Skip to main content
Top
Published in: Tumor Biology 12/2014

01-12-2014 | Research Article

HMGB1 promotes cellular proliferation and invasion, suppresses cellular apoptosis in osteosarcoma

Authors: Qingbing Meng, Jie Zhao, Hongbing Liu, Guoyou Zhou, Wensheng Zhang, Xingli Xu, Minqian Zheng

Published in: Tumor Biology | Issue 12/2014

Login to get access

Abstract

Osteosarcoma is the most common primary malignant bone tumor in children and adolescents. Unfortunately, treatment failures are common due to the metastasis and chemoresistance, but the underlying molecular mechanism remains unclear. Accumulating evidence indicated that the deregulation of DNA-binding protein high-mobility group box 1 (HMGB1) was associated with the development of cancer. This study aimed to explore the expression of HMGB1 in osteosarcoma tissues and its correlation to the clinical pathology of osteosarcoma and to discuss the role of HMGB1 in the development of osteosarcoma. The results from RT-PCR and Western blot showed that the expression rate of HMGB1 messenger RNA (mRNA) and the expression of HMGB1 in the osteosarcoma tissues were significantly higher than those in normal bone tissue (p < 0.05), the expression rate of HMGB1 mRNA and the expression of HMGB1 in the carcinoma tissues with positive lung metastasis were significantly higher than those without lung metastasis (p < 0.05), and with increasing Enneking stage, the expression rate of HMGB1 mRNA and the expression of HMGB1 also increased (p < 0.05). In order to explore the role of HMGB1 in osteosarcoma, the expression of HMGB1 in the human osteosarcoma MG-63 cell line was downregulated by the technique of RNA interference. Western blot results showed that the protein expression of HMGB1 was significantly decreased in the MG-63 cells from HMGB1-siRNA transfection group (p < 0.05), which suggested that HMGB1 was successfully downregulated in the MG-63 cells. Then the changes in proliferation, apoptosis, and invasion of MG-63 cells were examined by MTT test, PI staining, annexin V staining, and transwell chamber assay. Results showed that the abilities of proliferation and invasion were suppressed in HMGB1 knockdown MG-63 cells, and the abilities of apoptosis were enhanced in HMGB1 knockdown MG-63 cells. The expression of cyclin D1, MMP-9 was downregulated in HMGB1 knockdown MG-63 cells, and the expression of caspase-3 was upregulated in HMGB1 knockdown MG-63 cells. Taken together, the overexpression of HMGB1 in osteosarcoma might be related to the tumorigenesis, invasion, and metastasis of osteosarcoma, which might be a potential target for the treatment of osteosarcoma.
Literature
1.
go back to reference Li R, Liu J, Wu H, Liu L, Wang L, Zhang S. TIKI2 suppresses growth of osteosarcoma by targeting Wnt/β-catenin pathway. Mol Cell Biochem. 2014;392:109–16.CrossRef Li R, Liu J, Wu H, Liu L, Wang L, Zhang S. TIKI2 suppresses growth of osteosarcoma by targeting Wnt/β-catenin pathway. Mol Cell Biochem. 2014;392:109–16.CrossRef
2.
go back to reference PosthumaDeBoer J, Witlox MA, Kaspers GJ, van Royen BJ. Molecular alterations as target for therapy in metastatic osteosarcoma: a review of literature. Clin Exp Metastasis. 2011;28:493–503.CrossRef PosthumaDeBoer J, Witlox MA, Kaspers GJ, van Royen BJ. Molecular alterations as target for therapy in metastatic osteosarcoma: a review of literature. Clin Exp Metastasis. 2011;28:493–503.CrossRef
