Key Laboratory of Advanced Energy Materials Chemistry (Ministry of Education), College of Chemistry , Nankai University , Tianjin 300071 , China.
Noyes Laboratory of Chemical Physics and the Beckman Institute , California Institute of Technology , Pasadena , California 91125 , United States.
J Am Chem Soc. 2018 Dec 19;140(50):17492-17498. doi: 10.1021/jacs.8b08610. Epub 2018 Dec 6.
Nature carefully designs the components of amphiphile-composed monolayer and bilayer membranes to deliver specific functions. The compositions of these interfacial layered structures are so delicate that minute modifications can result in huge changes in function. Great effort has been expended to understand membrane physical properties, with only minimum attention given to associated chemical properties. Here we report the first examples of the delicate chemistry associated with membrane amphiphilic components by studying OH-mediated oxidation of six different unsaturated lipids/surfactants and their mixtures at the air-water interface using field-induced droplet ionization mass spectrometry (FIDI-MS). When the packing is loose or perturbed to be loose by other components or prior chemical modification, the double bond is oxidized without cleavage by adding oxygen functionality. In contrast, compact packing results in double bond cleavage through a Criegee intermediate mechanism. We postulate that constrained environments imposed by lipid packing limit the conformations of the reaction intermediates, controlling reaction pathways.
自然精心设计了两亲分子组成的单层膜和双层膜的组件,以实现特定的功能。这些界面层状结构的组成非常精细,微小的改变就能导致功能的巨大变化。人们已经付出了巨大的努力来理解膜的物理性质,但对相关的化学性质却关注甚少。在这里,我们通过使用场致滴电离质谱(FIDI-MS)研究了在空气-水界面处六种不同的不饱和脂质/表面活性剂及其混合物的 OH 介导氧化,首次报道了与膜两亲性成分相关的精细化学的实例。当通过其他成分或先前的化学修饰使包装松散或变得易于松散时,通过添加氧官能团,双键在不发生断裂的情况下被氧化。相比之下,通过 Criegee 中间体机制,紧密堆积会导致双键断裂。我们假设,由脂质堆积引起的约束环境限制了反应中间体的构象,从而控制了反应途径。