Seyrig Chloé, Le Griel Patrick, Cowieson Nathan, Perez Javier, Baccile Niki
Sorbonne Université, Centre National de la Recherche Scientifique, Laboratoire de Chimie de la Matière Condensée de Paris, LCMCP, F-75005 Paris, France.
Diamond Light Source Ltd, Diamond House, Harwell Science & Innovation Campus, Didcot, Oxfordshire OX11 0DE, UK.
J Colloid Interface Sci. 2020 Nov 15;580:493-502. doi: 10.1016/j.jcis.2020.07.021. Epub 2020 Jul 11.
Multilamellar wall vesicles (MLWV) are an interesting class of polyelectrolyte-surfactant complexes (PESCs) for wide applications ranging from house-care to biomedical products. If MLWV are generally obtained by a polyelectrolyte-driven vesicle agglutination under pseudo-equilibrium conditions, the resulting phase is often a mixture of more than one structure. In this work, we show that MLWV can be massively and reproductively prepared from a recently developed method involving a pH-stimulated phase transition from a complex coacervate phase (Co). We employ a biobased pH-sensitive microbial glucolipid biosurfactant in the presence of a natural, or synthetic, polyamine (chitosan, poly-l-Lysine, polyethylene imine, polyallylamine). In situ small angle X-ray scattering (SAXS) and cryogenic transmission electron microscopy (cryo-TEM) show a systematic isostructural and isodimensional transition from the Co to the MLWV phase, while optical microscopy under polarized light experiments and cryo-TEM reveal a massive, virtually quantitative, presence of MLWV. Finally, the multilamellar wall structure is not perturbed by filtration and sonication, two typical methods employed to control size distribution in vesicles. In summary, this work highlights a new, robust, non-equilibrium phase-change method to develop biobased multilamellar wall vesicles, promising soft colloids with applications in the field of personal care, cosmetics and pharmaceutics among many others.
多层壁囊泡(MLWV)是一类有趣的聚电解质 - 表面活性剂复合物(PESCs),具有广泛的应用,涵盖从家居护理到生物医学产品等领域。如果MLWV通常是在准平衡条件下通过聚电解质驱动的囊泡凝集获得的,那么所得相通常是一种由多种结构组成的混合物。在这项工作中,我们表明可以通过一种最近开发的方法大量且可重复地制备MLWV,该方法涉及从复合凝聚相(Co)进行pH刺激的相变。我们在天然或合成多胺(壳聚糖、聚 - L - 赖氨酸、聚乙烯亚胺、聚烯丙胺)存在的情况下使用一种基于生物的pH敏感微生物糖脂生物表面活性剂。原位小角X射线散射(SAXS)和低温透射电子显微镜(cryo - TEM)显示从Co到MLWV相存在系统的同结构和同尺寸转变,而偏振光实验下的光学显微镜和cryo - TEM揭示了大量几乎定量存在的MLWV。最后,多层壁结构不会因过滤和超声处理而受到干扰,这两种是用于控制囊泡尺寸分布的典型方法。总之,这项工作突出了一种新的、稳健的、非平衡相变方法来开发基于生物的多层壁囊泡,这种有前景的软胶体在个人护理、化妆品和制药等众多领域具有应用价值。