Influence of mTOR in energy and metabolic homeostasis

被引:82
|
作者
Haissaguerre, Magalie [1 ,2 ]
Saucisse, Nicolas [1 ,2 ]
Cota, Daniela [1 ,2 ]
机构
[1] INSERM, U862, Neuroctr Magendie, F-33000 Bordeaux, France
[2] Univ Bordeaux, Neuroctr Magendie, F-33000 Bordeaux, France
关键词
mTORC1; mTORC2; Hypothalamus; Energy balance; Leptin; Hormone; DIET-INDUCED OBESITY; REGULATES FOOD-INTAKE; BETA-CELL MASS; P70; S6; KINASE; MAMMALIAN TARGET; INSULIN-RESISTANCE; HYPOTHALAMIC MTOR; COMPLEX; GLUCOSE-TOLERANCE; SKELETAL-MUSCLE;
D O I
10.1016/j.mce.2014.07.015
中图分类号
Q2 [细胞生物学];
学科分类号
071009 ; 090102 ;
摘要
The mechanistic (or mammalian) target of rapamycin couples a variety of different environmental signals, including nutrients and hormones, with the regulation of several energy-demanding cellular functions, spanning from protein and lipid synthesis to mitochondrial activity and cytoskeleton dynamics. mTOR forms two distinct protein complexes in cells, mTORC1 and mTORC2. This review focuses on recent advances made in understanding the roles played by these two complexes in the regulation of whole body metabolic homeostasis. Studies carried out in the past few years have shown that mTORC1 activity in the hypothalamus varies by cell and stimulus type, and that this complex is critically implicated in the regulation of food intake and body weight and in the central actions of both nutrients and hormones, such as leptin, ghrelin and triiodothyronine. As a regulator of cellular anabolic processes, mTORC1 activity in the periphery favors adipogenesis, lipogenesis, glucose uptake and beta-cell mass expansion. Much less is known about the function of mTORC2 in the hypothalamus, while in peripheral organs this second complex exerts roles strikingly similar to those described for mTORC1. Deregulation of mTORC1 and mTORC2 is associated with obesity, type 2 diabetes, cancer and neurodegenerative disorders. Insights on the exact relationship between mTORC1 and mTORC2 in the context of the regulation of metabolic homeostasis and on the specific molecular mechanisms engaged by these two complexes in such regulation may provide new avenues for therapy. (C) 2014 Elsevier Ireland Ltd. All rights reserved.
引用
收藏
页码:67 / 77
页数:11
相关论文
共 50 条
  • [21] Metabolic Regulation and Energy Homeostasis through the Primary Cilium
    Oh, Edwin C.
    Vasanth, Shivakumar
    Katsanis, Nicholas
    CELL METABOLISM, 2015, 21 (01) : 21 - 31
  • [22] The role of metabolic memory in the ATP paradox and energy homeostasis
    Aledo, Juan C.
    Jimenez-Riverez, Susana
    Cuesta-Munoz, Antonio
    Romero, Juan M.
    FEBS JOURNAL, 2008, 275 (21) : 5332 - 5342
  • [23] Metabolic Status Regulates Ghrelin Function on Energy Homeostasis
    Briggs, Dana I.
    Andrews, Zane B.
    NEUROENDOCRINOLOGY, 2011, 93 (01) : 48 - 57
  • [24] Estrogen as a key regulator of energy homeostasis and metabolic health
    Mahboobifard, Fatemeh
    Pourgholami, Mohammad H.
    Jorjani, Masoumeh
    Dargahi, Leila
    Amiri, Mina
    Sadeghi, Somaye
    Tehrani, Fahimeh Ramezani
    BIOMEDICINE & PHARMACOTHERAPY, 2022, 156
  • [25] Engineering microbial metabolic energy homeostasis for improved bioproduction
    Tong, Tian
    Chen, Xiulai
    Hu, Guipeng
    Wang, Xiao-Ling
    Liu, Gao-Qiang
    Liu, Liming
    BIOTECHNOLOGY ADVANCES, 2021, 53
  • [26] MTOR: A mediator of intracellular Homeostasis
    Jaeschke, A
    Dennis, PB
    Thomas, G
    TOR-TARGET OF RAPAMYCIN, 2003, 279 : 283 - 298
  • [27] Influence of ghrelin on food intake and energy homeostasis
    De Vriese, Carine
    Delporte, Christine
    CURRENT OPINION IN CLINICAL NUTRITION AND METABOLIC CARE, 2007, 10 (05): : 615 - 619
  • [28] Regulation of Energy Homeostasis and as a Potential Target for Alleviating Metabolic Diseases
    Peppler, Willem T.
    Townsend, Logan K.
    Knuth, Carly M.
    Foster, Michelle T.
    Wright, David C.
    AMERICAN JOURNAL OF PHYSIOLOGY-ENDOCRINOLOGY AND METABOLISM, 2018, 314 (01): : E66 - E77
  • [29] Lipopolysaccharide affects metabolic processes and energy homeostasis in the corpus luteum
    Mierzejewski, Karol
    Stryinski, Robert
    Bogacka, Iwona
    Golubska, Monika
    Carrera, Monica
    Kurzynska, Aleksandra
    FRONTIERS IN MOLECULAR BIOSCIENCES, 2025, 11
  • [30] Metabolic coupling and the role played by astrocytes in energy distribution and homeostasis
    Medina, JM
    Giaume, C
    Tabernero, A
    THE FUNCTIONAL ROLES OF GLIAL CELLS IN HEALTH AND DISEASE: DIALOGUE BETWEEN GLIA AND NEURONS, 1999, 468 : 361 - 371