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TBC1D8 Amplification Drives Tumorigenesis through Metabolism Reprogramming in Ovarian Cancer

Cancer cells undergo metabolic reprogramming to support their energy demand and biomass synthesis. However, the mechanisms driving cancer metabolism reprogramming are not well understood. Methods: The differential proteins and interacted proteins were identified by proteomics. Western blot, qRT-PCR...

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Autores principales: Chen, Min, Sheng, Xiu-Jie, Qin, Yuan-Yi, Zhu, Song, Wu, Qing-Xia, Jia, Liqing, Meng, Nan, He, Yu-Tian, Yan, Guang-Rong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Ivyspring International Publisher 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6376479/
https://www.ncbi.nlm.nih.gov/pubmed/30809301
http://dx.doi.org/10.7150/thno.30224
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author Chen, Min
Sheng, Xiu-Jie
Qin, Yuan-Yi
Zhu, Song
Wu, Qing-Xia
Jia, Liqing
Meng, Nan
He, Yu-Tian
Yan, Guang-Rong
author_facet Chen, Min
Sheng, Xiu-Jie
Qin, Yuan-Yi
Zhu, Song
Wu, Qing-Xia
Jia, Liqing
Meng, Nan
He, Yu-Tian
Yan, Guang-Rong
author_sort Chen, Min
collection PubMed
description Cancer cells undergo metabolic reprogramming to support their energy demand and biomass synthesis. However, the mechanisms driving cancer metabolism reprogramming are not well understood. Methods: The differential proteins and interacted proteins were identified by proteomics. Western blot, qRT-PCR and IHC staining were used to analyze TBC1D8 levels. In vivo tumorigenesis and metastasis were performed by xenograft tumor model. Cross-Linking assays were designed to analyze PKM2 polymerization. Lactate production, glucose uptake and PK activity were determined. Results: We established two aggressive ovarian cancer (OVCA) cell models with increased aerobic glycolysis. TBC1D8, a member of the TBC domain protein family, was significantly up-regulated in the more aggressive OVCA cells. TBC1D8 is amplified and up-regulated in OVCA tissues. OVCA patients with high TBC1D8 levels have poorer prognoses. TBC1D8 promotes OVCA tumorigenesis and aerobic glycolysis in a GAP activity-independent manner in vitro and in vivo. TBC1D8 bound to PKM2, not PKM1, via its Rab-GAP TBC domain. Mechanistically, TBC1D8 binds to PKM2 and hinders PKM2 tetramerization to decreases pyruvate kinase activity and promote aerobic glycolysis, and to promote the nuclear translocation of PKM2, which induces the expression of genes which are involved in glucose metabolism and cell cycle. Conclusions: TBC1D8 drives OVCA tumorigenesis and metabolic reprogramming, and TBC1D8 serves as an independent prognosis factor for OVCA patients.
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spelling pubmed-63764792019-02-26 TBC1D8 Amplification Drives Tumorigenesis through Metabolism Reprogramming in Ovarian Cancer Chen, Min Sheng, Xiu-Jie Qin, Yuan-Yi Zhu, Song Wu, Qing-Xia Jia, Liqing Meng, Nan He, Yu-Tian Yan, Guang-Rong Theranostics Research Paper Cancer cells undergo metabolic reprogramming to support their energy demand and biomass synthesis. However, the mechanisms driving cancer metabolism reprogramming are not well understood. Methods: The differential proteins and interacted proteins were identified by proteomics. Western blot, qRT-PCR and IHC staining were used to analyze TBC1D8 levels. In vivo tumorigenesis and metastasis were performed by xenograft tumor model. Cross-Linking assays were designed to analyze PKM2 polymerization. Lactate production, glucose uptake and PK activity were determined. Results: We established two aggressive ovarian cancer (OVCA) cell models with increased aerobic glycolysis. TBC1D8, a member of the TBC domain protein family, was significantly up-regulated in the more aggressive OVCA cells. TBC1D8 is amplified and up-regulated in OVCA tissues. OVCA patients with high TBC1D8 levels have poorer prognoses. TBC1D8 promotes OVCA tumorigenesis and aerobic glycolysis in a GAP activity-independent manner in vitro and in vivo. TBC1D8 bound to PKM2, not PKM1, via its Rab-GAP TBC domain. Mechanistically, TBC1D8 binds to PKM2 and hinders PKM2 tetramerization to decreases pyruvate kinase activity and promote aerobic glycolysis, and to promote the nuclear translocation of PKM2, which induces the expression of genes which are involved in glucose metabolism and cell cycle. Conclusions: TBC1D8 drives OVCA tumorigenesis and metabolic reprogramming, and TBC1D8 serves as an independent prognosis factor for OVCA patients. Ivyspring International Publisher 2019-01-24 /pmc/articles/PMC6376479/ /pubmed/30809301 http://dx.doi.org/10.7150/thno.30224 Text en © Ivyspring International Publisher This is an open access article distributed under the terms of the Creative Commons Attribution (CC BY-NC) license (https://creativecommons.org/licenses/by-nc/4.0/). See http://ivyspring.com/terms for full terms and conditions.
spellingShingle Research Paper
Chen, Min
Sheng, Xiu-Jie
Qin, Yuan-Yi
Zhu, Song
Wu, Qing-Xia
Jia, Liqing
Meng, Nan
He, Yu-Tian
Yan, Guang-Rong
TBC1D8 Amplification Drives Tumorigenesis through Metabolism Reprogramming in Ovarian Cancer
title TBC1D8 Amplification Drives Tumorigenesis through Metabolism Reprogramming in Ovarian Cancer
title_full TBC1D8 Amplification Drives Tumorigenesis through Metabolism Reprogramming in Ovarian Cancer
title_fullStr TBC1D8 Amplification Drives Tumorigenesis through Metabolism Reprogramming in Ovarian Cancer
title_full_unstemmed TBC1D8 Amplification Drives Tumorigenesis through Metabolism Reprogramming in Ovarian Cancer
title_short TBC1D8 Amplification Drives Tumorigenesis through Metabolism Reprogramming in Ovarian Cancer
title_sort tbc1d8 amplification drives tumorigenesis through metabolism reprogramming in ovarian cancer
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6376479/
https://www.ncbi.nlm.nih.gov/pubmed/30809301
http://dx.doi.org/10.7150/thno.30224
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