Knockdown of RPL9 expression inhibits colorectal carcinoma growth via the inactivation of Id-1/NF-κB signaling axis

被引:37
作者
Baik, In Hye [1 ,2 ,3 ]
Jo, Guk-Heui [4 ]
Seo, Daekwan [5 ]
Ko, Min Ji [1 ]
Cho, Chi Heum [6 ]
Lee, Min Goo [2 ]
Lee, Yun-Han [1 ]
机构
[1] Keimyung Univ, Dept Mol Med, Sch Med, 1095 Dalgubeol Daero, Daegu 42601, South Korea
[2] Yonsei Univ, Dept Pharmacol, Coll Med, Seoul, South Korea
[3] Yonsei Univ, Brain Korea Project Med Sci 21, Coll Med, Seoul, South Korea
[4] Konyang Univ, Myunggok Eye Res Inst, Kims Eye Hosp, Coll Med, Seoul, South Korea
[5] Yonsei Univ, Brain Korea PLUS Project Med Sci 21, Coll Med, Severance Biomed Sci Inst, Seoul, South Korea
[6] Keimyung Univ, Dept Obstet & Gynecol, Sch Med, Daegu, South Korea
基金
新加坡国家研究基金会;
关键词
colorectal cancer; RPL9; RNA interference; extraribosomal function; Id-1; NF-kappa B; apoptosis; NF-KAPPA-B; PROMOTES CELL-SURVIVAL; LUNG-CANCER CELLS; RIBOSOMAL-PROTEINS; PROSTATE-CANCER; ID-1; PROTEIN; HUMAN BREAST; APOPTOSIS; OVEREXPRESSION; ACTIVATION;
D O I
10.3892/ijo.2016.3688
中图分类号
R73 [肿瘤学];
学科分类号
100214 ;
摘要
Ribosomal protein L9 (RPL9), a component of the 60S subunit for protein synthesis, is upregulated in human colorectal cancer. In the present study, we investigated whether RPL9 gained extraribosomal function during tumorigenesis and whether targeting of RPL9 with small interfering (si) RNA could alter the course of colorectal cancer progression. Our results showed that siRNA knockdown of RPL9 suppresses colorectal cancer (CRC) cell growth and long-term colony formation through an increase in sub-G1 cell population and a strong induction of apoptotic cell death. To obtain insights into the molecular changes in response to RPL9 knockdown, global changes in gene expression were examined using RNA sequencing. It revealed that RPL9-specific knockdown led to dysregulation of 918 genes in HCT116 and 3178 genes in HT29 cells. Among these, 296 genes showed same directional regulation (128 upregulated and 168 downregulated genes) and were considered as a common RPL9 knockdown signature. Particularly, we found through a network analysis that Id-1, which is functionally associated with activation of NF-kappa B and cell survival, was commonly downregulated. Subsequent western blot analysis affirmed that RPL9 silencing induced the decrease in the levels of Id-1 and phosphorylated I kappa B alpha in both HCT116 and HT29 cells. Also, the same condition decreased the levels of PARP-1 and pro-caspase-3, accelerating apoptosis. Furthermore, inhibition of RPL9 expression significantly suppressed the growth of human CRC xenografts in nude mice. These findings indicate that the function of RPL9 is correlated with Id-1/NF-kappa B signaling axis and suggest that targeting RPL9 could be an attractive option for molecular therapy of colorectal cancer.
引用
收藏
页码:1953 / 1962
页数:10
相关论文
共 34 条
[1]   The use of total protein stains as loading controls: An alternative to high-abundance single-protein controls in semi-quantitative immunoblotting [J].
Aldridge, Georgina M. ;
Podrebarac, David M. ;
Greenough, William T. ;
Weiler, Ivan Jeanne .
JOURNAL OF NEUROSCIENCE METHODS, 2008, 172 (02) :250-254
[2]   siRNA Knockdown of Ribosomal Protein Gene RPL19 Abrogates the Aggressive Phenotype of Human Prostate Cancer [J].
Bee, Alix ;
Brewer, Daniel ;
Beesley, Carol ;
Dodson, Andrew ;
Forootan, Shiva ;
Dickinson, Timothy ;
Gerard, Patricia ;
Lane, Brian ;
Yao, Sheng ;
Cooper, Colin S. ;
Djamgoz, Mustafa B. A. ;
Gosden, Christine M. ;
Ke, Youqiang ;
Foster, Christopher S. .