3.
go back to reference Bielack SS, Carrle D, Hardes J, Schuck A, Paulussen M. Bone tumors in adolescents and young adults. Curr Treat Options Oncol. 2008;9:67–80.CrossRef Bielack SS, Carrle D, Hardes J, Schuck A, Paulussen M. Bone tumors in adolescents and young adults. Curr Treat Options Oncol. 2008;9:67–80.CrossRef
4.
go back to reference Mirabello L, Troisi RJ, Savage SA. International osteosarcoma incidence patterns in children and adolescents, middle ages and elderly persons. Int J Cancer. 2009;125:229–34.CrossRef Mirabello L, Troisi RJ, Savage SA. International osteosarcoma incidence patterns in children and adolescents, middle ages and elderly persons. Int J Cancer. 2009;125:229–34.CrossRef
5.
go back to reference Mirabello L, Troisi RJ, Savage SA. Osteosarcoma incidence and survival rates from 1973 to 2004: data from the surveillance, epidemiology, and end results program. Cancer. 2009;115:1531–43.CrossRef Mirabello L, Troisi RJ, Savage SA. Osteosarcoma incidence and survival rates from 1973 to 2004: data from the surveillance, epidemiology, and end results program. Cancer. 2009;115:1531–43.CrossRef
6.
go back to reference He H, Ni J, Huang J. Molecular mechanisms of chemoresistance in osteosarcoma (review). Oncol Lett. 2014;7:1352–62.CrossRef He H, Ni J, Huang J. Molecular mechanisms of chemoresistance in osteosarcoma (review). Oncol Lett. 2014;7:1352–62.CrossRef
7.
go back to reference Chiappetta C, Leopizzi M, Censi F, Puggioni C, Petrozza V, Rocca CD, et al. Correlation of the Rac1/Rhoa pathway with ezrin expression in osteosarcoma. Appl Immunohistochem Mol Morphol. 2014;22:162–70.CrossRef Chiappetta C, Leopizzi M, Censi F, Puggioni C, Petrozza V, Rocca CD, et al. Correlation of the Rac1/Rhoa pathway with ezrin expression in osteosarcoma. Appl Immunohistochem Mol Morphol. 2014;22:162–70.CrossRef
8.
go back to reference Hou CH, Lin FL, Tong KB, Hou SM, Liu JF. Transforming growth factor alpha promotes osteosarcoma metastasis by ICAM-1 and PI3K/Akt signaling pathway. Biochem Pharmacol. 2014;89:453–63.CrossRef Hou CH, Lin FL, Tong KB, Hou SM, Liu JF. Transforming growth factor alpha promotes osteosarcoma metastasis by ICAM-1 and PI3K/Akt signaling pathway. Biochem Pharmacol. 2014;89:453–63.CrossRef
9.
go back to reference Shen A, Zhang Y, Yang H, Xu R, Huang G. Overexpression of ZEB1 relates to metastasis and invasion in osteosarcoma. J Surg Oncol. 2012;105:830–4.CrossRef Shen A, Zhang Y, Yang H, Xu R, Huang G. Overexpression of ZEB1 relates to metastasis and invasion in osteosarcoma. J Surg Oncol. 2012;105:830–4.CrossRef
10.
go back to reference Tumbar T, Guasch G, Greco V, Blanpain C, Lowry WE, Rendl M, et al. Defining the epithelial stem cell niche in skin. Science. 2004;303:359–63.CrossRef Tumbar T, Guasch G, Greco V, Blanpain C, Lowry WE, Rendl M, et al. Defining the epithelial stem cell niche in skin. Science. 2004;303:359–63.CrossRef
11.
go back to reference Spradling A, Drummond-Barbosa D, Kai T. Stem cells find their niche. Nature. 2001;414:98–104.CrossRef Spradling A, Drummond-Barbosa D, Kai T. Stem cells find their niche. Nature. 2001;414:98–104.CrossRef
12.
go back to reference Hu YH, Yang L, Zhang CG. HMGB1-a as potential target for therapy of hematological malignancies. Zhongguo shi yan xue ye xue za zhi. 2014;22:560–4.PubMed Hu YH, Yang L, Zhang CG. HMGB1-a as potential target for therapy of hematological malignancies. Zhongguo shi yan xue ye xue za zhi. 2014;22:560–4.PubMed
