Literature DB >> 34654286

Shape recovery of deformed biomolecular droplets: Dependence on condensate viscoelasticity.

Huan-Xiang Zhou1.   

Abstract

A theoretical study on the shape dynamics of phase-separated biomolecular droplets is presented, highlighting the importance of condensate viscoelasticity. Previous studies on shape dynamics have modeled biomolecular condensates as purely viscous, but recent data have shown them to be viscoelastic. Here, we present an exact analytical solution for the shape recovery dynamics of deformed biomolecular droplets. The shape recovery of viscous droplets has an exponential time dependence, with the time constant given by the "viscocapillary" ratio, i.e., viscosity over interfacial tension. In contrast, the shape recovery dynamics of viscoelastic droplets is multi-exponential, with shear relaxation yielding additional time constants. During shape recovery, viscoelastic droplets exhibit shear thickening (increase in apparent viscosity) at fast shear relaxation rates but shear thinning (decrease in apparent viscosity) at slow shear relaxation rates. These results highlight the importance of viscoelasticity and expand our understanding of how material properties affect condensate dynamics in general, including aging.

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Year:  2021        PMID: 34654286      PMCID: PMC8514253          DOI: 10.1063/5.0064247

Source DB:  PubMed          Journal:  J Chem Phys        ISSN: 0021-9606            Impact factor:   4.304


  29 in total

1.  Shape oscillations of a viscoelastic drop.

Authors:  D B Khismatullin; A Nadim
Journal:  Phys Rev E Stat Nonlin Soft Matter Phys       Date:  2001-05-29

2.  A Liquid-to-Solid Phase Transition of the ALS Protein FUS Accelerated by Disease Mutation.

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Journal:  Cell       Date:  2015-08-27       Impact factor: 41.582

3.  Germline P granules are liquid droplets that localize by controlled dissolution/condensation.

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Journal:  Science       Date:  2009-05-21       Impact factor: 47.728

Review 4.  Formation of biological condensates via phase separation: Characteristics, analytical methods, and physiological implications.

Authors:  Zhe Feng; Xudong Chen; Xiandeng Wu; Mingjie Zhang
Journal:  J Biol Chem       Date:  2019-08-23       Impact factor: 5.157

Review 5.  RNA contributions to the form and function of biomolecular condensates.

Authors:  Christine Roden; Amy S Gladfelter
Journal:  Nat Rev Mol Cell Biol       Date:  2020-07-06       Impact factor: 94.444

6.  Determinants for Fusion Speed of Biomolecular Droplets.

Authors:  Archishman Ghosh; Huan-Xiang Zhou
Journal:  Angew Chem Int Ed Engl       Date:  2020-09-08       Impact factor: 15.336

Review 7.  Organization and Function of Non-dynamic Biomolecular Condensates.

Authors:  Jeffrey B Woodruff; Anthony A Hyman; Elvan Boke
Journal:  Trends Biochem Sci       Date:  2017-12-16       Impact factor: 13.807

8.  A Molecular Grammar Governing the Driving Forces for Phase Separation of Prion-like RNA Binding Proteins.

Authors:  Jie Wang; Jeong-Mo Choi; Alex S Holehouse; Hyun O Lee; Xiaojie Zhang; Marcus Jahnel; Shovamayee Maharana; Régis Lemaitre; Andrei Pozniakovsky; David Drechsel; Ina Poser; Rohit V Pappu; Simon Alberti; Anthony A Hyman
Journal:  Cell       Date:  2018-06-28       Impact factor: 41.582

9.  The glassiness of hardening protein droplets.

Authors:  Huaiying Zhang
Journal:  Science       Date:  2020-12-11       Impact factor: 47.728

10.  Simulation of FUS Protein Condensates with an Adapted Coarse-Grained Model.

Authors:  Zakarya Benayad; Sören von Bülow; Lukas S Stelzl; Gerhard Hummer
Journal:  J Chem Theory Comput       Date:  2020-12-13       Impact factor: 6.006

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