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1.
J Mol Biol ; 436(14): 168642, 2024 Jul 15.
Article in English | MEDLINE | ID: mdl-38848866

ABSTRACT

The heat shock response (HSR) is a gene regulatory program controlling expression of molecular chaperones implicated in aging, cancer, and neurodegenerative disease. Long presumed to be activated by toxic protein aggregates, recent work suggests a new functional paradigm for the HSR in yeast. Rather than toxic aggregates, adaptive biomolecular condensates comprised of orphan ribosomal proteins (oRP) and stress granule components have been shown to be physiological chaperone clients. By titrating away the chaperones Sis1 and Hsp70 from the transcription factor Hsf1, these condensates activate the HSR. Upon release from Hsp70, Hsf1 forms spatially distinct transcriptional condensates that drive high expression of HSR genes. In this manner, the negative feedback loop controlling HSR activity - in which Hsf1 induces Hsp70 expression and Hsp70 represses Hsf1 activity - is embedded in the biophysics of the system. By analogy to phosphorylation cascades that transmit information via the dynamic activity of kinases, we propose that the HSR is organized as a condensate cascade that transmits information via the localized activity of molecular chaperones.


Subject(s)
Heat-Shock Response , Saccharomyces cerevisiae Proteins/metabolism , Saccharomyces cerevisiae Proteins/genetics , Transcription Factors/metabolism , Transcription Factors/genetics , HSP70 Heat-Shock Proteins/metabolism , HSP70 Heat-Shock Proteins/genetics , Molecular Chaperones/metabolism , Molecular Chaperones/genetics , Saccharomyces cerevisiae/metabolism , Saccharomyces cerevisiae/genetics , Heat-Shock Proteins/metabolism , Heat-Shock Proteins/genetics , DNA-Binding Proteins/metabolism , DNA-Binding Proteins/genetics , Biomolecular Condensates/metabolism , Ribosomal Proteins/metabolism , Ribosomal Proteins/genetics , Heat Shock Transcription Factors/metabolism , Heat Shock Transcription Factors/genetics , Phosphorylation
2.
J Vis Exp ; (207)2024 May 31.
Article in English | MEDLINE | ID: mdl-38884477

ABSTRACT

Synthetic droplets and condensates are becoming increasingly common constituents of advanced biomimetic systems and synthetic cells, where they can be used to establish compartmentalization and sustain life-like responses. Synthetic DNA nanostructures have demonstrated significant potential as condensate-forming building blocks owing to their programmable shape, chemical functionalization, and self-assembly behavior. We have recently demonstrated that amphiphilic DNA "nanostars", obtained by labeling DNA junctions with hydrophobic moieties, constitute a particularly robust and versatile solution. The resulting amphiphilic DNA condensates can be programmed to display complex, multi-compartment internal architectures, structurally respond to various external stimuli, synthesize macromolecules, capture and release payloads, undergo morphological transformations, and interact with live cells. Here, we demonstrate protocols for preparing amphiphilic DNA condensates starting from constituent DNA oligonucleotides. We will address (i) single-component systems forming uniform condensates, (ii) two-component systems forming core-shell condensates, and (iii) systems in which the condensates are modified to support in vitro transcription of RNA nanostructures.


Subject(s)
DNA , Nanostructures , DNA/chemistry , Nanostructures/chemistry , Hydrophobic and Hydrophilic Interactions , Artificial Cells/chemistry , Biomolecular Condensates/chemistry
3.
Biochemistry (Mosc) ; 89(4): 688-700, 2024 Apr.
Article in English | MEDLINE | ID: mdl-38831505

ABSTRACT

Eukaryotic cells are characterized by a high degree of compartmentalization of their internal contents, which ensures precise and controlled regulation of intracellular processes. During many processes, including different stages of transcription, dynamic membraneless compartments termed biomolecular condensates are formed. Transcription condensates contain various transcription factors and RNA polymerase and are formed by high- and low-specificity interactions between the proteins, DNA, and nearby RNA. This review discusses recent data demonstrating important role of nonspecific multivalent protein-protein and RNA-protein interactions in organization and regulation of transcription.


