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1.
Cell ; 185(10): 1793-1805.e17, 2022 05 12.
Article in English | MEDLINE | ID: mdl-35483372

ABSTRACT

The lack of tools to observe drug-target interactions at cellular resolution in intact tissue has been a major barrier to understanding in vivo drug actions. Here, we develop clearing-assisted tissue click chemistry (CATCH) to optically image covalent drug targets in intact mammalian tissues. CATCH permits specific and robust in situ fluorescence imaging of target-bound drug molecules at subcellular resolution and enables the identification of target cell types. Using well-established inhibitors of endocannabinoid hydrolases and monoamine oxidases, direct or competitive CATCH not only reveals distinct anatomical distributions and predominant cell targets of different drug compounds in the mouse brain but also uncovers unexpected differences in drug engagement across and within brain regions, reflecting rare cell types, as well as dose-dependent target shifts across tissue, cellular, and subcellular compartments that are not accessible by conventional methods. CATCH represents a valuable platform for visualizing in vivo interactions of small molecules in tissue.


Subject(s)
Click Chemistry , Optical Imaging , Animals , Brain , Drug Delivery Systems , Mammals , Mice , Optical Imaging/methods
2.
Cell ; 185(1): 9-41, 2022 01 06.
Article in English | MEDLINE | ID: mdl-34995519

ABSTRACT

Recent progress in fluorescence imaging allows neuroscientists to observe the dynamics of thousands of individual neurons, identified genetically or by their connectivity, across multiple brain areas and for extended durations in awake behaving mammals. We discuss advances in fluorescent indicators of neural activity, viral and genetic methods to express these indicators, chronic animal preparations for long-term imaging studies, and microscopes to monitor and manipulate the activity of large neural ensembles. Ca2+ imaging studies of neural activity can track brain area interactions and distributed information processing at cellular resolution. Across smaller spatial scales, high-speed voltage imaging reveals the distinctive spiking patterns and coding properties of targeted neuron types. Collectively, these innovations will propel studies of brain function and dovetail with ongoing neuroscience initiatives to identify new neuron types and develop widely applicable, non-human primate models. The optical toolkit's growing sophistication also suggests that "brain observatory" facilities would be useful open resources for future brain-imaging studies.


Subject(s)
Brain Mapping/methods , Microscopy, Fluorescence, Multiphoton/methods , Neocortex/diagnostic imaging , Neocortex/metabolism , Neurons/metabolism , Optical Imaging/methods , Animals , Calcium/metabolism , Mice , Models, Animal , Neurosciences/methods
3.
Cell ; 184(22): 5608-5621.e18, 2021 10 28.
Article in English | MEDLINE | ID: mdl-34637701

ABSTRACT

Mammals use glabrous (hairless) skin of their hands and feet to navigate and manipulate their environment. Cortical maps of the body surface across species contain disproportionately large numbers of neurons dedicated to glabrous skin sensation, in part reflecting a higher density of mechanoreceptors that innervate these skin regions. Here, we find that disproportionate representation of glabrous skin emerges over postnatal development at the first synapse between peripheral mechanoreceptors and their central targets in the brainstem. Mechanoreceptor synapses undergo developmental refinement that depends on proximity of their terminals to glabrous skin, such that those innervating glabrous skin make synaptic connections that expand their central representation. In mice incapable of sensing gentle touch, mechanoreceptors innervating glabrous skin still make more powerful synapses in the brainstem. We propose that the skin region a mechanoreceptor innervates controls the developmental refinement of its central synapses to shape the representation of touch in the brain.


