Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Direct computations of viscoelastic moduli of biomolecular condensates

View through CrossRef
ABSTRACT In vitro facsimiles of biomolecular condensates are formed by different types of intrinsically disordered proteins including prion-like low complexity domains (PLCDs). PLCD condensates are viscoelastic materials defined by time-dependent, sequence-specific complex shear moduli. Here, we show that viscoelastic moduli can be computed directly using a generalization of the Rouse model and information regarding intra- and inter-chain contacts that is extracted from equilibrium configurations of lattice-based Metropolis Monte Carlo (MMC) simulations. The key ingredient of the generalized Rouse model is the Zimm matrix that we compute from equilibrium MMC simulations. We compute two flavors of Zimm matrices, one referred to as the single-chain model that accounts only for intra-chain contacts, and the other referred to as a collective model, that accounts for inter-chain interactions. The single-chain model systematically overestimates the storage and loss moduli, whereas the collective model reproduces the measured moduli with greater fidelity. However, in the long time, low-frequency domain, a mixture of the two models proves to be most accurate. In line with the theory of Rouse, we find that a continuous distribution of relaxation times exists in condensates. The single crossover frequency between dominantly elastic versus dominantly viscous behaviors is influenced by the totality of the relaxation modes. Hence, our analysis suggests that viscoelastic fluid-like condensates are best described as generalized Maxwell fluids. Finally, we show that the complex shear moduli can be used to solve an inverse problem to obtain distributions of relaxation times that underlie the dynamics within condensates.
Title: Direct computations of viscoelastic moduli of biomolecular condensates
Description:
ABSTRACT In vitro facsimiles of biomolecular condensates are formed by different types of intrinsically disordered proteins including prion-like low complexity domains (PLCDs).
PLCD condensates are viscoelastic materials defined by time-dependent, sequence-specific complex shear moduli.
Here, we show that viscoelastic moduli can be computed directly using a generalization of the Rouse model and information regarding intra- and inter-chain contacts that is extracted from equilibrium configurations of lattice-based Metropolis Monte Carlo (MMC) simulations.
The key ingredient of the generalized Rouse model is the Zimm matrix that we compute from equilibrium MMC simulations.
We compute two flavors of Zimm matrices, one referred to as the single-chain model that accounts only for intra-chain contacts, and the other referred to as a collective model, that accounts for inter-chain interactions.
The single-chain model systematically overestimates the storage and loss moduli, whereas the collective model reproduces the measured moduli with greater fidelity.
However, in the long time, low-frequency domain, a mixture of the two models proves to be most accurate.
In line with the theory of Rouse, we find that a continuous distribution of relaxation times exists in condensates.
The single crossover frequency between dominantly elastic versus dominantly viscous behaviors is influenced by the totality of the relaxation modes.
Hence, our analysis suggests that viscoelastic fluid-like condensates are best described as generalized Maxwell fluids.
Finally, we show that the complex shear moduli can be used to solve an inverse problem to obtain distributions of relaxation times that underlie the dynamics within condensates.

Related Results

Elasticity generates indissoluble biomolecular condensates
Elasticity generates indissoluble biomolecular condensates
While biomolecular condensates are often liquid-like, many experiments found that condensates also exhibit solid-like behaviors, making them indissoluble in conditions liquid conde...
Ligand Effects on Phase Separation of Multivalent Macromolecules
Ligand Effects on Phase Separation of Multivalent Macromolecules
Abstract Biomolecular condensates enable spatial and temporal control over cellular processes by concentrating biomolecules into non-stoichiometr...
The peridynamic model of viscoelastic creep and recovery
The peridynamic model of viscoelastic creep and recovery
Purpose – The purpose of this paper is to establish a peridynamic method in predicting viscoelastic creep behaviour with recovery stage and to find the suitable num...
Amphiphilic proteins coassemble into multiphasic condensates and act as biomolecular surfactants
Amphiphilic proteins coassemble into multiphasic condensates and act as biomolecular surfactants
AbstractCells contain membraneless compartments that assemble due to liquid-liquid phase separation, including biomolecular condensates with complex morphologies. For instance, cer...
Decoding the genomic landscape of chromatin-associated biomolecular condensates
Decoding the genomic landscape of chromatin-associated biomolecular condensates
Abstract Biomolecular condensates play a significant role in chromatin activities, primarily by concentrating and compartmentalizing proteins and...
ATP-induced crosslinking of a biomolecular condensate
ATP-induced crosslinking of a biomolecular condensate
Abstract DEAD-box helicases are important regulators of biomolecular condensates. However, the mechanisms through which these enzymes affect the dynamics of biomole...
Evaluating and Inhibiting Gum Formation Tendencies in Gas Condensates
Evaluating and Inhibiting Gum Formation Tendencies in Gas Condensates
Abstract A report is presented on the evaluation of gum formation tendencies of natural gas condensates from two gas fields in the Niger Delta region of Nigeria. Fol...

Back to Top