Subject(s)
Transcription, Genetic , Humans , Transcription Factors/metabolism , DNA-Directed RNA Polymerases/metabolism , DNA/metabolism , DNA/chemistry , RNA/metabolism , RNA/chemistry , Biomolecular Condensates/metabolism , Biomolecular Condensates/chemistry , Animals , Gene Expression Regulation
4.
J Chem Phys ; 160(21)2024 Jun 07.
Article in English | MEDLINE | ID: mdl-38832749

ABSTRACT

Biomolecular condensates play a key role in cytoplasmic compartmentalization and cell functioning. Despite extensive research on the physico-chemical, thermodynamic, or crowding aspects of the formation and stabilization of the condensates, one less studied feature is the role of external perturbative fluid flow. In fact, in living cells, shear stress may arise from streaming or active transport processes. Here, we investigate how biomolecular condensates are deformed under different types of shear flows. We first model Couette flow perturbations via two-way coupling between the condensate dynamics and fluid flow by deploying Lattice Boltzmann Molecular Dynamics. We then show that a simplified approach where the shear flow acts as a static perturbation (one-way coupling) reproduces the main features of the condensate deformation and dynamics as a function of the shear rate. With this approach, which can be easily implemented in molecular dynamics simulations, we analyze the behavior of biomolecular condensates described through residue-based coarse-grained models, including intrinsically disordered proteins and protein/RNA mixtures. At lower shear rates, the fluid triggers the deformation of the condensate (spherical to oblated object), while at higher shear rates, it becomes extremely deformed (oblated or elongated object). At very high shear rates, the condensates are fragmented. We also compare how condensates of different sizes and composition respond to shear perturbation, and how their internal structure is altered by external flow. Finally, we consider the Poiseuille flow that realistically models the behavior in microfluidic devices in order to suggest potential experimental designs for investigating fluid perturbations in vitro.


Subject(s)
Biomolecular Condensates , Molecular Dynamics Simulation , Biomolecular Condensates/chemistry , Biomolecular Condensates/metabolism , Intrinsically Disordered Proteins/chemistry , Intrinsically Disordered Proteins/metabolism , RNA/chemistry , Shear Strength
5.
Biophys J ; 123(12): 1531-1541, 2024 Jun 18.
Article in English | MEDLINE | ID: mdl-38698644

ABSTRACT

The emergence of phase separation phenomena among macromolecules has identified biomolecular condensates as fundamental cellular organizers. These condensates concentrate specific components and accelerate biochemical reactions without relying on membrane boundaries. Although extensive studies have revealed a large variety of nuclear and cytosolic membraneless organelles, we are witnessing a surge in the exploration of protein condensates associated with the membranes of the secretory pathway, such as the endoplasmic reticulum and the Golgi apparatus. This review focuses on protein condensates in the secretory pathway and discusses their impact on the organization and functions of this cellular process. Moreover, we explore the modes of condensate-membrane association and the biophysical and cellular consequences of protein condensate interactions with secretory pathway membranes.


Subject(s)
Secretory Pathway , Humans , Animals , Biomolecular Condensates/metabolism , Biomolecular Condensates/chemistry , Golgi Apparatus/metabolism , Biophysical Phenomena , Endoplasmic Reticulum/metabolism
6.
Biochem Soc Trans ; 52(3): 1393-1404, 2024 Jun 26.
Article in English | MEDLINE | ID: mdl-38778761

