Modulation of anti-cancer drug sensitivity through the regulation of mitochondrial activity by adenylate kinase 4

被引:49
作者
Fujisawa, Koichi [1 ,2 ]
Terai, Shuji [2 ,3 ]
Takami, Taro [2 ]
Yamamoto, Naoki [2 ]
Yamasaki, Takahiro [2 ,4 ]
Matsumoto, Toshihiko [2 ,4 ]
Yamaguchi, Kazuhito [5 ]
Owada, Yuji [5 ]
Nishina, Hiroshi [6 ]
Noma, Takafumi [7 ]
Sakaida, Isao [1 ,2 ]
机构
[1] Yamaguchi Univ, Sch Med, Ctr Regenerat Med, Ube, Yamaguchi 755, Japan
[2] Yamaguchi Univ, Sch Med, Dept Gastroenterol & Hepatol, Ube, Yamaguchi 755, Japan
[3] Niigata Univ, Sch Med & Dent Sci, Div Gastroenterol & Hepatol, Chuo Ku, 1-757 Asahimachidori, Niigata 9518510, Japan
[4] Yamaguchi Univ, Sch Med, Dept Oncol & Lab Med, Ube, Yamaguchi 755, Japan
[5] Yamaguchi Univ, Sch Med, Dept Org Anat, Ube, Yamaguchi 755, Japan
[6] Tokyo Med & Dent Univ, Med Res Inst, Dept Dev & Regenerat Biol, Bunkyo Ku, 1-5-45 Yushima, Tokyo 1138510, Japan
[7] Tokushima Univ Sch, Inst Biomed Sci, Dept Mol Biol, Tokushima, Japan
基金
日本学术振兴会;
关键词
Adenylate kinase; Drug resistance; Energy metabolism; Flux analysis; Hypoxia; Metabolome; Mitochondria; HEPATOCELLULAR-CARCINOMA; CANCER-THERAPY; GENE; PHOSPHORYLATION; DEFICIENCY; METABOLISM; EXPRESSION; GROWTH; CELLS;
D O I
10.1186/s13046-016-0322-2
中图分类号
R73 [肿瘤学];
学科分类号
100214 ;
摘要
Background: Adenylate kinase is a key enzyme in the high-energy phosphoryl transfer reaction in living cells. An isoform of this enzyme, adenylate kinase 4 (AK4), is localized in the mitochondrial matrix and is believed to be involved in stress, drug resistance, malignant transformation in cancer, and ATP regulation. However, the molecular basis for the AK4 functions remained to be determined. Methods: HeLa cells were transiently transfected with an AK4 small interfering RNA (siRNA), an AK4 short hairpin RNA (shRNA) plasmid, a control shRNA plasmid, an AK4 expression vector, and a control expression vector to examine the effect of the AK4 expression on cell proliferation, sensitivity to anti-cancer drug, metabolome, gene expression, and mitochondrial activity. Results: AK4 knockdown cells treated with short hairpin RNA increased ATP production and showed greater sensitivity to hypoxia and anti-cancer drug, cis-diamminedichloro-platinum (II) (CDDP). Subcutaneous grafting AK4 knockdown cells into nude mice revealed that the grafted cells exhibited both slower proliferation and reduced the tumor sizes in response to CDDP. AK4 knockdown cell showed a increased oxygen consumption rate with FCCP treatment, while AK4 overexpression lowered it. Metabolome analysis showed the increased levels of the tricarboxylic acid cycle intermediates, fumarate and malate in AK4 knockdown cells, while AK4 overexpression lowered them. Electron microscopy detected the increased mitochondrial numbers in AK4 knockdown cells. Microarray analysis detected the increased gene expression of two key enzymes in TCA cycle, succinate dehydrogenase A (SDHA) and oxoglutarate dehydrogenease L (OGDHL), which are components of SDH complex and OGDH complex, supporting the metabolomic results. Conclusions: We found that AK4 was involved in hypoxia tolerance, resistance to anti-tumor drug, and the regulation of mitochondrial activity. These findings provide a new potential target for efficient anticancer therapies by controlling AK4 expression.
