1. Signaling Pathways
  2. PI3K/Akt/mTOR
  3. mTOR

mTOR (哺乳动物雷帕霉素靶蛋白)

Mammalian target of Rapamycin

mTOR(哺乳动物雷帕霉素靶蛋白)是一种由人类 mTOR 基因编码的蛋白质。mTOR 是一种丝氨酸/苏氨酸蛋白激酶,可调节细胞生长、细胞增殖、细胞运动、细胞存活、蛋白质合成和转录。mTOR 属于磷脂酰肌醇 3-激酶相关激酶蛋白家族。mTOR 整合上游通路的输入,包括生长因子和氨基酸。mTOR 还能感知细胞营养、氧气和能量水平。mTOR 通路在人类疾病中失调,例如糖尿病、肥胖症、抑郁症和某些癌症。雷帕霉素通过与其细胞内受体 FKBP12 结合来抑制 mTOR。FKBP12-雷帕霉素复合物直接与 mTOR 的 FKBP12-雷帕霉素结合 (FRB) 域结合,从而抑制其活性。

mTOR (mammalian target of Rapamycin) is a protein that in humans is encoded by the mTOR gene. mTOR is a serine/threonine protein kinase that regulates cell growth, cell proliferation, cell motility, cell survival, protein synthesis, and transcription. mTOR belongs to the phosphatidylinositol 3-kinase-related kinase protein family. mTOR integrates the input from upstream pathways, including growth factors and amino acids. mTOR also senses cellular nutrient, oxygen, and energy levels. The mTOR pathway is dysregulated in human diseases, such as diabetes, obesity, depression, and certain cancers. Rapamycin inhibits mTOR by associating with its intracellular receptor FKBP12. The FKBP12-rapamycin complex binds directly to the FKBP12-Rapamycin Binding (FRB) domain of mTOR, inhibiting its activity.

Cat. No. Product Name Effect Purity Chemical Structure
  • HY-10218S1
    Everolimus-13C2,d4 Inhibitor
    Everolimus-13C2,d4 (RAD001-13C2,d4) 是 13C 标记的 Everolimus. Everolimus (RAD001) 是一种雷帕霉素 (Rapamycin; HY-10219) 的衍生物,也是一种有效的,选择性的和口服活性的 mTOR1 抑制剂。Everolimus 与 FKBP-12 结合可产生免疫抑制复合物。Everolimus 抑制肿瘤细胞增殖并诱导细胞凋亡 (apoptosis) 和自噬 (autophagy)。Everolimus 具有有效的免疫抑制和抗癌活性。
    Everolimus-<sup>13</sup>C<sub>2</sub>,d<sub>4</sub>
  • HY-W019868
    1-O-Hexadecyl-2-O-acetyl-sn-glycerol Inhibitor
    1-O-Hexadecyl-2-O-acetyl-sn-glycerol 是一种烷基酰基甘油,可能激活 A-系统的氨基酸转运活性,刺激对甲氨基异丁酸 (MeAIB) 的吸收。而 MeAIB 抑制 mTOR 磷酸化,可能影响小肠氨基酸吸收和信号转导。
    1-O-Hexadecyl-2-O-acetyl-sn-glycerol
  • HY-N4247R
    Kuwanon G (Standard)

    桑黄酮 G (Standard)

    Inhibitor
    Kuwanon G (Standard) 是 Kuwanon G (HY-N4247) 的分析标准品。本产品用于研究及分析应用。Kuwanon G 是一种黄酮类化合物,为蛙皮素受体 (bombesin receptor) 拮抗剂。Kuwanon G 具有杀菌、抗肿瘤、抗炎抗氧化、抗动脉粥样硬化和神经保护等多种活性。Kuwanon G 对口腔病原体具有较强的抗菌活性,尤其是对致龋菌和牙周病原菌。Kuwanon G 能诱导肿瘤细胞凋亡 (apoptosis),抑制增殖、迁移和侵袭。Kuwanon G 可用于胃癌、动脉粥样硬化等疾病的研究。
    Kuwanon G (Standard)
  • HY-N0787R
    Cryptochlorogenic acid (Standard)

    隐绿原酸(Standard)

    Inhibitor
    Cryptochlorogenic acid (Standard)是 Cryptochlorogenic acid 的分析标准品。本产品用于研究及分析应用。隐绿原酸 (Cryptochlorogenic acid) 是一种天然产物。
    Cryptochlorogenic acid (Standard)
  • HY-10474R
    Torkinib (Standard) Inhibitor
    Torkinib (Standard)是 Torkinib 的分析标准品。本产品用于研究及分析应用。Torkinib (PP 242) 是一种选择性,ATP 竞争型的 mTOR 抑制剂,IC50 为 8 nM。PP242 抑制 mTORC1mTORC2IC50 分别为 30 nM 和 58 nM。
    Torkinib (Standard)
  • HY-50910R
    Temsirolimus (Standard)

    替西罗莫司 (Standard)