ABSTRACT

Several biomolecular condensates assemble in mammalian cells in response to viral infection. The most studied of these are stress granules (SGs), which have been proposed to promote antiviral innate immune signaling pathways, including the RLR-MAVS, the protein kinase R (PKR), and the OAS-RNase L pathways. However, recent studies have demonstrated that SGs either negatively regulate or do not impact antiviral signaling. Instead, the SG-nucleating protein, G3BP1, may function to perturb viral RNA biology by condensing viral RNA into viral-aggregated RNA condensates, thus explaining why viruses often antagonize G3BP1 or hijack its RNA condensing function. However, a recently identified condensate, termed double-stranded RNA-induced foci, promotes the activation of the PKR and OAS-RNase L antiviral pathways. In addition, SG-like condensates known as an RNase L-induced bodies (RLBs) have been observed during many viral infections, including SARS-CoV-2 and several flaviviruses. RLBs may function in promoting decay of cellular and viral RNA, as well as promoting ribosome-associated signaling pathways. Herein, we review these recent advances in the field of antiviral biomolecular condensates, and we provide perspective on the role of canonical SGs and G3BP1 during the antiviral response.


Subject(s)
RNA Helicases , RNA Recognition Motif Proteins , RNA, Viral , Stress Granules , Humans , Animals , RNA Recognition Motif Proteins/metabolism , RNA Helicases/metabolism , RNA, Viral/metabolism , Stress Granules/metabolism , SARS-CoV-2/physiology , Immunity, Innate , Signal Transduction , Biomolecular Condensates/metabolism , Poly-ADP-Ribose Binding Proteins/metabolism , Virus Diseases/drug therapy , Virus Diseases/metabolism , DNA Helicases/metabolism , eIF-2 Kinase/metabolism , Endoribonucleases/metabolism , COVID-19/virology , COVID-19/immunology
7.
Biophys J ; 123(12): 1668-1675, 2024 Jun 18.
Article in English | MEDLINE | ID: mdl-38751116

ABSTRACT

Diffusion determines the turnover of biomolecules in liquid-liquid phase-separated condensates. We considered the mean square displacement and thus the diffusion constant for simple model systems of peptides GGGGG, GGQGG, and GGVGG in aqueous solutions after phase separation by simulating atomic-level models. These solutions readily separate into aqueous and peptide-rich droplet phases. We noted the effect of the peptides being in a solvated, surface, or droplet state on the peptide's diffusion coefficients. Both sequence and peptide conformational distribution were found to influence diffusion and condensate turnover in these systems, with sequence dominating the magnitude of the differences. We found that the most compact structures for each sequence diffused the fastest in the peptide-rich condensate phase. This model result may have implications for turnover dynamics in signaling systems.


Subject(s)
Biomolecular Condensates , Peptides , Diffusion , Peptides/chemistry , Peptides/metabolism , Biomolecular Condensates/chemistry , Biomolecular Condensates/metabolism , Amino Acid Sequence , Water/chemistry , Models, Molecular , Protein Conformation
8.
J Am Chem Soc ; 146(20): 14307-14317, 2024 May 22.
Article in English | MEDLINE | ID: mdl-38722189

ABSTRACT

Biomolecules such as proteins and RNA could organize to form condensates with distinct microenvironments through liquid-liquid phase separation (LLPS). Recent works have demonstrated that the microenvironment of biomolecular condensates plays a crucial role in mediating biological activities, such as the partition of biomolecules, and the subphase organization of the multiphasic condensates. Ions could influence the phase transition point of LLPS, following the Hofmeister series. However, the ion-specific effect on the microenvironment of biomolecular condensates remains unknown. In this study, we utilized fluorescence lifetime imaging microscopy (FLIM), fluorescence recovery after photobleaching (FRAP), and microrheology techniques to investigate the ion effect on the microenvironment of condensates. We found that ions significantly affect the microenvironment of biomolecular condensates: salting-in ions increase micropolarity and reduce the microviscosity of the condensate, while salting-out ions induce opposing effects. Furthermore, we manipulate the miscibility and multilayering behavior of condensates through ion-specific effects. In summary, our work provides the first quantitative survey of the microenvironment of protein condensates in the presence of ions from the Hofmeister series, demonstrating how ions impact micropolarity, microviscosity, and viscoelasticity of condensates. Our results bear implications on how membrane-less organelles would exhibit varying microenvironments in the presence of continuously changing cellular conditions.


