Literature DB >> 27268140

Selective Uptake and Refolding of Globular Proteins in Coacervate Microdroplets.

Nicolas Martin1, Mei Li1, Stephen Mann1.   

Abstract

Intrinsic differences in the molecular sequestration of folded and unfolded proteins within poly(diallyldimethylammonium) (PDDA)/poly(acrylate) (PAA) coacervate microdroplets are exploited to establish membrane-free microcompartments that support protein refolding, facilitate the recovery of secondary structure and enzyme activity, and enable the selective uptake and exclusion of folded and unfolded biomolecules, respectively. Native bovine serum albumin, carbonic anhydrase, and α-chymotrypsin are preferentially sequestered within positively charged coacervate microdroplets, and the unfolding of these proteins in the presence of increasing amounts of urea results in an exponential decrease in the equilibrium partition constants as well as the kinetic release of unfolded molecules from the droplets into the surrounding continuous phase. Slow refolding in the presence of positively charged microdroplets leads to the resequestration of functional proteins and the restoration of enzymatic activity; however, fast refolding results in protein aggregation at the droplet surface. In contrast, slow and fast refolding in the presence of negatively charged PDDA/PAA droplets gives rise to reduced protein aggregation and misfolding by interactions at the droplet surface to give increased levels of protein renaturation. Together, our observations provide new insights into the bottom-up design and construction of self-assembling microcompartments capable of supporting the selective uptake and refolding of globular proteins.

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Year:  2016        PMID: 27268140     DOI: 10.1021/acs.langmuir.6b01271

Source DB:  PubMed          Journal:  Langmuir        ISSN: 0743-7463            Impact factor:   3.882


  9 in total

1.  Liquid-liquid phase separation in artificial cells.

Authors:  Charles D Crowe; Christine D Keating
Journal:  Interface Focus       Date:  2018-08-17       Impact factor: 3.906

2.  Thermostabilization of viruses via complex coacervation.

Authors:  Xue Mi; Whitney C Blocher McTigue; Pratik U Joshi; Mallory K Bunker; Caryn L Heldt; Sarah L Perry
Journal:  Biomater Sci       Date:  2020-12-15       Impact factor: 6.843

3.  Partitioning and Enhanced Self-Assembly of Actin in Polypeptide Coacervates.

Authors:  Patrick M McCall; Samanvaya Srivastava; Sarah L Perry; David R Kovar; Margaret L Gardel; Matthew V Tirrell
Journal:  Biophys J       Date:  2018-04-10       Impact factor: 4.033

4.  Reentrant Phase Transitions and Non-Equilibrium Dynamics in Membraneless Organelles.

Authors:  Anthony N Milin; Ashok A Deniz
Journal:  Biochemistry       Date:  2018-04-03       Impact factor: 3.162

5.  Antagonistic chemical coupling in self-reconfigurable host-guest protocells.

Authors:  Nicolas Martin; Jean-Paul Douliez; Yan Qiao; Richard Booth; Mei Li; Stephen Mann
Journal:  Nat Commun       Date:  2018-09-07       Impact factor: 14.919

6.  Charge-Based Separation of Proteins Using Polyelectrolyte Complexes as Models for Membraneless Organelles.

Authors:  Jéré J van Lente; Mireille M A E Claessens; Saskia Lindhoud
Journal:  Biomacromolecules       Date:  2019-09-05       Impact factor: 6.988

7.  Reversible pH-Responsive Coacervate Formation in Lipid Vesicles Activates Dormant Enzymatic Reactions.

Authors:  Celina Love; Jan Steinkühler; David T Gonzales; Naresh Yandrapalli; Tom Robinson; Rumiana Dimova; T-Y Dora Tang
Journal:  Angew Chem Int Ed Engl       Date:  2020-02-26       Impact factor: 15.336

Review 8.  Biological phase separation: cell biology meets biophysics.

Authors:  Takuya Yoshizawa; Ryu-Suke Nozawa; Tony Z Jia; Tomohide Saio; Eiichiro Mori
Journal:  Biophys Rev       Date:  2020-03-18

9.  Multiphase Complex Coacervate Droplets.

Authors:  Tiemei Lu; Evan Spruijt
Journal:  J Am Chem Soc       Date:  2020-01-30       Impact factor: 15.419

  9 in total

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