    Inhibitor
    Temsirolimus (Standard) 是 Temsirolimus 的分析标准品。本产品用于研究及分析应用。Temsirolimus 是 mTOR 抑制剂,IC50 值为 1.76 μM。Temsirolimus 能激活自噬 (autophagy),在动物模型中防止心脏功能恶化。
    Temsirolimus (Standard)
  • HY-B0627S1
    Metformin-13C2 hydrochloride
    Metformin-13C2 (1,1-Dimethylbiguanide-13C2) hydrochloride 是 13C 标记的 Metformin hydrochloride (HY-17471A)。Metformin hydrochloride 抑制肝脏中的线粒体呼吸链,导致 AMPK 活化,增强胰岛素敏感性,可用于 2 型糖尿病的研究。Metformin hydrochloride 也抑制肝脏缺血/再灌注损伤引起的肝脏氧化应激、亚硝化应激、炎症和细胞凋亡 (apoptosis)。此外,Metformin hydrochloride 还通过激活 AMPK 和抑制 mTOR 信号通路,调节自噬相关蛋白的表达,从而诱导肿瘤细胞自噬 (autophagy) 并抑制体外和体内肾细胞癌生长。
    Metformin-<sup>13</sup>C<sub>2</sub> hydrochloride
  • HY-112602
    PI3K/mTOR Inhibitor-1 Inhibitor
    PI3K/mTOR Inhibitor-1 是一种有效的,口服生物可利用的双重 PI3K/mTOR 抑制剂,抑制 PI3Kα/PI3Kβ/PI3Kγ/PI3KδmTORIC50 分别为 20/376/204/46 nM 和 186 nM。具有抗肿瘤活性。
    PI3K/mTOR Inhibitor-1
  • HY-111370
    mTOR inhibitor-2 Inhibitor
    mTOR inhibitor-2 是有效,选择性,可口服的 mTOR 抑制剂,IC50为7 nM。mTOR Inhibitor 1抑制mTORC1 (pS6 and p4E-BP1) 和mTORC2 (pAKT (S473)) 底物的细胞磷酸化。
    mTOR inhibitor-2
目录号 产品名 / 同用名 应用 反应物种

The mammalian target of rapamycin (mTOR) signaling pathway integrates both intracellular and extracellular signals and serves as a central regulator of cell metabolism, growth, proliferation and survival[1]. mTOR is the catalytic subunit of two distinct complexes called mTORC1 and mTORC2. mTORC1 comprises DEPTOR, PRAS40, RAPTOR, mLST8, mTOR, whereas mTORC2 comprises DEPTOR, mLST8, PROTOR, RICTOR, mSIN1, mTOR[2]. Rapamycin binds to FKBP12 and inhibits mTORC1 by disrupting the interaction between mTOR and RAPTOR. mTORC1 negatively regulates autophagy through multiple inputs, including inhibitory phosphorylation of ULK1 and TFEB. mTORC1 promotes protein synthesis through activation of the translation initiation promoter S6K and through inhibition of the inhibitory mRNA cap binding 4E-BP1, and regulates glycolysis through HIF-1α. It promotes de novo lipid synthesis through the SREBP transcription factors. mTORC2 inhibits FOXO1,3 through SGK and Akt, which can lead to increased longevity. The complex also regulates actin cytoskeleton assembly through PKC and Rho kinase[3]

 

Growth factors: Growth factors can signal to mTORC1 through both PI3K-Akt and Ras-Raf-MEK-ERK axis. For example, ERK and RSK phosphorylate TSC2, and inhibit it.

 

Insulin Receptor: The activated insulin receptor recruits intracellular adaptor protein IRS1. Phosphorylation of these proteins on tyrosine residues by the insulin receptor initiates the recruitment and activation of PI3K. PIP3 acts as a second messenger which promotes the phosphorylation of Akt and triggers the Akt-dependent multisite phosphorylation of TSC2. TSC is a heterotrimeric complex comprised of TSC1, TSC2, and TBC1D7, and functions as a GTPase activating protein (GAP) for the small GTPase Rheb, which directly binds and activates mTORC1. mTORC2 primarily functions as an effector of insulin/PI3K signaling. 

 

Wnt: The Wnt pathway activates mTORC1. Glycogen synthase kinase 3β (GSK-3β) acts as a negative regulator of mTORC1 by phosphorylating TSC2. mTORC2 is activated by Wnt in a manner dependent on the small GTPase RAC1[4].

 

Amino acids: mTORC1 senses both lysosomal and cytosolic amino acids through distinct mechanisms. Amino acids induce the movement of mTORC1 to lysosomal membranes, where the Rag proteins reside. A complex named Ragulator, interact with the Rag GTPases, recruits them to lysosomes through a mechanism dependent on the lysosomal v-ATPase, and is essential for mTORC1 activation. In turn, lysosomal recruitment enables mTORC1 to interact with GTP-bound RHEB, the end point of growth factor. Cytosolic leucine and arginine signal to mTORC1 through a distinct pathway comprised of the GATOR1 and GATOR2 complexes.    

 

Stresses: mTORC1 responds to intracellular and environmental stresses that are incompatible with growth such as low ATP levels, hypoxia, or DNA damage. A reduction in cellular energy charge, for example during glucose deprivation, activates the stress responsive metabolic regulator AMPK, which inhibits mTORC1 both indirectly, through phosphorylation and activation of TSC2, as well as directly through the phosphorylation of RAPTOR. Sestrin1/2 are two transcriptional targets of p53 that are implicated in the DNA damage response, and they potently activate AMPK, thus mediating the p53-dependent suppression of mTOR activity upon DNA damage. During hypoxia, mitochondrial respiration is impaired, leading to low ATP levels and activation of AMPK. Hypoxia also affects mTORC1 in AMPK-independent ways by inducing the expression of REDD1, the protein products of which then suppress mTORC1 by promoting the assembly of TSC1-TSC2[2].

 

Reference:

[1]. Laplante M, et al.mTOR signaling at a glance.J Cell Sci. 2009 Oct 15;122(Pt 20):3589-94. 
[2]. Zoncu R, et al. mTOR: from growth signal integration to cancer, diabetes and ageing.Nat Rev Mol Cell Biol. 2011 Jan;12(1):21-35. 
[3]. Johnson SC, et al. mTOR is a key modulator of ageing and age-related disease.Nature. 2013 Jan 17;493(7432):338-45.
[4]. Shimobayashi M, et al. Making new contacts: the mTOR network in metabolism and signalling crosstalk.Nat Rev Mol Cell Biol. 2014 Mar;15(3):155-62.

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