The control of self-assembly of sodium
caseinate (SC) including
the formation of mixed layers, microspheres, or nanoparticles is highly
relevant to the microstructure of food and the design of promising
drug delivery systems. In this paper, we designed a structure-switchable
zwitterionic bolaamphiphile, 1,12-diaminododecanediorotate (DDO),
from orotic acid, which has special binding sites and can guide the
self-assembly of SC. Complexation between SC and DDO was investigated
using dynamic light scattering, transmission electron microscopy,
differential scanning calorimetry, and fluorescence spectra measurements.
Monomeric DDO was bound to the negatively charged sites on the SC
micelle and made the structure of SC more compact with decreased electrostatic
repulsion between the head groups. Vesicular DDO led to reassociation
of vesicles with enlarged size via preferable hydrophobic interactions.
Moreover, the aggregation between SC and DDO was found to be temperature-dependent
and reversible. This research provides an effective way to control
the reversible self-assembly of SC by the zwitterionic vitamin-derived
bolaamphiphile.