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TORC1-Npr1-Amu1/Par32控制的营养物质运输新调控机制的鉴定

Identification of a Novel Regulatory Mechanism of Nutrient Transport Controlled by TORC1-Npr1-Amu1/Par32.

作者信息

Boeckstaens Mélanie, Merhi Ahmad, Llinares Elisa, Van Vooren Pascale, Springael Jean-Yves, Wintjens René, Marini Anna Maria

机构信息

Biology of Membrane Transport, IBMM, Université Libre de Bruxelles, Gosselies, Belgium.

IRIBHM, Université Libre de Bruxelles, Campus ERASME, Brussels, Belgium.

出版信息

PLoS Genet. 2015 Jul 14;11(7):e1005382. doi: 10.1371/journal.pgen.1005382. eCollection 2015 Jul.

Abstract

Fine-tuning the plasma-membrane permeability to essential nutrients is fundamental to cell growth optimization. Nutritional signals including nitrogen availability are integrated by the TORC1 complex which notably regulates arrestin-mediated endocytosis of amino-acid transporters. Ammonium is a ubiquitous compound playing key physiological roles in many, if not all, organisms. In yeast, it is a preferred nitrogen source transported by three Mep proteins which are orthologues of the mammalian Rhesus factors. By combining genetic, kinetic, biochemical and cell microscopy analyses, the current study reveals a novel mechanism enabling TORC1 to regulate the inherent activity of ammonium transport proteins, independently of arrestin-mediated endocytosis, identifying the still functional orphan Amu1/Par32 as a selective regulator intermediate. We show that, under poor nitrogen supply, the TORC1 effector kinase' Npr1' promotes phosphorylation of Amu1/Par32 which appears mainly cytosolic while ammonium transport proteins are active. Upon preferred nitrogen supplementation, like glutamine or ammonium addition, TORC1 upregulation enables Npr1 inhibition and Amu1/Par32 dephosphorylation. In these conditions, as in Npr1-lacking cells, hypophosphorylated Amu1/Par32 accumulates at the cell surface and mediates the inhibition of specific ammonium transport proteins. We show that the integrity of a conserved repeated motif of Amu1/Par32 is required for the interaction with these transport proteins. This study underscores the diversity of strategies enabling TORC1-Npr1 to selectively monitor cell permeability to nutrients by discriminating between transporters to be degraded or transiently inactivated and kept stable at the plasma membrane. This study further identifies the function of Amu1/Par32 in acute control of ammonium transport in response to variations in nitrogen availability.

摘要

微调质膜对必需营养物质的通透性是优化细胞生长的基础。包括氮可用性在内的营养信号由TORC1复合物整合,该复合物显著调节抑制蛋白介导的氨基酸转运体的内吞作用。铵是一种普遍存在的化合物,在许多(如果不是所有)生物体中发挥着关键的生理作用。在酵母中,它是一种首选的氮源,由三种Mep蛋白转运,这三种蛋白是哺乳动物恒河猴因子的直系同源物。通过结合遗传、动力学、生化和细胞显微镜分析,本研究揭示了一种新机制,使TORC1能够独立于抑制蛋白介导的内吞作用来调节铵转运蛋白的固有活性,确定仍具有功能的孤儿蛋白Amu1/Par32为选择性调节中间体。我们表明,在氮供应不足的情况下,TORC1效应激酶Npr1促进Amu1/Par32的磷酸化,当铵转运蛋白活跃时,Amu1/Par32主要位于胞质中。在补充首选氮源(如添加谷氨酰胺或铵)后,TORC1的上调使Npr1受到抑制,Amu1/Par32去磷酸化。在这些条件下,与缺乏Npr1的细胞一样,低磷酸化的Amu1/Par32在细胞表面积累并介导特定铵转运蛋白的抑制。我们表明,Amu1/Par32保守重复基序的完整性是与这些转运蛋白相互作用所必需的。这项研究强调了TORC1-Npr1通过区分要降解或瞬时失活并在质膜上保持稳定的转运体来选择性监测细胞对营养物质通透性的策略的多样性。这项研究进一步确定了Amu1/Par32在响应氮可用性变化时对铵转运的急性控制中的功能。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5801/4501750/e37775aa9145/pgen.1005382.g001.jpg

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