Mysling Simon, Kristensen Kristian Kølby, Larsson Mikael, Beigneux Anne P, Gårdsvoll Henrik, Fong Loren G, Bensadouen André, Jørgensen Thomas Jd, Young Stephen G, Ploug Michael
Finsen Laboratory, Rigshospitalet, Copenhagen, Denmark.
Biotech Research and Innovation Centre, University of Copenhagen, Copenhagen, Denmark.
Elife. 2016 Jan 3;5:e12095. doi: 10.7554/eLife.12095.
GPIHBP1 is a glycolipid-anchored membrane protein of capillary endothelial cells that binds lipoprotein lipase (LPL) within the interstitial space and shuttles it to the capillary lumen. The LPL•GPIHBP1 complex is responsible for margination of triglyceride-rich lipoproteins along capillaries and their lipolytic processing. The current work conceptualizes a model for the GPIHBP1•LPL interaction based on biophysical measurements with hydrogen-deuterium exchange/mass spectrometry, surface plasmon resonance, and zero-length cross-linking. According to this model, GPIHBP1 comprises two functionally distinct domains: (1) an intrinsically disordered acidic N-terminal domain; and (2) a folded C-terminal domain that tethers GPIHBP1 to the cell membrane by glycosylphosphatidylinositol. We demonstrate that these domains serve different roles in regulating the kinetics of LPL binding. Importantly, the acidic domain stabilizes LPL catalytic activity by mitigating the global unfolding of LPL's catalytic domain. This study provides a conceptual framework for understanding intravascular lipolysis and GPIHBP1 and LPL mutations causing familial chylomicronemia.
GPIHBP1是一种糖脂锚定的毛细血管内皮细胞膜蛋白,它在间质空间内结合脂蛋白脂肪酶(LPL),并将其转运至毛细血管腔。LPL•GPIHBP1复合物负责富含甘油三酯的脂蛋白沿毛细血管的边缘化及其脂解过程。目前的工作基于氢-氘交换/质谱、表面等离子体共振和零长度交联的生物物理测量,构建了一个GPIHBP1•LPL相互作用的模型。根据该模型,GPIHBP1包含两个功能不同的结构域:(1)一个内在无序的酸性N端结构域;(2)一个折叠的C端结构域,通过糖基磷脂酰肌醇将GPIHBP1连接到细胞膜上。我们证明这些结构域在调节LPL结合动力学中发挥不同作用。重要的是,酸性结构域通过减轻LPL催化结构域的整体去折叠来稳定LPL催化活性。这项研究为理解血管内脂解以及导致家族性乳糜微粒血症的GPIHBP1和LPL突变提供了一个概念框架。