Subject(s)
Brain Stem/metabolism , Mechanoreceptors/metabolism , Synapses/metabolism , Touch Perception/physiology , Action Potentials/physiology , Animals , Animals, Newborn , Axons/metabolism , Ion Channels/metabolism , Mice, Knockout , Neurons/metabolism , Optical Imaging , Optogenetics , Skin/innervation
4.
Cell ; 184(2): 323-333.e9, 2021 01 21.
Article in English | MEDLINE | ID: mdl-33306959

ABSTRACT

The December 2019 outbreak of a novel respiratory virus, SARS-CoV-2, has become an ongoing global pandemic due in part to the challenge of identifying symptomatic, asymptomatic, and pre-symptomatic carriers of the virus. CRISPR diagnostics can augment gold-standard PCR-based testing if they can be made rapid, portable, and accurate. Here, we report the development of an amplification-free CRISPR-Cas13a assay for direct detection of SARS-CoV-2 from nasal swab RNA that can be read with a mobile phone microscope. The assay achieved ∼100 copies/µL sensitivity in under 30 min of measurement time and accurately detected pre-extracted RNA from a set of positive clinical samples in under 5 min. We combined crRNAs targeting SARS-CoV-2 RNA to improve sensitivity and specificity and directly quantified viral load using enzyme kinetics. Integrated with a reader device based on a mobile phone, this assay has the potential to enable rapid, low-cost, point-of-care screening for SARS-CoV-2.


Subject(s)
COVID-19 Nucleic Acid Testing/methods , Cell Phone/instrumentation , Optical Imaging/methods , RNA, Viral/analysis , Viral Load/methods , Animals , COVID-19 Nucleic Acid Testing/economics , COVID-19 Nucleic Acid Testing/instrumentation , CRISPR-Cas Systems , Cell Line , Coronavirus Nucleocapsid Proteins/genetics , Humans , Nasopharynx/virology , Optical Imaging/instrumentation , Phosphoproteins/genetics , Point-of-Care Testing , RNA Interference , RNA, Viral/genetics , Sensitivity and Specificity , Viral Load/economics , Viral Load/instrumentation
5.
Annu Rev Biochem ; 89: 557-581, 2020 06 20.
Article in English | MEDLINE | ID: mdl-32208767

ABSTRACT

The binding affinity and kinetics of target engagement are fundamental to establishing structure-activity relationships (SARs) for prospective therapeutic agents. Enhancing these binding parameters for operative targets, while minimizing binding to off-target sites, can translate to improved drug efficacy and a widened therapeutic window. Compound activity is typically assessed through modulation of an observed phenotype in cultured cells. Quantifying the corresponding binding properties under common cellular conditions can provide more meaningful interpretation of the cellular SAR analysis. Consequently, methods for assessing drug binding in living cells have advanced and are now integral to medicinal chemistry workflows. In this review, we survey key technological advancements that support quantitative assessments of target occupancy in cultured cells, emphasizing generalizable methodologies able to deliver analytical precision that heretofore required reductionist biochemical approaches.


Subject(s)
Chemistry, Pharmaceutical/methods , Fluorescent Dyes/chemistry , High-Throughput Screening Assays , Molecular Probe Techniques , Molecular Targeted Therapy/methods , Bioluminescence Resonance Energy Transfer Techniques , Cell Survival/drug effects , Cells, Cultured , Genes, Reporter , Humans , Kinetics , Optical Imaging/methods , Small Molecule Libraries/chemical synthesis , Small Molecule Libraries/pharmacology , Structure-Activity Relationship
6.
Cell ; 180(4): 796-812.e19, 2020 02 20.
Article in English | MEDLINE | ID: mdl-32059778

ABSTRACT

Optical tissue transparency permits scalable cellular and molecular investigation of complex tissues in 3D. Adult human organs are particularly challenging to render transparent because of the accumulation of dense and sturdy molecules in decades-aged tissues. To overcome these challenges, we developed SHANEL, a method based on a new tissue permeabilization approach to clear and label stiff human organs. We used SHANEL to render the intact adult human brain and kidney transparent and perform 3D histology with antibodies and dyes in centimeters-depth. Thereby, we revealed structural details of the intact human eye, human thyroid, human kidney, and transgenic pig pancreas at the cellular resolution. Furthermore, we developed a deep learning pipeline to analyze millions of cells in cleared human brain tissues within hours with standard lab computers. Overall, SHANEL is a robust and unbiased technology to chart the cellular and molecular architecture of large intact mammalian organs.


