourdie RG Cells; Membrane; Cellular Structures
2018 Proc Natl Acad Sci U S A Two polymorphic cholesterol monohydrate crystal structures form in macrophage culture models of atherosclerosis. Varsano N, Beghi F ... Addadi L Cells; Immunology; Microscopy
2018 Nat Commun Engineered mRNA-expressed antibodies prevent respiratory syncytial virus infection. Tiwari PM, Vanover D ... Santangelo PJ Cells; Membrane; Viruses
2018 PLoS Genet Walking along chromosomes with super-resolution imaging, contact maps, and integrative modeling. Nir G, Farabella I ... Wu CT Cells; Chromosomes; Cell Nucleus
2018 Nat Commun Mapping molecular assemblies with fluorescence microscopy and object-based spatial statistics. Lagache T, Grassart A ... Olivo-Marin JC
2018 Mol Biol Cell Altered translation initiation of Gja1 limits gap junction formation during epithelial-mesenchymal transition. James CC, Zeitz MJ ... Smyth JW
2018 Cell Rep The WD40 Protein BamB Mediates Coupling of BAM Complexes into Assembly Precincts in the Bacterial Outer Membrane. Gunasinghe SD, Shiota T ... Lithgow T Cells; Membrane; Bacteria
2018 Cell Rep Resolving ESCRT-III Spirals at the Intercellular Bridge of Dividing Cells Using 3D STORM. Goliand I, Adar-Levor S ... Elia N Cells; Membrane; Signal Transduction
2018 Biochim Biophys Acta Bioenerg 3D super-resolution microscopy reflects mitochondrial cristae alternations and mtDNA nucleoid size and distribution. Dlaskova A, Engstova H ... Jezek P Cells; Membrane; Cellular Structures
2018 PLoS Pathog Outer membrane vesicles from Neisseria gonorrhoeae target PorB to mitochondria and induce apoptosis. Deo P, Chow SH ... Naderer T Cells; Membrane; Bacteria
2018 Proc Natl Acad Sci U S A Cargo navigation across 3D microtubule intersections. Bergman JP, Bovyn MJ ... Vershinin MD Cells; Protein Binding; Cellular Structures
2018 mBio Colocalization and Disposition of Cellulosomes in Clostridium clariflavum as Revealed by Correlative Superresolution Imaging. Artzi L, Dadosh T ... Bayer EA Cells; Bacteria; Cellular Structures
2017 Nat Biotechnol Long time-lapse nanoscopy with spontaneously blinking membrane probes. Takakura H, Zhang Y ... Toomre D Cells; Cellular Structures; Microscopy
2017 Sci Rep Nkx6.1 decline accompanies mitochondrial DNA reduction but subtle nucleoid size decrease in pancreatic islet beta-cells of diabetic Goto Kakizaki rats. Spacek T, Pavluch V ... Jezek P Cells; Organelles; Cellular Structures
2017 Antioxid Redox Signal Selective Disruption of Respiratory Supercomplexes as a New Strategy to Suppress Her2(high) Breast Cancer. Rohlenova K, Sachaphibulkij K ... Neuzil J Cells; Organelles; Protein Binding
2017 Haematologica Erythrocyte survival is controlled by microRNA-142. Rivkin N, Chapnik E ... Hornstein E Cells; Nucleic Acids, Nucleotides, and Nucleosides; Eukaryota
2017 PLoS Pathog Structural studies demonstrating a bacteriophage-like replication cycle of the eukaryote-infecting Paramecium bursaria chlorella virus-1. Milrot E, Shimoni E ... Minsky A Viruses; Microscopy; Diseases
2017 Nat Protoc Diverse protocols for correlative super-resolution fluorescence imaging and electron microscopy of chemically fixed samples. Kopek BG, Paez-Segala MG ... Hess HF Microscopy; Chemicals and Drugs
2017 Proc Natl Acad Sci U S A WD40-repeat 47, a microtubule-associated protein, is essential for brain development and autophagy. Kannan M, Bayam E ... Yalcin B Cells; Nervous System; Cellular Structures
2017 Nat Protoc Visualizing endocytic recycling and trafficking in live neurons by subdiffractional tracking of internalized molecules. Joensuu M, Martinez-Marmol R ... Meunier FA Cells; Nervous System; Genetic Phenomena
2017 Front Cell Neurosci The Nanoworld of the Tripartite Synapse: Insights from Super-Resolution Microscopy. Heller JP, and Rusakov DA
2017 J Neurosci Res Probing nano-organization of astroglia with multi-color super-resolution microscopy. Heller JP, Michaluk P ... Rusakov DA Cells; Nervous System; Microscopy
2017 J Neurosci UPF1 Governs Synaptic Plasticity through Association with a STAU2 RNA Granule. Graber TE, Freemantle E ... Sossin WS Cells; Synapses; Membrane
2017 Methods Mol Biol Brain Slice Staining and Preparation for Three-Dimensional Super-Resolution Microscopy. German CL, Gudheti MV ... Jorgensen EM Nervous System; Microscopy; Eukaryota
2017 Cytoskeleton (Hoboken) Dynamics of the sealing zone in cultured osteoclasts. Batsir S, Geiger B, and Kam Z Cells; Eukaryota; Chemicals and Drugs
2017 Development Escort cells generate a dynamic compartment for germline stem cell differentiation via combined Stat and Erk signalling. Banisch TU, Maimon I ... Gilboa L Cells; Signal Transduction; Eukaryota
2017 J Vis Exp Method for Labeling Transcripts in Individual Escherichia coli Cells for Single-molecule Fluorescence In Situ Hybridization Experiments. Arbel-Goren R, Shapira Y, and Stavans J Bacteria; Genetic Phenomena
2017 J Neurosci Erratum: Graber et al., "UPF1 Governs Synaptic Plasticity through Association with a STAU2 RNA Granule". ?