PLOS ONE, 2011, 6 (07)
[3]   Colon Cancer, Version 3.2014 [J].
Benson, Al B., III ;
Venook, Alan P. ;
Bekaii-Saab, Tanios ;
Chan, Emily ;
Chen, Yi-Jen ;
Cooper, Harry S. ;
Engstrom, Paul F. ;
Enzinger, Peter C. ;
Fenton, Moon J. ;
Fuchs, Charles S. ;
Grem, Jean L. ;
Hunt, Steven ;
Kamel, Ahmed ;
Leong, Lucille A. ;
Lin, Edward ;
Messersmith, Wells ;
Mulcahy, Mary F. ;
Murphy, James D. ;
Nurkin, Steven ;
Rohren, Eric ;
Ryan, David P. ;
Saltz, Leonard ;
Sharma, Sunil ;
Shibata, David ;
Skibber, John M. ;
Sofocleous, Constantinos T. ;
Stoffel, Elena M. ;
Stotsky-Himelfarb, Eden ;
Willett, Christopher G. ;
Gregory, Kristina M. ;
Freedman-Cass, Deborah A. .
JOURNAL OF THE NATIONAL COMPREHENSIVE CANCER NETWORK, 2014, 12 (07) :1028-1059
[4]   The Role of the Nuclear Lamina in Cancer and Apoptosis [J].
Broers, Jos L. V. ;
Ramaekers, Frans C. S. .
CANCER BIOLOGY AND THE NUCLEAR ENVELOPE: RECENT ADVANCES MAY ELUCIDATE PAST PARADOXES, 2014, 773 :27-48
[5]   The gene encoding ribosomal protein S19 is mutated in Diamond-Blackfan anaemia [J].
Draptchinskaia, N ;
Gustavsson, P ;
Andersson, B ;
Pettersson, M ;
Willig, TN ;
Dianzani, I ;
Ball, S ;
Tchernia, G ;
Klar, J ;
Matsson, H ;
Tentler, D ;
Mohandas, N ;
Carlsson, B ;
Dahl, N .
NATURE GENETICS, 1999, 21 (02) :169-175
[6]   Human ribosomal protein L9 is a Bax suppressor that promotes cell survival in yeast [J].
Eid, Rawan ;
Sheibani, Sara ;
Gharib, Nada ;
Lapointe, Jason F. ;
Horowitz, Avital ;
Vali, Hojatollah ;
Mandato, Craig A. ;
Greenwood, Michael T. .
FEMS YEAST RESEARCH, 2014, 14 (03) :495-507
[7]   HOMOLOGOUS RIBOSOMAL-PROTEIN GENES ON THE HUMAN X-CHROMOSOME AND Y-CHROMOSOME - ESCAPE FROM X-INACTIVATION AND POSSIBLE IMPLICATIONS FOR TURNER SYNDROME [J].
FISHER, EMC ;
BEERROMERO, P ;
BROWN, LG ;
RIDLEY, A ;
MCNEIL, JA ;
LAWRENCE, JB ;
WILLARD, HF ;
BIEBER, FR ;
PAGE, DC .
CELL, 1990, 63 (06) :1205-1218
[8]   Introduction to NF-κB:: players, pathways, perspectives [J].
Gilmore, T. D. .
ONCOGENE, 2006, 25 (51) :6680-6684
[9]   Nuclear lamins: building blocks of nuclear architecture [J].
Goldman, RD ;
Gruenbaum, Y ;
Moir, RD ;
Shumaker, DK ;
Spann, TP .
GENES & DEVELOPMENT, 2002, 16 (05) :533-547
[10]   Ribosomal protein L6 promotes growth and cell cycle progression through upregulating cyclin E in gastric cancer cells [J].
Gou, Yawen ;
Shi, Yongquan ;
Zhang, Yafei ;
Nie, Yongzhan ;
Wang, Jingbo ;
Song, Jiugang ;
Jin, Haifeng ;
He, Lijie ;
Gao, Liucun ;
Qiao, Lijuan ;
Wu, Kaichun ;
Fan, Daiming .
BIOCHEMICAL AND BIOPHYSICAL RESEARCH COMMUNICATIONS, 2010, 393 (04) :788-793