Haberkant Per, Schmitt Oliver, Contreras F-Xabier, Thiele Christoph, Hanada Kentaro, Sprong Hein, Reinhard Constanze, Wieland Felix T, Brügger Britta
Heidelberg University Biochemistry Center, 69120 Heidelberg, Germany.
J Lipid Res. 2008 Jan;49(1):251-62. doi: 10.1194/jlr.D700023-JLR200. Epub 2007 Sep 28.
Each intracellular organelle critically depends on maintaining its specific lipid composition that in turn contributes to the biophysical properties of the membrane. With our knowledge increasing about the organization of membranes with defined microdomains of different lipid compositions, questions arise regarding the molecular mechanisms that underlie the targeting to/segregation from microdomains of a given protein. In addition to specific lipid-transmembrane segment interactions as a basis for partitioning, the presence in a given microdomain may alter the conformation of proteins and, thus, the activity and availability for regulatory modifications. However, for most proteins, the specific lipid environment of transmembrane segments as well as its relevance to protein function and overall membrane organization are largely unknown. To help fill this gap, we have synthesized a novel photoactive sphingolipid precursor that, together with a precursor for phosphoglycerolipids and with photo-cholesterol, was investigated in vivo with regard to specific protein transmembrane span-lipid interactions. As a proof of principle, we show specific labeling of the ceramide transporter with the sphingolipid probe and describe specific in vivo interactions of lipids with caveolin-1, phosphatidylinositol transfer protein beta, and the mature form of nicastrin. This novel photolabile sphingolipid probe allows the detection of protein-sphingolipid interactions within the membrane bilayer of living cells.
每个细胞内细胞器都严重依赖于维持其特定的脂质组成,而这反过来又有助于膜的生物物理特性。随着我们对具有不同脂质组成的特定微结构域的膜组织的了解不断增加,关于给定蛋白质靶向微结构域/从微结构域分离的分子机制的问题也随之出现。除了特定的脂质-跨膜片段相互作用作为分配的基础外,给定微结构域的存在可能会改变蛋白质的构象,从而改变其活性以及进行调节修饰的可能性。然而,对于大多数蛋白质而言,跨膜片段的特定脂质环境及其与蛋白质功能和整体膜组织的相关性在很大程度上仍不清楚。为了填补这一空白,我们合成了一种新型的光活性鞘脂前体,并与磷酸甘油脂前体和光胆固醇一起,在体内研究了特定蛋白质跨膜跨度与脂质的相互作用。作为原理验证,我们展示了鞘脂探针与神经酰胺转运蛋白的特异性标记,并描述了脂质与小窝蛋白-1、磷脂酰肌醇转移蛋白β和成熟形式的尼卡斯特林在体内的特异性相互作用。这种新型的光不稳定鞘脂探针能够检测活细胞膜双层内的蛋白质-鞘脂相互作用。