Thermally-resilient, phase-invertible, ultra-stable all-aqueous compartments by pH-modulated protein colloidal particles

J Colloid Interface Sci. 2024 Jul:665:413-421. doi: 10.1016/j.jcis.2024.03.155. Epub 2024 Mar 23.

Abstract

The essence of compartmentalization in cells is the inspiration behind the engineering of synthetic counterparts, which has emerged as a significant engineering theme. Here, we report the formation of ultra-stable water-in-water (W/W) emulsion droplets. These W/W droplets demonstrate previously unattained stability across a broad pH spectrum and exhibit resilience at temperatures up to 80℃, overcoming the challenge of insufficient robustness in dispersed droplets of aqueous two-phase systems (ATPS). The exceptional robustness is attributed to the strong anchoring of micelle-like casein colloidal particles at the PEO/DEX interface, which maintains stability under varying environmental conditions. The increased surface hydrophobicity of these particles at high temperatures contributes to the formation of thermally-stable droplets, enduring temperatures as high as 80℃. Furthermore, our study illustrates the adaptable affinity of micelle-like casein colloidal particles towards the PEO/DEX-rich phase, enabling the formation of stable DEX-in-PEO emulsions at lower pH levels, and PEO-in-DEX emulsions as the pH rises above the isoelectric point. The robust nature of these W/W emulsions unlocks new possibilities for exploring various biochemical reactions within synthetic subcellular modules and lays a solid foundation for the development of novel biomimetic materials.

Keywords: Aqueous two-phase system; Casein; Colloidosomes; Emulsion stability; Liquid–liquid phase separation; Pickering emulsion; Water-in-water emulsion.

MeSH terms

  • Caseins
  • Emulsions
  • Hydrogen-Ion Concentration
  • Micelles*
  • Resilience, Psychological*
  • Water

Substances

  • Micelles
  • Caseins
  • Emulsions
  • Water