Université Côte d'Azur, Centre National de la Recherche Scientifique, Institut de Pharmacologie Moléculaire et Cellulaire, Valbonne 06560, France.
Department of Physics, École Normale Supérieure (LPENS), Paris 75005, France.
Proc Natl Acad Sci U S A. 2024 Mar 5;121(10):e2315493121. doi: 10.1073/pnas.2315493121. Epub 2024 Feb 26.
Oxysterol-binding protein-related proteins (ORPs) play key roles in the distribution of lipids in eukaryotic cells by exchanging sterol or phosphatidylserine for PI4P between the endoplasmic reticulum (ER) and other cell regions. However, it is unclear how their exchange capacity is coupled to PI4P metabolism. To address this question quantitatively, we analyze the activity of a representative ORP, Osh4p, in an ER/Golgi interface reconstituted with ER- and Golgi-mimetic membranes functionalized with PI4P phosphatase Sac1p and phosphatidylinositol (PI) 4-kinase, respectively. Using real-time assays, we demonstrate that upon adenosine triphosphate (ATP) addition, Osh4p creates a sterol gradient between these membranes, relying on the spatially distant synthesis and hydrolysis of PI4P, and quantify how much PI4P is needed for this process. Then, we develop a quantitatively accurate kinetic model, validated by our data, and extrapolate this to estimate to what extent PI4P metabolism can drive ORP-mediated sterol transfer in cells. Finally, we show that Sec14p can support PI4P metabolism and Osh4p activity by transferring PI between membranes. This study establishes that PI4P synthesis drives ORP-mediated lipid exchange and that ATP energy is needed to generate intermembrane lipid gradients. Furthermore, it defines to what extent ORPs can distribute lipids in the cell and reassesses the role of PI-transfer proteins in PI4P metabolism.
氧化固醇结合蛋白相关蛋白(ORPs)通过在内质网(ER)和其他细胞区域之间交换固醇或磷脂酰丝氨酸与 PI4P,在真核细胞中发挥着脂质分布的关键作用。然而,它们的交换能力如何与 PI4P 代谢偶联尚不清楚。为了定量解决这个问题,我们使用分别用 PI4P 磷酸酶 Sac1p 和磷脂酰肌醇(PI)4-激酶功能化的 ER 和高尔基体模拟膜,在再构成的 ER/高尔基体界面上分析代表性的 ORP,Osh4p 的活性。通过实时测定,我们证明,在三磷酸腺苷(ATP)添加后,Osh4p 在这些膜之间创建了固醇梯度,这依赖于 PI4P 的空间上遥远的合成和水解,并且量化了这个过程需要多少 PI4P。然后,我们开发了一个定量准确的动力学模型,并用我们的数据进行了验证,并推断出 PI4P 代谢在多大程度上可以驱动细胞中 ORP 介导的固醇转移。最后,我们表明 Sec14p 可以通过在膜之间转移 PI 来支持 PI4P 代谢和 Osh4p 活性。这项研究确立了 PI4P 合成驱动 ORP 介导的脂质交换,并且需要 ATP 能量来产生膜间脂质梯度。此外,它定义了 ORPs 可以在细胞中分配脂质的程度,并重新评估了 PI 转移蛋白在 PI4P 代谢中的作用。