Subject(s)
Deep Learning , Imaging, Three-Dimensional/methods , Optical Imaging/methods , Staining and Labeling/methods , Aged, 80 and over , Animals , Brain/diagnostic imaging , Eye/diagnostic imaging , Female , Humans , Imaging, Three-Dimensional/standards , Kidney/diagnostic imaging , Limit of Detection , Male , Mice , Middle Aged , Optical Imaging/standards , Pancreas/diagnostic imaging , Staining and Labeling/standards , Swine , Thyroid Gland/diagnostic imaging
7.
Cell ; 180(3): 521-535.e18, 2020 02 06.
Article in English | MEDLINE | ID: mdl-31978320

ABSTRACT

Cortical layer 1 (L1) interneurons have been proposed as a hub for attentional modulation of underlying cortex, but the transformations that this circuit implements are not known. We combined genetically targeted voltage imaging with optogenetic activation and silencing to study the mechanisms underlying sensory processing in mouse barrel cortex L1. Whisker stimuli evoked precisely timed single spikes in L1 interneurons, followed by strong lateral inhibition. A mild aversive stimulus activated cholinergic inputs and evoked a bimodal distribution of spiking responses in L1. A simple conductance-based model that only contained lateral inhibition within L1 recapitulated the sensory responses and the winner-takes-all cholinergic responses, and the model correctly predicted that the network would function as a spatial and temporal high-pass filter for excitatory inputs. Our results demonstrate that all-optical electrophysiology can reveal basic principles of neural circuit function in vivo and suggest an intuitive picture for how L1 transforms sensory and modulatory inputs. VIDEO ABSTRACT.


Subject(s)
Electrophysiology/methods , Evoked Potentials, Somatosensory/physiology , Interneurons/physiology , Neural Inhibition/physiology , Optical Imaging/methods , Somatosensory Cortex/cytology , Action Potentials/physiology , Animals , Cholinergic Neurons/physiology , Female , HEK293 Cells , Humans , Male , Mice , Mice, Inbred C57BL , Mice, Transgenic , Patch-Clamp Techniques/methods , Synaptic Potentials/physiology , Vibrissae/physiology
8.
Cell ; 183(3): 605-619.e22, 2020 10 29.
Article in English | MEDLINE | ID: mdl-33031743

ABSTRACT

Exploration of novel environments ensures survival and evolutionary fitness. It is expressed through exploratory bouts and arrests that change dynamically based on experience. Neural circuits mediating exploratory behavior should therefore integrate experience and use it to select the proper behavioral output. Using a spatial exploration assay, we uncovered an experience-dependent increase in momentary arrests in locations where animals arrested previously. Calcium imaging in freely exploring mice revealed a genetically and projection-defined neuronal ensemble in the basolateral amygdala that is active during self-paced behavioral arrests. This ensemble was recruited in an experience-dependent manner, and closed-loop optogenetic manipulation of these neurons revealed that they are sufficient and necessary to drive experience-dependent arrests during exploration. Projection-specific imaging and optogenetic experiments revealed that these arrests are effected by basolateral amygdala neurons projecting to the central amygdala, uncovering an amygdala circuit that mediates momentary arrests in familiar places but not avoidance or anxiety/fear-like behaviors.


