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Published on: July 21, 2018
mTORC1 alters the expression of glycolytic genes by regulating KPNA2 abundances
Xianwei Chen1, Yinghui Zhu1, Zhaohui Wang2
1CAS Key Laboratory of Genome Sciences and Information, China Gastrointestinal Cancer Research Center, Beijing Institute of Genomics, Chinese Academy of Sciences, Beijing 100101, China; University of Chinese Academy of Sciences, Beijing 100049, China.
Unlabelled:
Mammalian target of rapamycin complex 1 (mTORC1) plays important roles in regulating cell growth and proliferation, and the aberrant activation of mTORC1 has been observed in many human diseases. However, the proteins regulated by mTORC1 activation and their roles in mTORC1 downstream functions are still poorly understood. Using proteomic analysis, we found that proteins regulated by mTORC1 in MEFs could be categorized into eight functional groups including protein nuclear import and glycolysis. The positive regulation of Karyopherin subunit alpha-2 (KPNA2), an importer protein involved in protein nuclear import, by mTORC1 was verified in several other mouse and human cell lines. The regulation occurred at the transcriptional level, rather than at the level of S6K1- and 4E-BP1-dependent protein synthesis. KPNA2 knockdown partially blocked upregulation of glycolytic genes by mTORC1 activation, indicating that mTORC1 activation enhanced expression of glycolytic genes by increasing KPNA2 abundances. Furthermore, KPNA2 knockdown had no effects on the expression and subcellular localization of HIF1α, a transcription factor involved in regulating glycolytic genes downstream of mTORC1. In conclusion, our results proved that KPNA2 regulated the expression of glycolytic genes downstream of mTORC1 in a HIF1α-independent manner.
Significance:
Identifying mTORC1-regulated proteins through proteomic method is a feasible way to study the downstream functions of mTORC1. In this study, we identified many mTORC1-regulated proteins using proteomic analysis by overlapping two different high vs low/no mTORC1 activity comparisons, TSC2(-/-) vs WT MEFs and TSC2(-/-) with/without rapamycin treatment. We found the abundances of many enzymes in glycolysis pathway and several proteins involved in protein nuclear import were positively regulated by mTORC1. More importantly, we first discovered that mTORC1 positively regulated the importer protein KPNA2, which participated in glycolysis regulation downstream of mTORC1 in a HIF1α-independent manner, indicating that mTORC1 regulates glycolysis through multiple ways.
Insights
Mammalian target of rapamycin complex 1 (mTORC1) regulates cell growth. This study reveals mTORC1 increases Karyopherin subunit alpha-2 (KPNA2) levels, which then promotes glycolysis independently of HIF1α.
Area of Science:
- Cellular Biology
- Molecular Biology
- Biochemistry
Background:
- Mammalian target of rapamycin complex 1 (mTORC1) is crucial for cell growth and proliferation.
- Aberrant mTORC1 activation is implicated in various human diseases.
- Downstream targets and functions of mTORC1 remain incompletely understood.
Purpose of the Study:
- To identify proteins regulated by mTORC1.
- To elucidate the role of these proteins in mTORC1-mediated cellular functions.
- To investigate the mechanism by which mTORC1 influences glycolysis.
Main Methods:
- Proteomic analysis was employed to identify mTORC1-regulated proteins in mouse embryonic fibroblasts (MEFs).
- Quantitative proteomic data were obtained by comparing cells with high vs. low/no mTORC1 activity (TSC2(-/-) vs. WT MEFs and TSC2(-/-) with/without rapamycin).
- Knockdown experiments were performed to assess the functional role of Karyopherin subunit alpha-2 (KPNA2).
Main Results:
- Proteomic analysis identified eight functional groups of mTORC1-regulated proteins, including those involved in protein nuclear import and glycolysis.
- mTORC1 positively regulates the abundance of KPNA2, a protein import facilitator, at the transcriptional level.
- KPNA2 knockdown partially inhibited mTORC1-induced upregulation of glycolytic genes, independent of HIF1α.
- mTORC1 activation enhances glycolysis through KPNA2-mediated regulation of glycolytic gene expression.
Conclusions:
- Proteomic identification of mTORC1 targets is effective for studying its downstream functions.
- mTORC1 positively regulates KPNA2, a key player in protein nuclear import.
- mTORC1 promotes glycolysis via KPNA2 in a HIF1α-independent pathway, highlighting multifaceted regulation of glycolysis.
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