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溶酶体-PP2A介导的氨基酸依赖性TSC2去磷酸化调节mTORC1信号转导。

Amino acid-dependent TSC2 dephosphorylation by lysosome-PP2A regulates mTORC1 signaling transduction.

作者信息

Nakamura Takanori, Nada Shigeyuki, Matsumoto Masaki, Loling Othman Nuha, Kosako Hidetaka, Ikeda Kazuki, Koshikawa Naohiko, Masumoto Junya, Sawasaki Tatsuya, Takekawa Mutsuhiro, Suzuki Takashi, Okada Masato

机构信息

Division of Cell Signaling and Molecular Medicine, Institute of Medical Science, The University of Tokyo, Tokyo, Japan

Division of Cell-Free Sciences, Proteo-Science Center, Ehime University, Matsuyama, Japan.

出版信息

Life Sci Alliance. 2025 Sep 2;8(11). doi: 10.26508/lsa.202503206. Print 2025 Nov.

Abstract

The mammalian target of rapamycin complex 1 (mTORC1) signaling pathway, composed of amino acid (AA)-sensing (Ragulator/LAMTOR-Rag) and growth factor (GF)-sensing (AKT-TSC1/2-Rheb) axes, pivotally regulates intracellular anabolism and catabolism. mTORC1 deregulation is associated with various metabolic diseases, including cancer and diabetes. As a key regulator of nutrient signaling, mTORC1 integrates a variety of nutrient signals. However, signal integration and crosstalk in the mTORC1 pathway remain incompletely understood. Therefore, in this study, we aimed to understand the complex mTORC1 signaling cascade by constructing an integrated mathematical model of temporal mTORC1 regulation using two AA-sensing and GF-sensing axes. Mathematical simulations and experimental data revealed robust AKT phosphorylation (P-T308/P-S473) after insulin stimulation, regardless of the intracellular AA levels. Conversely, AKT-mediated inhibitory TSC2 phosphorylation (P-T1462) substantially diminished during AA deprivation compared with AA treatment. Furthermore, we highlighted PP2A-mediated TSC2 dephosphorylation during AA removal, ensuring complete mTORC1 activation only upon concurrent AA and GF sensing. Thus, we elucidated mTORC1 signaling dynamics, revealing the complex interplay between AAs and GFs and offering insights into metabolic regulation.

摘要

雷帕霉素靶蛋白复合物1(mTORC1)信号通路由氨基酸(AA)感应轴(Ragulator/LAMTOR-Rag)和生长因子(GF)感应轴(AKT-TSC1/2-Rheb)组成,对细胞内的合成代谢和分解代谢起着关键的调节作用。mTORC1失调与包括癌症和糖尿病在内的多种代谢性疾病相关。作为营养信号的关键调节因子,mTORC1整合了多种营养信号。然而,mTORC1信号通路中的信号整合和相互作用仍未完全明确。因此,在本研究中,我们旨在通过利用两条AA感应轴和GF感应轴构建一个时间性mTORC1调节的综合数学模型,来理解复杂的mTORC1信号级联反应。数学模拟和实验数据显示,无论细胞内AA水平如何,胰岛素刺激后AKT都会发生强烈的磷酸化(P-T308/P-S473)。相反,与AA处理相比,在AA剥夺期间,AKT介导的抑制性TSC2磷酸化(P-T1462)显著减少。此外,我们强调了在去除AA期间PP2A介导的TSC2去磷酸化,确保仅在同时感应到AA和GF时mTORC1才能完全激活。因此,我们阐明了mTORC1信号动力学,揭示了AA和GF之间复杂的相互作用,并为代谢调节提供了见解。

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