Subject(s)
Basolateral Nuclear Complex/physiology , Central Amygdaloid Nucleus/physiology , Exploratory Behavior/physiology , Nerve Net/physiology , Animals , Basolateral Nuclear Complex/diagnostic imaging , Behavior, Animal/physiology , Central Amygdaloid Nucleus/diagnostic imaging , Female , Locomotion , Machine Learning , Male , Mice, Inbred C57BL , Neurons/physiology , Optical Imaging
9.
Cell ; 183(6): 1682-1698.e24, 2020 12 10.
Article in English | MEDLINE | ID: mdl-33232692

ABSTRACT

In order to analyze how a signal transduction network converts cellular inputs into cellular outputs, ideally one would measure the dynamics of many signals within the network simultaneously. We found that, by fusing a fluorescent reporter to a pair of self-assembling peptides, it could be stably clustered within cells at random points, distant enough to be resolved by a microscope but close enough to spatially sample the relevant biology. Because such clusters, which we call signaling reporter islands (SiRIs), can be modularly designed, they permit a set of fluorescent reporters to be efficiently adapted for simultaneous measurement of multiple nodes of a signal transduction network within single cells. We created SiRIs for indicators of second messengers and kinases and used them, in hippocampal neurons in culture and intact brain slices, to discover relationships between the speed of calcium signaling, and the amplitude of PKA signaling, upon receiving a cAMP-driving stimulus.


Subject(s)
Fluorescent Dyes/metabolism , Genes, Reporter , Optical Imaging , Signal Transduction , Animals , Calcium/metabolism , Cyclic AMP/metabolism , Cyclic AMP-Dependent Protein Kinases/metabolism , Female , Green Fluorescent Proteins/metabolism , HeLa Cells , Hippocampus/metabolism , Humans , Mice , Neurons/metabolism , Peptides/metabolism , Proteins/metabolism , Pyramidal Cells/metabolism
10.
Annu Rev Biochem ; 88: 605-633, 2019 06 20.
Article in English | MEDLINE | ID: mdl-31018111

ABSTRACT

Reactive oxygen species (ROS) encompass a collection of intricately linked chemical entities characterized by individually distinct physicochemical properties and biological reactivities. Although excessive ROS generation is well known to underpin disease development, it has become increasingly evident that ROS also play central roles in redox regulation and normal physiology. A major challenge in uncovering the relevant biological mechanisms and deconvoluting the apparently paradoxical roles of distinct ROS in human health and disease lies in the selective and sensitive detection of these transient species in the complex biological milieu. Small-molecule-based fluorescent sensors enable molecular imaging of ROS with great spatial and temporal resolution and have thus been appreciated as excellent tools for aiding discoveries in modern redox biology. We review a selection of state-of-the-art sensors with demonstrated utility in biological systems. By providing a systematic overview based on underlying chemical sensing mechanisms, we wish to highlight the strengths and weaknesses in prior sensor works and propose some guiding principles for the development of future probes.


Subject(s)
Biosensing Techniques/methods , Reactive Oxygen Species/analysis , Fluorescent Dyes , Optical Imaging , Oxidation-Reduction , Oxidative Stress
11.
Annu Rev Biochem ; 88: 635-659, 2019 06 20.
Article in English | MEDLINE | ID: mdl-30359080

ABSTRACT

In the past decades, advances in microscopy have made it possible to study the dynamics of individual biomolecules in vitro and resolve intramolecular kinetics that would otherwise be hidden in ensemble averages. More recently, single-molecule methods have been used to image, localize, and track individually labeled macromolecules in the cytoplasm of living cells, allowing investigations of intermolecular kinetics under physiologically relevant conditions. In this review, we illuminate the particular advantages of single-molecule techniques when studying kinetics in living cells and discuss solutions to specific challenges associated with these methods.