Subject(s)
Biomolecular Condensates , Biomolecular Condensates/chemistry , Ions/chemistry , Fluorescence Recovery After Photobleaching , Microscopy, Fluorescence , Proteins/chemistry , Proteins/metabolism
9.
Phys Rev E ; 109(4): L042401, 2024 Apr.
Article in English | MEDLINE | ID: mdl-38755828

ABSTRACT

The network structure of densely packed chromatin within the nucleus of eukaryotic cells acts in concert with nonequilibrium processes. Using statistical physics simulations, we explore the control provided by transient crosslinking of the chromatin network by structural-maintenance-of-chromosome (SMC) proteins over (i) the physical properties of the chromatin network and (ii) condensate formation of embedded molecular species. We find that the density and lifetime of transient SMC crosslinks regulate structural relaxation modes and tune the sol-vs-gel state of the chromatin network, which imparts control over the kinetic pathway to condensate formation. Specifically, lower density, shorter-lived crosslinks induce sollike networks and a droplet-fusion pathway, whereas higher density, longer-lived crosslinks induce gellike networks and an Ostwald-ripening pathway.


Subject(s)
Chromatin , Chromatin/metabolism , Kinetics , Biomolecular Condensates/metabolism , Models, Molecular , Cross-Linking Reagents/chemistry
10.
Cell ; 187(11): 2894-2894.e1, 2024 May 23.
Article in English | MEDLINE | ID: mdl-38788692

ABSTRACT

Plant cells share a number of biological condensates with cells from other eukaryotes. There are, however, a growing number of plant-specific condensates that support different cellular functions. Condensates operating in different plant tissues contribute to aspects of development and stress responses. To view this SnapShot, open or download the PDF.


Subject(s)
Biomolecular Condensates , Plant Cells , Plants , Biomolecular Condensates/metabolism , Biomolecular Condensates/chemistry , Plant Cells/chemistry , Plant Cells/metabolism , Plant Physiological Phenomena , Plants/chemistry , Plants/metabolism
11.
Mol Biol Cell ; 35(7): ar100, 2024 Jul 01.
Article in English | MEDLINE | ID: mdl-38809580

ABSTRACT

Fluorescent protein (FP) tags are extensively used to visualize and characterize the properties of biomolecular condensates despite a lack of investigation into the effects of these tags on phase separation. Here, we characterized the dynamic properties of µNS, a viral protein hypothesized to undergo phase separation and the main component of mammalian orthoreovirus viral factories. Our interest in the sequence determinants and nucleation process of µNS phase separation led us to compare the size and density of condensates formed by FP::µNS to the untagged protein. We found an FP-dependent increase in droplet size and density, which suggests that FP tags can promote µNS condensation. To further assess the effect of FP tags on µNS droplet formation, we fused FP tags to µNS mutants to show that the tags could variably induce phase separation of otherwise noncondensing proteins. By comparing fluorescent constructs with untagged µNS, we identified mNeonGreen as the least artifactual FP tag that minimally perturbed µNS condensation. These results show that FP tags can promote phase separation and that some tags are more suitable for visualizing and characterizing biomolecular condensates with minimal experimental artifacts.


Subject(s)
Luminescent Proteins , Luminescent Proteins/metabolism , Luminescent Proteins/genetics , Viral Proteins/metabolism , Biomolecular Condensates/metabolism , Green Fluorescent Proteins/metabolism , Reoviridae/metabolism , Reoviridae/physiology
12.
Proc Natl Acad Sci U S A ; 121(22): e2403013121, 2024 May 28.
Article in English | MEDLINE | ID: mdl-38781207

