Literature DB >> 30384671

Protein encapsulation via polyelectrolyte complex coacervation: Protection against protein denaturation.

Mengmeng Zhao1, Nicole S Zacharia1.   

Abstract

Complex coacervation can be used as a route to compartmentalize a variety of solutes such as organic small molecules, inorganic nanoparticles, and proteins within microscale coacervate droplets. To obtain insight into the accumulation of proteins within complex coacervate phases, the encapsulation of Bovine Serum Albumin (BSA) within complex coacervates containing cationic polyelectrolyte poly(allylamine hydrochloride) (PAH) and anionic polyelectrolyte poly(acrylic aid) (PAA) was investigated as a function of mixing sequence, total polyelectrolyte concentration, BSA overall concentration, and the mixing molar ratio of PAA/PAH. Mixing BSA having a negative net charge with the polycation PAH before coacervation, increasing the total polyelectrolyte concentration and PAA/PAH molar ratio, or decreasing the BSA overall concentration led to more efficient protein encapsulation. Preservation of the secondary structure of BSA during the complex coacervation process was confirmed using circular dichroism spectroscopy. Our study shows that PAA-PAH coacervates can serve as a protective system against the denaturation of BSA when exposed to extremes of pH, high temperatures, as well as in solution of urea. Additionally, it was found that by encapsulation of proteins within coacervates via complex coacervation, the complexation between proteins and heavy metal can be efficiently inhibited. Protection of BSA against severe environmental conditions via encapsulation within polyelectrolyte coacervates provides new insights and methods to issues of maintaining stability and function of proteins.

Entities:  

Mesh:

Substances:

Year:  2018        PMID: 30384671     DOI: 10.1063/1.5040346

Source DB:  PubMed          Journal:  J Chem Phys        ISSN: 0021-9606            Impact factor:   3.488


  6 in total

1.  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

2.  Preparation, Characterization, and Antioxidant Properties of Phycocyanin Complexes Based on Sodium Alginate and Lysozyme.

Authors:  Bian-Wen Qiao; Xin-Tong Liu; Chen-Xin Wang; Shuang Song; Chun-Qing Ai; Ying-Huan Fu
Journal:  Front Nutr       Date:  2022-05-24

3.  Polyelectrolyte Complex Coacervate Assembly with Cellulose Nanofibers.

Authors:  Nasreen Khan; Nadia Z Zaragoza; Carly E Travis; Monojoy Goswami; Blair K Brettmann
Journal:  ACS Omega       Date:  2020-07-07

4.  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

5.  Heterogeneous Charged Complexes of Random Copolymers for the Segregation of Organic Molecules.

Authors:  Jeremy Wang; Curt Waltmann; Han Umana-Kossio; Monica Olvera de la Cruz; John M Torkelson
Journal:  ACS Cent Sci       Date:  2021-05-04       Impact factor: 14.553

Review 6.  Connecting primitive phase separation to biotechnology, synthetic biology, and engineering.

Authors:  Tony Z Jia; Po-Hsiang Wang; Tatsuya Niwa; Irena Mamajanov
Journal:  J Biosci       Date:  2021       Impact factor: 1.826

  6 in total

北京卡尤迪生物科技股份有限公司 © 2022-2023.