2016 J Bone Miner Res The Actin-Binding Protein Cofilin and Its Interaction With Cortactin Are Required for Podosome Patterning in Osteoclasts and Bone Resorption In Vivo and In Vitro. Zalli D, Neff L ... Baron R Cells; Protein Binding; Cellular Structures
2016 Methods Mol Biol Superresolution Microscopy of the Nuclear Envelope and Associated Proteins. Xie W, Horn HF, and Wright GD Cells; Membrane; Cell Nucleus
2016 Sci Rep Imaging cellular structures in super-resolution with SIM, STED and Localisation Microscopy: A practical comparison. Wegel E, Gohler A ... Dobbie IM Cells; Cellular Structures; Immunology
2016 Mol Biol Cell Stochastic optical reconstruction microscopy-based relative localization analysis (STORM-RLA) for quantitative nanoscale assessment of spatial protein organization. Veeraraghavan R, and Gourdie RG Microscopy; Chemicals and Drugs
2016 Pflugers Arch Potassium channels in the Cx43 gap junction perinexus modulate ephaptic coupling: an experimental and modeling study. Veeraraghavan R, Lin J ... Poelzing S Cells; Membrane; Cellular Structures
2016 J Am Chem Soc Development of Correlative Cryo-soft X-ray Tomography and Stochastic Reconstruction Microscopy. A Study of Cholesterol Crystal Early Formation in Cells. Varsano N, Dadosh T ... Addadi L Cells; Immunology; Microscopy
2016 FASEB J Hypoxic HepG2 cell adaptation decreases ATP synthase dimers and ATP production in inflated cristae by mitofilin down-regulation concomitant to MICOS clustering. Plecita-Hlavata L, Engstova H ... Jezek P Cells; Organelles; Cellular Structures
2016 Nat Commun Kinetic disruption of lipid rafts is a mechanosensor for phospholipase D. Petersen EN, Chung HW ... Hansen SB Cells; Membrane; Signal Transduction
2016 Sci Rep Novel super-resolution capable mitochondrial probe, MitoRed AIE, enables assessment of real-time molecular mitochondrial dynamics. Lo CY, Chen S ... Elgass KD Cells; Membrane; Organelles
2016 J Control Release Tracking and quantifying polymer therapeutic distribution on a cellular level using 3D dSTORM. Hartley JM, Zhang R ... Kopecek J Cells; Microscopy; Diseases
2016 J Biol Chem Strategic Positioning and Biased Activity of the Mitochondrial Calcium Uniporter in Cardiac Muscle. De La Fuente S, Fernandez-Sanz C ... Csordas G Cells; Membrane; Organelles
2016 Development Deposition of collagen type I onto skeletal endothelium reveals a new role for blood vessels in regulating bone morphology. Ben Shoham A, Rot C ... Zelzer E Cells; Eukaryota; Chemicals and Drugs
2016 Eur Biophys J Delaunay algorithm and principal component analysis for 3D visualization of mitochondrial DNA nucleoids by Biplane FPALM/dSTORM. Alan L, Spacek T, and Jezek P Cells; Microscopy; DNA
2015 J Control Release Design and synthesis of FRET-trackable HPMA-based biodegradable conjugates for drug/gene delivery. Yang J, Zhang R ... Kopecek J
2015 Bioinformatics PALMsiever: a tool to turn raw data into results for single-molecule localization microscopy. Pengo T, Holden SJ, and Manley S Cells; Cellular Structures; Microscopy
2015 Mol Med Rep Coupled aggregation of mitochondrial single-strand DNA-binding protein tagged with Eos fluorescent protein visualizes synchronized activity of mitochondrial nucleoids. Olejar T, Pajuelo-Reguera D ... Jezek P Cells; Organelles; Protein Binding
2015 Methods Mol Biol Does super-resolution fluorescence microscopy obsolete previous microscopic approaches to protein co-localization? MacDonald L, Baldini G, and Storrie B Microscopy; Chemicals and Drugs
2015 Nat Protoc Optimized sample preparation for single-molecule localization-based superresolution microscopy in yeast. Kaplan C, and Ewers H Cells; Cellular Structures; Fungi
2015 J Control Release Cell-transfecting multilayered surfaces from poly(amido amine)s. Hujaya SD, Marchioli G ... Engbersen JF
2015 Acta Biomater Multilayered thin films from poly(amido amine)s and DNA. Hujaya SD, Engbersen JF, and Paulusse JM Cells; DNA; Genetic Phenomena
2015 PLoS Genet Small Rad51 and Dmc1 Complexes Often Co-occupy Both Ends of a Meiotic DNA Double Strand Break. Brown MS, Grubb J ... Bishop DK Fungi; DNA; Genetic Phenomena
2015 PLoS Pathog CD169-mediated trafficking of HIV to plasma membrane invaginations in dendritic cells attenuates efficacy of anti-gp120 broadly neutralizing antibodies. Akiyama H, Ramirez NG ... Gummuluru S Cells; Membrane; Viruses
2015 PLoS Pathog Correction: CD169-Mediated Trafficking of HIV to Plasma Membrane Invaginations in Dendritic Cells Attenuates Efficacy of Anti-gp120 Broadly Neutralizing Antibodies. ?