ABSTRACT

Biomolecular condensates are cellular compartments that concentrate biomolecules without an encapsulating membrane. In recent years, significant advances have been made in the understanding of condensates through biochemical reconstitution and microscopic detection of these structures. Quantitative visualization and biochemical assays of biomolecular condensates rely on surface passivation to minimize background and artifacts due to condensate adhesion. However, the challenge of undesired interactions between condensates and glass surfaces, which can alter material properties and impair observational accuracy, remains a critical hurdle. Here, we introduce an efficient, broadly applicable, and simple passivation method employing self-assembly of the surfactant Pluronic F127 (PF127). The method greatly reduces nonspecific binding across a range of condensates systems for both phase-separated droplets and biomolecules in dilute phase. Additionally, by integrating PF127 passivation with the Biotin-NeutrAvidin system, we achieve controlled multipoint attachment of condensates to surfaces. This not only preserves condensate properties but also facilitates long-time fluorescence recovery after photobleaching imaging and high-precision single-molecule analyses. Using this method, we have explored the dynamics of polySIM molecules within polySUMO/polySIM condensates at the single-molecule level. Our observations suggest a potential heterogeneity in the distribution of available polySIM-binding sites within the condensates.


Subject(s)
Avidin , Biomolecular Condensates , Biotin , Poloxamer , Biomolecular Condensates/chemistry , Biomolecular Condensates/metabolism , Poloxamer/chemistry , Biotin/chemistry , Biotin/metabolism , Avidin/chemistry , Avidin/metabolism , Fluorescence Recovery After Photobleaching/methods , Surface Properties , Surface-Active Agents/chemistry , Surface-Active Agents/metabolism , Single Molecule Imaging/methods
13.
Science ; 384(6698): 920-928, 2024 May 24.
Article in English | MEDLINE | ID: mdl-38781377

ABSTRACT

Excitatory and inhibitory synapses do not overlap even when formed on one submicron-sized dendritic protrusion. How excitatory and inhibitory postsynaptic cytomatrices or densities (e/iPSDs) are segregated is not understood. Broadly, why membraneless organelles are naturally segregated in cellular subcompartments is unclear. Using biochemical reconstitutions in vitro and in cells, we demonstrate that ePSDs and iPSDs spontaneously segregate into distinct condensed molecular assemblies through phase separation. Tagging iPSD scaffold gephyrin with a PSD-95 intrabody (dissociation constant ~4 nM) leads to mistargeting of gephyrin to ePSD condensates. Unexpectedly, formation of iPSD condensates forces the intrabody-tagged gephyrin out of ePSD condensates. Thus, instead of diffusion-governed spontaneous mixing, demixing is a default process for biomolecules in condensates. Phase separation can generate biomolecular compartmentalization specificities that cannot occur in dilute solutions.


Subject(s)
Biomolecular Condensates , Phase Separation , Post-Synaptic Density , Humans , Biomolecular Condensates/chemistry , Biomolecular Condensates/metabolism , Disks Large Homolog 4 Protein/metabolism , Membrane Proteins/metabolism , Membrane Proteins/chemistry , Post-Synaptic Density/metabolism , HeLa Cells
14.
Int J Mol Sci ; 25(7)2024 Apr 08.
Article in English | MEDLINE | ID: mdl-38612940

ABSTRACT

Cell fate is precisely modulated by complex but well-tuned molecular signaling networks, whose spatial and temporal dysregulation commonly leads to hazardous diseases. Biomolecular condensates (BCs), as a newly emerging type of biophysical assemblies, decipher the molecular codes bridging molecular behaviors, signaling axes, and clinical prognosis. Particularly, physical traits of BCs play an important role; however, a panoramic view from this perspective toward clinical practices remains lacking. In this review, we describe the most typical five physical traits of BCs, and comprehensively summarize their roles in molecular signaling axes and corresponding major determinants. Moreover, establishing the recent observed contribution of condensate physics on clinical therapeutics, we illustrate next-generation medical strategies by targeting condensate physics. Finally, the challenges and opportunities for future medical development along with the rapid scientific and technological advances are highlighted.


