βIII-Tubulin alters glucose metabolism and stress response signaling to promote cell survival and proliferation in glucose-starved non-small cell lung cancer cells

被引:29
作者
Parker, Amelia L. [1 ,2 ,3 ]
Turner, Nigel [4 ]
McCarroll, Joshua A. [1 ,2 ,3 ]
Kavallaris, Maria [1 ,2 ,3 ]
机构
[1] UNSW Lowy Canc Res Ctr, Childrens Canc Inst, Tumour Biol & Targeting Program, Randwick, NSW 2031, Australia
[2] UNSW Australia, Australian Ctr Nanomed, Sydney, NSW 2052, Australia
[3] UNSW Australia, ARC Ctr Excellence Convergent Bionano Sci & Techn, Sydney, NSW 2052, Australia
[4] UNSW Australia, Sch Med Sci, Dept Pharmacol, Sydney, NSW 2052, Australia
基金
澳大利亚研究理事会; 澳大利亚国家健康与医学研究理事会; 英国医学研究理事会;
关键词
ER-STRESS; GLYCERALDEHYDE-3-PHOSPHATE DEHYDROGENASE; AUTOPHAGY; EXPRESSION; AKT; INHIBITION; MICROTUBULES; CHEMOTHERAPY; RESISTANCE; PATHWAY;
D O I
10.1093/carcin/bgw058
中图分类号
R73 [肿瘤学];
学科分类号
100214 ;
摘要
This study provides the first functional evidence that beta III-tubulin, which is highly and aberrantly expressed in aggressive NSCLC, regulates glycolytic metabolism and glucose starvation stress responses to promote cell survival and proliferation in glucose-starved NSCLC cells.Non-small cell lung cancer (NSCLC) survival rates are dismal and high beta III-tubulin expression is associated with chemotherapy drug resistance and tumor aggressiveness in this disease. Mounting evidence supports a role for beta III-tubulin in promoting cell survival in the harsh tumor microenvironment, which is characterized by poor nutrient supply. This study aimed to investigate the role of beta III-tubulin in glucose stress response signaling and the survival and proliferation of NSCLC cells. This study revealed that beta III-tubulin regulates cellular metabolism and glucose stress response signaling in NSCLC cells to promote cell survival and proliferation in glucose starvation. beta III-Tubulin decreases the reliance of cells on glycolytic metabolism, priming them to cope with variable nutrient supply present within the tumor microenvironment. beta III-Tubulin protects cells from endoplasmic reticulum (ER) stress and reduces both basal and glucose starvation-induced autophagy to maintain cell survival and proliferation. beta III-Tubulin enables rapid Akt activation in response to glucose starvation and co-immunoprecipitates with the master regulator of the ER stress response GRP78. Furthermore, suppression of beta III-tubulin delays the association of GRP78 with Akt in response to glucose starvation with the potential to influence Akt activation and ER homeostasis under these conditions. Together these results identify that beta III-tubulin regulates glucose metabolism and alters glucose starvation stress signaling to promote cell proliferation and survival in NSCLC cells. This elucidates a hitherto unknown role for this microtubule protein and provides insight into correlations between high beta III-tubulin expression and poor patient outcome in this disease.
引用
收藏
页码:787 / 798
页数:12
相关论文
共 75 条
[51]   Microtubules and their role in cellular stress in cancer [J].
Parker, Amelia L. ;
Kavallaris, Maria ;
McCarroll, Joshua A. .
FRONTIERS IN ONCOLOGY, 2014, 4
[52]   HuR Regulates β-Tubulin Isotype Expression in Ovarian Cancer [J].
Raspaglio, Giuseppina ;
De Maria, Ilaria ;
Filippetti, Flavia ;
Martinelli, Enrica ;
Zannoni, Gian Franco ;
Prislei, Silvia ;
Ferrandina, Gabriella ;
Shahabi, Shohreh ;
Scambia, Giovanni ;
Ferlini, Cristiano .
CANCER RESEARCH, 2010, 70 (14) :5891-5900
[53]   Cross-validation study of class III beta-tubulin as a predictive marker for benefit from adjuvant chemotherapy in resected non-small-cell lung cancer: analysis of four randomized trials [J].
Reiman, T. ;
Lai, R. ;
Veillard, A. S. ;
Paris, E. ;
Soria, J. C. ;
Rosell, R. ;
Taron, M. ;
Graziano, S. ;
Kratzke, R. ;
Seymour, L. ;
Shepherd, F. A. ;
Pignon, J. P. ;
Seve, P. .
ANNALS OF ONCOLOGY, 2012, 23 (01) :86-U10
[54]   Regulation of basal cellular physiology by the homeostatic unfolded protein response [J].
Rutkowski, D. Thomas ;
Hegde, Ramanujan S. .
JOURNAL OF CELL BIOLOGY, 2010, 189 (05) :783-794
[55]   Correlation between [18F]FDG PET/CT and volume perfusion CT in primary tumours and mediastinal lymph nodes of non-small-cell lung cancer [J].
Sauter, Alexander W. ;
Spira, Daniel ;
Schulze, Maximilian ;
Pfannenberg, Christina ;
Hetzel, Juergen ;
Reimold, Matthias ;
Klotz, Ernst ;
Claussen, Claus D. ;
Horger, Marius S. .
EUROPEAN JOURNAL OF NUCLEAR MEDICINE AND MOLECULAR IMAGING, 2013, 40 (05) :677-684
[56]   PI3K/AKT, MAPK and AMPK signalling: protein kinases in glucose homeostasis [J].
Schultze, Simon M. ;
Hemmings, Brian A. ;
Niessen, Markus ;
Tschopp, Oliver .
EXPERT REVIEWS IN MOLECULAR MEDICINE, 2012, 14
[57]   Class III β-tubulin expression in tumor cells predicts response and outcome in patients with non-small cell lung cancer receiving paclitaxel [J].
Sève, P ;
Mackey, J ;
Isaac, S ;
Trédan, O ;
Souquet, PJ ;
Pérol, M ;
Lai, R ;
Voloch, A ;
Dumontet, C .
MOLECULAR CANCER THERAPEUTICS, 2005, 4 (12) :2001-2007
[58]   Autophagy Sustains Mitochondrial Glutamine Metabolism and Growth of BrafV600E-Driven Lung Tumors [J].
Strohecker, Anne M. ;
Guo, Jessie Yanxiang ;
Karsli-Uzunbas, Gizem ;
Price, Sandy M. ;
Chen, Guanghua Jim ;
Mathew, Robin ;
McMahon, Martin ;
White, Eileen .
CANCER DISCOVERY, 2013, 3 (11) :1272-1285
[59]   Expression of endoplasmic reticulum molecular chaperone Grp78 in human lung cancer and its clinical significance [J].
Uramoto, H ;
Sugio, K ;
Oyama, T ;
Nakata, S ;
Ono, K ;
Yoshimastu, T ;
Morita, M ;
Yasumoto, K .
LUNG CANCER, 2005, 49 (01) :55-62
[60]   ER stress and hexosamine pathway during tumourigenesis: A pas de deux? [J].
Vasseur, Sophie ;
Manie, Serge N. .
SEMINARS IN CANCER BIOLOGY, 2015, 33 :34-39