Kimiasadat Mirlohi, Anuja Thapa, Donghui Zhang, Whitney C Blocher McTigue
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The Effects of Chirality and Salt Addition on Phase Separation and Complexation Morphology in Mixtures of Polypeptides and Polypeptoids.
Liquid-liquid phase separation (LLPS), particularly through coacervation, offers a groundbreaking approach to drug delivery by encapsulating therapeutic agents within phase-separated droplets, enhancing their stability, solubility, and controlled release. Polypeptides and polypeptoids, with their structural diversity and tunability, emerge as promising candidates for exploring these systems, with polypeptoids offering unique advantages, such as resistance to enzymatic degradation and increased control over interactions. This study examines the impact of chirality, mixing charge fraction, and salt concentration on the phase behavior and morphology of homochiral, mixed-chiral, and achiral polymers. By exploring the role of chirality and ionic strength in determining the presence and morphology of complexation, this research provides critical insights for designing tunable coacervate systems. Our results show that polypeptides and polypeptoids demonstrate chirality-dependent complexation. Additionally, we show that the presence and morphology of phase separation within these systems are influenced by the concentration of charged species in each sample, enabling the control and tunability of complex formation. These findings have the potential to advance the development of biomaterials for applications ranging from gene therapy to vaccine stabilization, offering innovative solutions to pressing biomedical challenges.
期刊介绍:
Biomacromolecules is a leading forum for the dissemination of cutting-edge research at the interface of polymer science and biology. Submissions to Biomacromolecules should contain strong elements of innovation in terms of macromolecular design, synthesis and characterization, or in the application of polymer materials to biology and medicine.
Topics covered by Biomacromolecules include, but are not exclusively limited to: sustainable polymers, polymers based on natural and renewable resources, degradable polymers, polymer conjugates, polymeric drugs, polymers in biocatalysis, biomacromolecular assembly, biomimetic polymers, polymer-biomineral hybrids, biomimetic-polymer processing, polymer recycling, bioactive polymer surfaces, original polymer design for biomedical applications such as immunotherapy, drug delivery, gene delivery, antimicrobial applications, diagnostic imaging and biosensing, polymers in tissue engineering and regenerative medicine, polymeric scaffolds and hydrogels for cell culture and delivery.