Subject(s)
Biomolecular Condensates , Signal Transduction , Biophysics , Cell Differentiation , Phenotype
15.
J Chem Phys ; 160(14)2024 Apr 14.
Article in English | MEDLINE | ID: mdl-38591689

ABSTRACT

Phase separation of biomolecules can facilitate their spatiotemporally regulated self-assembly within living cells. Due to the selective yet dynamic exchange of biomolecules across condensate interfaces, condensates can function as reactive hubs by concentrating enzymatic components for faster kinetics. The principles governing this dynamic exchange between condensate phases, however, are poorly understood. In this work, we systematically investigate the influence of client-sticker interactions on the exchange dynamics of protein molecules across condensate interfaces. We show that increasing affinity between a model protein scaffold and its client molecules causes the exchange of protein chains between the dilute and dense phases to slow down and that beyond a threshold interaction strength, this slowdown in exchange becomes substantial. Investigating the impact of interaction symmetry, we found that chain exchange dynamics are also considerably slower when client molecules interact equally with different sticky residues in the protein. The slowdown of exchange is due to a sequestration effect, by which there are fewer unbound stickers available at the interface to which dilute phase chains may attach. These findings highlight the fundamental connection between client-scaffold interaction networks and condensate exchange dynamics.


Subject(s)
Biomolecular Condensates , Phase Separation , Humans , Kinetics , Surface Tension
16.
Nat Commun ; 15(1): 3216, 2024 Apr 15.
Article in English | MEDLINE | ID: mdl-38622120

ABSTRACT

Biomolecular condensates, often assembled through phase transition mechanisms, play key roles in organizing diverse cellular activities. The material properties of condensates, ranging from liquid droplets to solid-like glasses or gels, are key features impacting the way resident components associate with one another. However, it remains unclear whether and how different material properties would influence specific cellular functions of condensates. Here, we combine optogenetic control of phase separation with single-molecule mRNA imaging to study relations between phase behaviors and functional performance of condensates. Using light-activated condensation, we show that sequestering target mRNAs into condensates causes translation inhibition. Orthogonal mRNA imaging reveals highly transient nature of interactions between individual mRNAs and condensates. Tuning condensate composition and material property towards more solid-like states leads to stronger translational repression, concomitant with a decrease in molecular mobility. We further demonstrate that ß-actin mRNA sequestration in neurons suppresses spine enlargement during chemically induced long-term potentiation. Our work highlights how the material properties of condensates can modulate functions, a mechanism that may play a role in fine-tuning the output of condensate-driven cellular activities.


Subject(s)
Actins , Optogenetics , Humans , Actins/genetics , Biomolecular Condensates , Hypertrophy , Long-Term Potentiation
17.
Nat Commun ; 15(1): 3222, 2024 Apr 15.
Article in English | MEDLINE | ID: mdl-38622124

ABSTRACT

High-resolution imaging of biomolecular condensates in living cells is essential for correlating their properties to those observed through in vitro assays. However, such experiments are limited in bacteria due to resolution limitations. Here we present an experimental framework that probes the formation, reversibility, and dynamics of condensate-forming proteins in Escherichia coli as a means to determine the nature of biomolecular condensates in bacteria. We demonstrate that condensates form after passing a threshold concentration, maintain a soluble fraction, dissolve upon shifts in temperature and concentration, and exhibit dynamics consistent with internal rearrangement and exchange between condensed and soluble fractions. We also discover that an established marker for insoluble protein aggregates, IbpA, has different colocalization patterns with bacterial condensates and aggregates, demonstrating its potential applicability as a reporter to differentiate the two in vivo. Overall, this framework provides a generalizable, accessible, and rigorous set of experiments to probe the nature of biomolecular condensates on the sub-micron scale in bacterial cells.


