Poirier Alexandre, Le Griel Patrick, Bizien Thomas, Zinn Thomas, Pernot Petra, Baccile Niki
Sorbonne Université, Centre National de la Recherche Scientifique, Laboratoire de Chimie de la Matière Condensée de Paris, LCMCP, F-75005 Paris, France.
Synchrotron Soleil, L'Orme des Merisiers, Saint-Aubin, BP48, 91192 Gif-sur-Yvette Cedex, France.
Soft Matter. 2023 Jan 18;19(3):366-377. doi: 10.1039/d2sm00374k.
Low-molecular weight gelators (LMWGs) are small molecules ( < ∼1 kDa), which form self-assembled fibrillar network (SAFiN) hydrogels in water. A great majority of SAFiN gels are described by an entangled network of self-assembled fibers, in analogy to a polymer in a good solvent. Here, fibrillation of a biobased glycolipid bolaamphiphile is triggered by Ca or Ag ions which are added to its diluted micellar phase. The resulting SAFiN, which forms a hydrogel above 0.5 wt%, has a "nano-fishnet" structure, characterized by a fibrous network of both entangled fibers and β-sheet-like rafts, generally observed for silk fibroin, actin hydrogels or mineral imogolite nanotubes, but generally not known for SAFiN. This work focuses on the strength of the SAFIN gels, their fast recovery after applying a mechanical stimulus (strain) and their unusual resistance to temperature, studied by coupling rheology to small angle X-ray scattering (rheo-SAXS) using synchrotron radiation. The Ca-based hydrogel maintains its properties up to 55 °C, while the Ag-based gel shows a constant elastic modulus up to 70 °C, without the appearance of any gel-to-sol transition temperature. Furthermore, the glycolipid is obtained by fermentation from natural resources (glucose and rapeseed oil), thus showing that naturally engineered compounds can have unprecedented properties, when compared to the wide range of chemically derived amphiphiles.
低分子量凝胶剂(LMWGs)是小分子(< ∼1 kDa),它们在水中形成自组装纤维网络(SAFiN)水凝胶。绝大多数SAFiN凝胶被描述为自组装纤维的缠结网络,类似于处于良溶剂中的聚合物。在此,一种生物基糖脂双性分子的纤维化由添加到其稀释胶束相中的Ca或Ag离子触发。所得的SAFiN在重量百分比高于0.5%时形成水凝胶,具有“纳米鱼网”结构,其特征是由缠结纤维和β-折叠状筏组成的纤维网络,这种结构通常在丝素蛋白、肌动蛋白水凝胶或埃洛石纳米管中观察到,但SAFiN通常不具有。这项工作重点研究了SAFiN凝胶的强度、施加机械刺激(应变)后的快速恢复能力以及它们对温度的异常抗性,通过使用同步辐射将流变学与小角X射线散射(rheo-SAXS)相结合进行研究。钙基水凝胶在高达55°C时仍保持其性能,而银基凝胶在高达70°C时显示出恒定的弹性模量,且未出现任何凝胶-溶胶转变温度。此外,这种糖脂是通过从自然资源(葡萄糖和菜籽油)发酵获得的,因此表明与广泛的化学合成两亲物相比,天然工程化的化合物可以具有前所未有的性能。