Protein encapsulation via polyelectrolyte complex coacervation: Protection against protein denaturation

2018 ◽  
Vol 149 (16) ◽  
pp. 163326 ◽  
Author(s):  
Mengmeng Zhao ◽  
Nicole S. Zacharia
2021 ◽  
Author(s):  
Nicholas Zervoudis ◽  
Allie Obermeyer

The complex coacervation of proteins with other macromolecules has applications in protein encapsulation and delivery and for determining the function of cellular coacervates. Theoretical or empirical predictions for protein coacervates would enable the design of these coacervates with tunable and predictable structure-function relationships; unfortunately, no such theories exist. To help establish predictive models, the impact of protein-specific parameters on complex coacervation were probed in this study. The complex coacervation of sequence-specific, polypeptide-tagged, GFP variants and a strong synthetic polyelectrolyte was used to evaluate the effects of protein charge patterning on phase behavior. Phase portraits for the protein coacervates demonstrated that charge patterning dictates the protein’s binodal phase boundary. Protein concentrations over 100 mg mL<sup>-1</sup> were achieved in the coacervate phase, with concentrations dependent on the polypeptide sequence. In addition to shifting the binodal phase boundary, polypeptide charge patterning provided entropic advantages over isotropically patterned proteins. Together, these results show that modest changes of only a few amino acids alter the coacervation thermodynamics and can be used to tune the phase behavior of polypeptides or proteins of interest.


Soft Matter ◽  
2016 ◽  
Vol 12 (44) ◽  
pp. 9030-9038 ◽  
Author(s):  
Xiaoqing Liu ◽  
Marie Haddou ◽  
Isabelle Grillo ◽  
Zohra Mana ◽  
Jean-Paul Chapel ◽  
...  

Soft Matter ◽  
2021 ◽  
Author(s):  
Nicholas A. Zervoudis ◽  
Allie C. Obermeyer

Charge patterned polypeptides modulate the complex coacervation of globular proteins with polymers. These protein coacervates have applications in protein encapsulation and delivery and in determining the function of biomolecular condensates.


2018 ◽  
Vol 149 (16) ◽  
pp. 163303 ◽  
Author(s):  
Pengfei Zhang ◽  
Nayef M. Alsaifi ◽  
Jianzhong Wu ◽  
Zhen-Gang Wang

2021 ◽  
Author(s):  
Nicholas Zervoudis ◽  
Allie Obermeyer

The complex coacervation of proteins with other macromolecules has applications in protein encapsulation and delivery and for determining the function of cellular coacervates. Theoretical or empirical predictions for protein coacervates would enable the design of these coacervates with tunable and predictable structure-function relationships; unfortunately, no such theories exist. To help establish predictive models, the impact of protein-specific parameters on complex coacervation were probed in this study. The complex coacervation of sequence-specific, polypeptide-tagged, GFP variants and a strong synthetic polyelectrolyte was used to evaluate the effects of protein charge patterning on phase behavior. Phase portraits for the protein coacervates demonstrated that charge patterning dictates the protein’s binodal phase boundary. Protein concentrations over 100 mg mL<sup>-1</sup> were achieved in the coacervate phase, with concentrations dependent on the polypeptide sequence. In addition to shifting the binodal phase boundary, polypeptide charge patterning provided entropic advantages over isotropically patterned proteins. Together, these results show that modest changes of only a few amino acids alter the coacervation thermodynamics and can be used to tune the phase behavior of polypeptides or proteins of interest.


2014 ◽  
Vol 47 (9) ◽  
pp. 3076-3085 ◽  
Author(s):  
Dimitrios Priftis ◽  
Xiaoxing Xia ◽  
Khatcher O. Margossian ◽  
Sarah L. Perry ◽  
Lorraine Leon ◽  
...  

2014 ◽  
Vol 3 (10) ◽  
pp. 1088-1091 ◽  
Author(s):  
Katie A. Black ◽  
Dimitrios Priftis ◽  
Sarah L. Perry ◽  
Jeremy Yip ◽  
William Y. Byun ◽  
...  

2018 ◽  
Vol 149 (16) ◽  
pp. 163308 ◽  
Author(s):  
Sabin Adhikari ◽  
Michael A. Leaf ◽  
Murugappan Muthukumar

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