Subject(s)
Biomolecular Condensates , Escherichia coli Proteins , Bacteria/genetics , Escherichia coli/genetics , Protein Aggregates , Research Design , Heat-Shock Proteins
18.
Nat Commun ; 15(1): 3564, 2024 Apr 26.
Article in English | MEDLINE | ID: mdl-38670952

ABSTRACT

Biomolecular condensates play an important role in cellular organization. Coacervates are commonly used models that mimic the physicochemical properties of biomolecular condensates. The surface of condensates plays a key role in governing molecular exchange between condensates, accumulation of species at the interface, and the stability of condensates against coalescence. However, most important surface properties, including the surface charge and zeta potential, remain poorly characterized and understood. The zeta potential of coacervates is often measured using laser doppler electrophoresis, which assumes a size-independent electrophoretic mobility. Here, we show that this assumption is incorrect for liquid-like condensates and present an alternative method to study the electrophoretic mobility of coacervates and in vitro condensate models by microelectrophoresis and single-particle tracking. Coacervates have a size-dependent electrophoretic mobility, originating from their fluid nature, from which a well-defined zeta potential is calculated. Interestingly, microelectrophoresis measurements reveal that polylysine chains are enriched at the surface of polylysine/polyaspartic acid complex coacervates, which causes the negatively charged protein ɑ-synuclein to adsorb and accumulate at the interface. Addition of ATP inverts the surface charge, displaces ɑ-synuclein from the surface and may help to suppress its interface-catalyzed aggregation. Together, these findings show how condensate surface charge can be measured and altered, making this microelectrophoresis platform combined with automated single-particle tracking a promising characterization technique for both biomolecular condensates and coacervate protocells.


Subject(s)
Electrophoresis , Surface Properties , Electrophoresis/methods , Biomolecular Condensates/chemistry , Biomolecular Condensates/metabolism , alpha-Synuclein/chemistry , alpha-Synuclein/metabolism , Polylysine/chemistry , Adenosine Triphosphate/chemistry , Adenosine Triphosphate/metabolism , Humans , Static Electricity
19.
Nat Commun ; 15(1): 3413, 2024 Apr 22.
Article in English | MEDLINE | ID: mdl-38649740

ABSTRACT

The functions of biomolecular condensates are thought to be influenced by their material properties, and these will be determined by the internal organization of molecules within condensates. However, structural characterizations of condensates are challenging, and rarely reported. Here, we deploy a combination of small angle neutron scattering, fluorescence recovery after photobleaching, and coarse-grained molecular dynamics simulations to provide structural descriptions of model condensates that are formed by macromolecules from nucleolar granular components (GCs). We show that these minimal facsimiles of GCs form condensates that are network fluids featuring spatial inhomogeneities across different length scales that reflect the contributions of distinct protein and peptide domains. The network-like inhomogeneous organization is characterized by a coexistence of liquid- and gas-like macromolecular densities that engenders bimodality of internal molecular dynamics. These insights suggest that condensates formed by multivalent proteins share features with network fluids formed by systems such as patchy or hairy colloids.


Subject(s)
Biomolecular Condensates , Molecular Dynamics Simulation , Scattering, Small Angle , Biomolecular Condensates/chemistry , Fluorescence Recovery After Photobleaching , Neutron Diffraction , Macromolecular Substances/chemistry , Proteins/chemistry
20.
J Magn Reson ; 362: 107667, 2024 May.
Article in English | MEDLINE | ID: mdl-38626504

ABSTRACT

Solution NMR spectroscopy has tremendous potential for providing atomic resolution insights into the interactions between proteins and nucleic acids partitioned into condensed phases of phase-separated systems. However, the highly viscous nature of the condensed phase challenges applications, and in particular, the extraction of quantitative, site-specific information. Here, we present a delayed decoupling-based HMQC pulse sequence for methyl-TROSY studies of 'client' proteins and nucleic acids partitioned into 'scaffold' proteinaceous phase-separated solvents. High sensitivity and excellent quality spectra are recorded of a nascent form of superoxide dismutase and of a small RNA fragment partitioned into CAPRIN1 condensates.


Subject(s)
Nuclear Magnetic Resonance, Biomolecular , RNA , RNA/chemistry , Nuclear Magnetic Resonance, Biomolecular/methods , Protein Folding , Proteins/chemistry , Superoxide Dismutase/chemistry , Biomolecular Condensates/chemistry , Algorithms
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