Subject(s)
Microscopy, Fluorescence/methods , Single Molecule Imaging/methods , Animals , Humans , Kinetics , Optical Imaging/methods
12.
Cell ; 176(5): 1158-1173.e16, 2019 02 21.
Article in English | MEDLINE | ID: mdl-30712869

ABSTRACT

Homeostatic regulation of the intestinal enteroendocrine lineage hierarchy is a poorly understood process. We resolved transcriptional changes during enteroendocrine differentiation in real time at single-cell level using a novel knockin allele of Neurog3, the master regulator gene briefly expressed at the onset of enteroendocrine specification. A bi-fluorescent reporter, Neurog3Chrono, measures time from the onset of enteroendocrine differentiation and enables precise positioning of single-cell transcriptomes along an absolute time axis. This approach yielded a definitive description of the enteroendocrine hierarchy and its sub-lineages, uncovered differential kinetics between sub-lineages, and revealed time-dependent hormonal plasticity in enterochromaffin and L cells. The time-resolved map of transcriptional changes predicted multiple novel molecular regulators. Nine of these were validated by conditional knockout in mice or CRISPR modification in intestinal organoids. Six novel candidate regulators (Sox4, Rfx6, Tox3, Myt1, Runx1t1, and Zcchc12) yielded specific enteroendocrine phenotypes. Our time-resolved single-cell transcriptional map presents a rich resource to unravel enteroendocrine differentiation.


Subject(s)
Cell Lineage/genetics , Enteroendocrine Cells/metabolism , Gene Expression Profiling/methods , Animals , Basic Helix-Loop-Helix Transcription Factors/genetics , Cell Differentiation/genetics , Cell Lineage/physiology , Enteroendocrine Cells/physiology , Fluorescent Dyes , Homeodomain Proteins/genetics , Intestinal Mucosa/cytology , Mice , Mice, Knockout , Nerve Tissue Proteins/genetics , Optical Imaging/methods , Organoids , Phenotype , Single-Cell Analysis/methods , Stem Cells , Transcription Factors/genetics , Transcriptome/genetics
13.
Cell ; 175(3): 859-876.e33, 2018 10 18.
Article in English | MEDLINE | ID: mdl-30318151

ABSTRACT

The mouse embryo has long been central to the study of mammalian development; however, elucidating the cell behaviors governing gastrulation and the formation of tissues and organs remains a fundamental challenge. A major obstacle is the lack of live imaging and image analysis technologies capable of systematically following cellular dynamics across the developing embryo. We developed a light-sheet microscope that adapts itself to the dramatic changes in size, shape, and optical properties of the post-implantation mouse embryo and captures its development from gastrulation to early organogenesis at the cellular level. We furthermore developed a computational framework for reconstructing long-term cell tracks, cell divisions, dynamic fate maps, and maps of tissue morphogenesis across the entire embryo. By jointly analyzing cellular dynamics in multiple embryos registered in space and time, we built a dynamic atlas of post-implantation mouse development that, together with our microscopy and computational methods, is provided as a resource. VIDEO ABSTRACT.


Subject(s)
Cell Lineage , Gastrulation , Organogenesis , Single-Cell Analysis/methods , Animals , Mice , Mice, Inbred C57BL , Models, Statistical , Optical Imaging/methods
14.
Annu Rev Biochem ; 86: 873-896, 2017 06 20.
Article in English | MEDLINE | ID: mdl-28426242

ABSTRACT

Electron cryotomography (ECT) provides three-dimensional views of macromolecular complexes inside cells in a native frozen-hydrated state. Over the last two decades, ECT has revealed the ultrastructure of cells in unprecedented detail. It has also allowed us to visualize the structures of macromolecular machines in their native context inside intact cells. In many cases, such machines cannot be purified intact for in vitro study. In other cases, the function of a structure is lost outside the cell, so that the mechanism can be understood only by observation in situ. In this review, we describe the technique and its history and provide examples of its power when applied to cell biology. We also discuss the integration of ECT with other techniques, including lower-resolution fluorescence imaging and higher-resolution atomic structure determination, to cover the full scale of cellular processes.