引用
收藏
页数:15
相关论文
共 38 条
[1]   Balancing biosynthesis and bioenergetics: metabolic programs in oncogenesis [J].
Barger, Jennifer F. ;
Plas, David R. .
ENDOCRINE-RELATED CANCER, 2010, 17 (04) :R287-R304
[2]   Restoration of mitochondria function as a target for cancer therapy [J].
Bhat, Tariq A. ;
Kumar, Sandeep ;
Chaudhary, Ajay K. ;
Yadav, Neelu ;
Chandra, Dhyan .
DRUG DISCOVERY TODAY, 2015, 20 (05) :635-643
[3]   A mitochondria-K+ channel axis is suppressed in cancer and its normalization promotes apoptosis and inhibits cancer growth [J].
Bonnet, Sebastien ;
Archer, Stephen L. ;
Allalunis-Turner, Joan ;
Haromy, Alois ;
Beaulieu, Christian ;
Thompson, Richard ;
Lee, Christopher T. ;
Lopaschuk, Gary D. ;
Puttagunta, Lakshmi ;
Bonnet, Sandra ;
Harry, Gwyneth ;
Hashimoto, Kyoko ;
Porter, Christopher J. ;
Andrade, Miguel A. ;
Thebaud, Bernard ;
Michelakis, Evangelos D. .
CANCER CELL, 2007, 11 (01) :37-51
[4]   Structure-function relationships in the 2-oxo acid dehydrogenase family: Substrate-specific signatures and functional predictions for the 2-oxoglutarate dehydrogenase-like proteins [J].
Bunik, Victoria I. ;
Degtyarev, Dmitry .
PROTEINS-STRUCTURE FUNCTION AND BIOINFORMATICS, 2008, 71 (02) :874-890
[5]   Oxygen sensing and molecular adaptation to hypoxia [J].
Bunn, HF ;
Poyton, RO .
PHYSIOLOGICAL REVIEWS, 1996, 76 (03) :839-885
[6]   Temporal transcriptome of mouse ATDC5 chondroprogenitors differentiating under hypoxic conditions [J].
Chen, Li ;
Fink, Trine ;
Ebbesen, Peter ;
Zachar, Vladimir .
EXPERIMENTAL CELL RESEARCH, 2006, 312 (10) :1727-1744
[7]   Pressing Mitochondrial Genetics Forward [J].
Chen, Yu-Chan ;
Rutter, Jared .
CELL REPORTS, 2014, 7 (03) :599-600
[8]   Low copy number of mitochondrial DNA (mtDNA) predicts worse prognosis in early-stage laryngeal cancer patients [J].
Dang, Siwen ;
Qu, Yiping ;
Wei, Jing ;
Shao, Yuan ;
Yang, Qi ;
Ji, Meiju ;
Shi, Bingyin ;
Hou, Peng .
DIAGNOSTIC PATHOLOGY, 2014, 9
[9]   Adenylate kinase isozyme 2 is essential for growth and development of Drosophila melanogaster [J].
Fujisawa, Koichi ;
Murakami, Ryutaro ;
Horiguchi, Taigo ;
Noma, Takafumi .
COMPARATIVE BIOCHEMISTRY AND PHYSIOLOGY B-BIOCHEMISTRY & MOLECULAR BIOLOGY, 2009, 153 (01) :29-38
[10]   Rhythmic Nucleotide Synthesis in the Liver: Temporal Segregation of Metabolites [J].
Fustin, Jean-Michel ;
Doi, Masao ;
Yamada, Hiroyuki ;
Komatsu, Rie ;
Shimba, Shigeki ;
Okamura, Hitoshi .
CELL REPORTS, 2012, 1 (04) :341-349