English

On the Engulfment of Antifreeze Proteins by Ice

Biological Physics 2024-01-03 v1 Mesoscale and Nanoscale Physics Chemical Physics

Abstract

Antifreeze proteins (AFPs) are remarkable biomolecules that suppress ice formation at trace concentrations. To inhibit ice growth, AFPs must not only bind to ice crystals, but also resist engulfment by ice. The highest supercooling, ΔT\Delta T^{*}, for which AFPs are able to resist engulfment is widely believed to scale as the inverse of the separation, LL, between bound AFPs, whereas its dependence on the molecular characteristics of the AFP remains poorly understood. By using specialized molecular simulations and interfacial thermodynamics, here we show that in contrast with conventional wisdom, ΔT\Delta T^{*} scales as L2L^{-2} and not as L1L^{-1}. We further show that ΔT\Delta T^{*} is proportional to AFP size and that diverse naturally occurring AFPs are optimal at resisting engulfment by ice. By facilitating the development of AFP structure-function relationships, we hope that our findings will pave the way for the rational design of novel AFPs.

Keywords

Cite

@article{arxiv.2401.01271,
  title  = {On the Engulfment of Antifreeze Proteins by Ice},
  author = {Aniket U. Thosar and Yusheng Cai and Sean M. Marks and Zachariah Vicars and Jeongmoon Choi and Akash Pallath and Amish J. Patel},
  journal= {arXiv preprint arXiv:2401.01271},
  year   = {2024}
}