Subject(s)
Cryoelectron Microscopy/methods , Electron Microscope Tomography/methods , Fimbriae, Bacterial/ultrastructure , Nuclear Pore/chemistry , Optical Imaging/methods , Prokaryotic Cells/ultrastructure , Archaea/metabolism , Archaea/ultrastructure , Bacteria/metabolism , Bacteria/ultrastructure , Bacterial Secretion Systems/metabolism , Bacterial Secretion Systems/ultrastructure , Cryoelectron Microscopy/history , Cryoelectron Microscopy/instrumentation , Electron Microscope Tomography/history , Electron Microscope Tomography/instrumentation , Fimbriae, Bacterial/metabolism , Flagella/metabolism , Flagella/ultrastructure , History, 20th Century , History, 21st Century , Models, Molecular , Nuclear Pore/metabolism , Nuclear Pore/ultrastructure , Optical Imaging/history , Optical Imaging/instrumentation , Prokaryotic Cells/metabolism , Protein Domains , Protein Structure, Secondary
15.
Cell ; 165(4): 976-89, 2016 May 05.
Article in English | MEDLINE | ID: mdl-27153498

ABSTRACT

Regulation of mRNA translation, the process by which ribosomes decode mRNAs into polypeptides, is used to tune cellular protein levels. Currently, methods for observing the complete process of translation from single mRNAs in vivo are unavailable. Here, we report the long-term (>1 hr) imaging of single mRNAs undergoing hundreds of rounds of translation in live cells, enabling quantitative measurements of ribosome initiation, elongation, and stalling. This approach reveals a surprising heterogeneity in the translation of individual mRNAs within the same cell, including rapid and reversible transitions between a translating and non-translating state. Applying this method to the cell-cycle gene Emi1, we find strong overall repression of translation initiation by specific 5' UTR sequences, but individual mRNA molecules in the same cell can exhibit dramatically different translational efficiencies. The ability to observe translation of single mRNA molecules in live cells provides a powerful tool to study translation regulation.


Subject(s)
Optical Imaging/methods , Protein Biosynthesis , RNA, Messenger/metabolism , 5' Untranslated Regions , Cell Cycle , Cell Cycle Proteins/metabolism , F-Box Proteins/metabolism , Fluorescence , Genes, Reporter , Genetic Techniques , Green Fluorescent Proteins/analysis , Humans , Luminescent Proteins/analysis , Peptide Chain Elongation, Translational , Peptide Chain Initiation, Translational , RNA, Messenger/chemistry , Ribosomes/metabolism , Red Fluorescent Protein
16.
Cell ; 165(4): 990-1001, 2016 May 05.
Article in English | MEDLINE | ID: mdl-27153499

ABSTRACT

Translation is under tight spatial and temporal controls to ensure protein production in the right time and place in cells. Methods that allow real-time, high-resolution visualization of translation in live cells are essential for understanding the spatiotemporal dynamics of translation regulation. Based on multivalent fluorescence amplification of the nascent polypeptide signal, we develop a method to image translation on individual mRNA molecules in real time in live cells, allowing direct visualization of translation events at the translation sites. Using this approach, we monitor transient changes of translation dynamics in responses to environmental stresses, capture distinct mobilities of individual polysomes in different subcellular compartments, and detect 3' UTR-dependent local translation and active transport of polysomes in dendrites of primary neurons.


Subject(s)
Optical Imaging/methods , Protein Biosynthesis , RNA, Messenger/metabolism , Animals , Dendrites/metabolism , Humans , Polyribosomes/metabolism , Protein Biosynthesis/drug effects , Protein Synthesis Inhibitors/pharmacology , RNA, Messenger/chemistry
17.
Annu Rev Neurosci ; 45: 273-294, 2022 07 08.
Article in English | MEDLINE | ID: mdl-35316611

ABSTRACT

Recent advances in fluorescence imaging permit large-scale recording of neural activity and dynamics of neurochemical release with unprecedented resolution in behaving animals. Calcium imaging with highly optimized genetically encoded indicators provides a mesoscopic view of neural activity from genetically defined populations at cellular and subcellular resolutions. Rigorously improved voltage sensors and microscopy allow for robust spike imaging of populational neurons in various brain regions. In addition, recent protein engineering efforts in the past few years have led to the development of sensors for neurotransmitters and neuromodulators. Here, we discuss the development and applications of these genetically encoded fluorescent indicators in reporting neural activity in response to various behaviors in different biological systems as well as in drug discovery. We also report a simple model to guide sensor selection and optimization.


