Comparison of the Ice-Regulating Properties of Side-Zwitterionic
Poly(vinyl alcohol)-Poly(
l
-methionine) and Poly(ethylene
glycol)-Poly(
l
-methion
Yucao Liu, Liang Yuan, Zihan Chen, Kongying Zhu, Lixia Ren, Xiaoyan Yuan Abstract
For controlling ice nucleation and growth, bioinspired polypeptides were developed to mimic the functions of natural antifreeze (glyco)proteins, such as functionalized poly(l-methionine) (PMet) with different side groups showing moderate ice recrystallization inhibition (IRI) activity. In order to strengthen the ice-binding ability, in this work, poly(vinyl alcohol)-poly(l-methionine) is synthesized in comparison with poly(ethylene glycol)-poly(l-methionine) using macromolecular initiators, and the ice-control activities of their side-modified polypeptides, PVA–PMet-COOH and PEG–PMet-COOH in zwitterionic forms, are systematically examined. Results show that PVA–PMet-COOH exhibits potent IRI activity (mean largest grain size 28.2 ± 3.7% relative to PBS) at 0.3 mg/mL, similar to PVA via strong interaction with water molecules observed by the sucrose “sandwich” ice shaping assay, whereas PEG–PMet-COOH displays enhanced IRI activity at 50 mg/mL. Both PVA–PMet-COOH and PEG–PMet-COOH can increase the ice nucleation temperature at 5 mg/mL or higher concentrations owing to their zwitterionic structures. Analyses using differential scanning calorimetry and low-field nuclear magnetic resonance are performed to elucidate the difference in the underlying ice-control mechanism. This study provides an attempt to prepare zwitterionic polypeptides with potent IRI activity and nucleation-regulating capacity.