2014 Proc Natl Acad Sci U S A Sequential combination therapy of ovarian cancer with degradable N-(2-hydroxypropyl)methacrylamide copolymer paclitaxel and gemcitabine conjugates. Zhang R, Yang J ... Kopecek J Diseases; Nucleic Acids, Nucleotides, and Nucleosides; Eukaryota
2014 Methods Mol Biol Nanometer-resolution fluorescence electron microscopy (nano-EM) in cultured cells. Watanabe S, Lehmann M ... Jorgensen EM Cells; Microscopy; Eukaryota
2014 Wiley Interdiscip Rev Syst Biol Med Subdiffractive microscopy: techniques, applications, and challenges. Long BR, Robinson DC, and Zhong H Bacteria; Microscopy; Eukaryota
2014 J Mol Cell Cardiol Remodeling of the sarcomeric cytoskeleton in cardiac ventricular myocytes during heart failure and after cardiac resynchronization therapy. Lichter JG, Carruth E ... Sachse FB Cells; Organelles; Cellular Structures
2014 J Virol Structural analysis of respiratory syncytial virus reveals the position of M2-1 between the matrix protein and the ribonucleoprotein complex. Kiss G, Holl JM ... Wright ER Viruses; Microscopy; Diseases
2014 J Cell Biol Mechanisms of HsSAS-6 assembly promoting centriole formation in human cells. Keller D, Orpinell M ... Gonczy P Cells; Cellular Structures; Eukaryota
2014 ACS Nano Combining single RNA sensitive probes with subdiffraction-limited and live-cell imaging enables the characterization of virus dynamics in cells. Alonas E, Lifland AW ... Santangelo PJ Cells; Viruses; Nucleic Acids, Nucleotides, and Nucleosides
2013 Dev Cell Triacylglycerol synthesis enzymes mediate lipid droplet growth by relocalizing from the ER to lipid droplets. Wilfling F, Wang H ... Walther TC Cells; Organelles; Cellular Structures
2013 PLoS Biol NECAP 1 regulates AP-2 interactions to control vesicle size, number, and cargo during clathrin-mediated endocytosis. Ritter B, Murphy S ... McPherson PS Cells; Synapses; Organelles
2013 PLoS One Resolution doubling in 3D-STORM imaging through improved buffers. Olivier N, Keller D ... Manley S Cells; Microscopy; Eukaryota
2013 J Vis Exp Test samples for optimizing STORM super-resolution microscopy. Metcalf DJ, Edwards R ... Knight AE Cells; Microscopy; Eukaryota
2013 Opt Express Three dimensional single molecule localization using a phase retrieved pupil function. Liu S, Kromann EB ... Lidke KA Chemicals and Drugs
2013 J Opt Bleed-through correction for rendering and correlation analysis in multi-colour localization microscopy. Kim D, Curthoys NM ... Hess ST
2013 PLoS One Characterization of mRNA-cytoskeleton interactions in situ using FMTRIP and proximity ligation. Jung J, Lifland AW ... Santangelo PJ Cells; Cellular Structures; Microscopy
2013 Nat Methods Video-rate nanoscopy using sCMOS camera-specific single-molecule localization algorithms. Huang F, Hartwich TM ... Bewersdorf J Microscopy
2013 Biochem Biophys Res Commun Asymmetric packaging of polymerases within vesicular stomatitis virus. Hodges J, Tang X ... Saffarian S Viruses; Microscopy; Nucleic Acids, Nucleotides, and Nucleosides
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2013 Biophys J Actin mediates the nanoscale membrane organization of the clustered membrane protein influenza hemagglutinin. Gudheti MV, Curthoys NM ... Hess ST Cells; Membrane; Viruses
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2012 J Vis Exp Nano-fEM: protein localization using photo-activated localization microscopy and electron microscopy. Watanabe S, Richards J ... Jorgensen EM Microscopy; Eukaryota; Chemicals and Drugs
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