PO.MCB03.02 · 分子与细胞生物学

mSin1磷酸化背后的谜团

The mystery behind mSin1 phosphorylation

海报缩略图:mSin1磷酸化背后的谜团
编号 3316 展板 23 时间 4/20 02:00–05:00 区域 Section 24 主讲 Samira Mahmoudi, BS;MS
分会场 RTK-ERBB-PI3K and New Targets in Therapeutic Resistance
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作者与单位 Authors & Affiliations

Samira Mahmoudi, Bing Cheng, Yan Luo, Lei Liu, Shile Huang

Department of Biochemistry and Molecular Biology, LSU Health Shreveport, Shreveport, LA

摘要 Abstract

中文摘要
哺乳动物应激激活蛋白激酶相互作用蛋白1(mSin1)是雷帕霉素机制性靶点复合物2(mTORC2)的核心组分,与其他mTOR亚基相比,其特征描述较少。特别是,调控其磷酸化的机制及其对mTOR信号传导的功能贡献仍未明确界定。相互矛盾的报道表明,mSin1在T86位点的磷酸化由Akt或核糖体蛋白S6激酶1(S6K1)介导,凸显了其上游调控的不确定性。这些差异强调了深入研究调控mSin1磷酸化的激酶和通路的必要性。我们发现,雷帕霉素处理在多种正常和癌细胞系中降低了总体磷酸化,但矛盾地增加了mSin1的T86磷酸化。这些效应独立于mTORC1/mTORC2及下游效应因子(S6K1和Akt),但需要mTOR激酶活性和亚基mLST8(哺乳动物致死伴SEC13蛋白8)。由于mTOR充当营养感受器,我们还检测了营养可用性对mSin1磷酸化的影响。长时间葡萄糖剥夺(而非氨基酸剥夺)显著降低了HeLa细胞中mSin1的磷酸化,而补充葡萄糖后可恢复。这些效应在Rh30、VSMC和MEF细胞中未观察到。总之,我们的研究结果表明,雷帕霉素通过靶向一种新型mTOR复合物抑制mSin1磷酸化,在某些情况下可能与葡萄糖代谢相关。需要进一步研究以明确确切的磷酸化位点及其意义,以及调控这些磷酸化位点的新型mTOR复合物。
查看英文原文 English abstract
Mammalian stress-activated protein kinase-interacting protein 1 (mSin1), a core component of the mechanistic target of rapamycin complex 2 (mTORC2), is less well characterized than other mTOR subunits. In particular, the mechanisms regulating its phosphorylation and its functional contribution to mTOR signaling remain poorly defined. Conflicting reports suggest that phosphorylation of mSin1 at T86 is mediated either by Akt or by ribosomal protein S6 kinase 1 (S6K1), highlighting uncertainty regarding its upstream regulation. These discrepancies underscore the need for deeper investigation into the kinases and pathways governing mSin1 phosphorylation. We found that rapamycin treatment decreases overall phosphorylation while paradoxically increasing T86 phosphorylation of mSin1 across multiple normal and cancer cell lines. These effects are independent of mTORC1/mTORC2 and downstream effectors (S6K1 and Akt) yet requires mTOR kinase activity and the subunit mLST8 (mammalian lethal with SEC13 protein 8). Since mTOR acts as a nutrient sensor, we also examined the effect of nutrient availability on mSin1 phosphorylation. Prolonged glucose deprivation, but not amino acid deprivation, markedly decreased mSin1 phosphorylation in HeLa cells, which was restored upon glucose repletion. These effects were not observed in Rh30, VSMC, and MEF cells. Collectively, our findings suggest that that rapamycin inhibits mSin1 phosphorylation by targeting a novel mTOR complex and might be associated with glucose metabolism in some contexts. Further research is needed to define the exact phosphorylation sites and their significance as well as the new mTOR complex regulating these phosphorylation sites.
利益披露 Disclosure
S. Mahmoudi, None.. B. Cheng, None.. Y. Luo, None.. L. Liu, None.. S. Huang, None.

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