Subject(s)
Neurons , Receptors, Drug , Animals , Brain/metabolism , Neurons/physiology , Neurotransmitter Agents/metabolism , Optical Imaging , Receptors, Drug/metabolism
18.
Cell ; 163(2): 493-505, 2015 Oct 08.
Article in English | MEDLINE | ID: mdl-26435106

ABSTRACT

As a basic functional unit in neural circuits, each neuron integrates input signals from hundreds to thousands of synapses. Knowledge of the synaptic input fields of individual neurons, including the identity, strength, and location of each synapse, is essential for understanding how neurons compute. Here, we developed a volumetric super-resolution reconstruction platform for large-volume imaging and automated segmentation of neurons and synapses with molecular identity information. We used this platform to map inhibitory synaptic input fields of On-Off direction-selective ganglion cells (On-Off DSGCs), which are important for computing visual motion direction in the mouse retina. The reconstructions of On-Off DSGCs showed a GABAergic, receptor subtype-specific input field for generating direction selective responses without significant glycinergic inputs for mediating monosynaptic crossover inhibition. These results demonstrate unique capabilities of this super-resolution platform for interrogating neural circuitry.


Subject(s)
Neurons/cytology , Optical Imaging/methods , Synapses/metabolism , Animals , Brain/cytology , Carrier Proteins , Immunohistochemistry , Membrane Proteins , Mice , Nerve Net , Neural Pathways , Receptors, GABA/metabolism , Receptors, Glycine/metabolism , Retinal Ganglion Cells/metabolism , Retinal Neurons/metabolism
19.
Mol Cell ; 82(2): 304-314, 2022 01 20.
Article in English | MEDLINE | ID: mdl-35063098

ABSTRACT

Owing to their unique abilities to manipulate, label, and image individual molecules in vitro and in cellulo, single-molecule techniques provide previously unattainable access to elementary biological processes. In imaging, single-molecule fluorescence resonance energy transfer (smFRET) and protein-induced fluorescence enhancement in vitro can report on conformational changes and molecular interactions, single-molecule pull-down (SiMPull) can capture and analyze the composition and function of native protein complexes, and single-molecule tracking (SMT) in live cells reveals cellular structures and dynamics. In labeling, the abilities to specifically label genomic loci, mRNA, and nascent polypeptides in cells have uncovered chromosome organization and dynamics, transcription and translation dynamics, and gene expression regulation. In manipulation, optical tweezers, integration of single-molecule fluorescence with force measurements, and single-molecule force probes in live cells have transformed our mechanistic understanding of diverse biological processes, ranging from protein folding, nucleic acids-protein interactions to cell surface receptor function.


Subject(s)
Genomics/trends , Molecular Imaging/trends , Optical Imaging/trends , Single Molecule Imaging/trends , Animals , Diffusion of Innovation , Fluorescence Resonance Energy Transfer/trends , Humans , Microscopy, Fluorescence/trends , Proteomics/trends
20.
Mol Cell ; 82(2): 315-332, 2022 01 20.
Article in English | MEDLINE | ID: mdl-35063099

ABSTRACT

Since its initial demonstration in 2000, far-field super-resolution light microscopy has undergone tremendous technological developments. In parallel, these developments have opened a new window into visualizing the inner life of cells at unprecedented levels of detail. Here, we review the technical details behind the most common implementations of super-resolution microscopy and highlight some of the recent, promising advances in this field.


Subject(s)
Cell Biology/trends , Cell Physiological Phenomena , Microscopy/trends , Molecular Imaging/trends , Optical Imaging/trends , Single Molecule Imaging/trends , Animals , Diffusion of Innovation , Humans , Image Processing, Computer-Assisted/trends
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