13.
go back to reference Srinivasan M, Banerjee S, Palmer A, Zheng G, Chen A, Bosland MC, et al. HMGB1 in hormone-related cancer: a potential therapeutic target. Horm Cancer. 2014;5:127–39.CrossRef Srinivasan M, Banerjee S, Palmer A, Zheng G, Chen A, Bosland MC, et al. HMGB1 in hormone-related cancer: a potential therapeutic target. Horm Cancer. 2014;5:127–39.CrossRef
14.
go back to reference Yildirim M, Suren D, Demirpence O, Kaya V, Alikanoglu AS, Bulbuller N, et al. The role of high mobility group box 1 (HMGB1) in colorectal cancer. Med Sci Monit. 2014;20:530–7.CrossRef Yildirim M, Suren D, Demirpence O, Kaya V, Alikanoglu AS, Bulbuller N, et al. The role of high mobility group box 1 (HMGB1) in colorectal cancer. Med Sci Monit. 2014;20:530–7.CrossRef
15.
go back to reference Xiao J, Ding Y, Huang J, Li Q, Liu Y, Ni W, et al. The association of HMGB1 gene with the prognosis of HCC. PLoS ONE. 2014;9:e89097.CrossRef Xiao J, Ding Y, Huang J, Li Q, Liu Y, Ni W, et al. The association of HMGB1 gene with the prognosis of HCC. PLoS ONE. 2014;9:e89097.CrossRef
16.
go back to reference Liu K, Huang J, Xie M, Yu Y, Zhu S, Kang R, et al. MIR34a regulates autophagy and apoptosis by targeting HMGB1 in the retinoblastoma cell. Autophagy. 2014;10:442–52.CrossRef Liu K, Huang J, Xie M, Yu Y, Zhu S, Kang R, et al. MIR34a regulates autophagy and apoptosis by targeting HMGB1 in the retinoblastoma cell. Autophagy. 2014;10:442–52.CrossRef
17.
go back to reference Jia L, Clear A, Liu FT, Matthews J, Uddin N, McCarthy A, et al. Extracellular HMGB1 promotes differentiation of nurse-like cells in chronic lymphocytic leukemia. Blood. 2014;123:1709–19.CrossRef Jia L, Clear A, Liu FT, Matthews J, Uddin N, McCarthy A, et al. Extracellular HMGB1 promotes differentiation of nurse-like cells in chronic lymphocytic leukemia. Blood. 2014;123:1709–19.CrossRef
18.
go back to reference Weng H, Deng Y, Xie Y, Liu H, Gong F. Expression and significance of HMGB1, TLR4 and NF-κB p65 in human epidermal tumors. BMC Cancer. 2013;13:311.CrossRef Weng H, Deng Y, Xie Y, Liu H, Gong F. Expression and significance of HMGB1, TLR4 and NF-κB p65 in human epidermal tumors. BMC Cancer. 2013;13:311.CrossRef
19.
go back to reference Moser B, Janik S, Schiefer AI, Mullauer L, Bekos C, Scharrer A, et al. Expression of rage and HMGB1 in thymic epithelial tumors, thymic hyperplasia and regular thymic morphology. PLoS ONE. 2014;9:e94118.CrossRef Moser B, Janik S, Schiefer AI, Mullauer L, Bekos C, Scharrer A, et al. Expression of rage and HMGB1 in thymic epithelial tumors, thymic hyperplasia and regular thymic morphology. PLoS ONE. 2014;9:e94118.CrossRef
20.
go back to reference Zhang J, Kou YB, Zhu JS, Chen WX, Li S. Knockdown of HMGB1 inhibits growth and invasion of gastric cancer cells through the NF-κB pathway in vitro and in vivo. Int J Oncol. 2014;44:1268–76.CrossRef Zhang J, Kou YB, Zhu JS, Chen WX, Li S. Knockdown of HMGB1 inhibits growth and invasion of gastric cancer cells through the NF-κB pathway in vitro and in vivo. Int J Oncol. 2014;44:1268–76.CrossRef
21.
go back to reference Srinivasan M, Banerjee S, Palmer A, Zheng G, Chen A, Bosland MC, et al. HMGB1 in hormone-related cancer: a potential therapeutic target. Horm Cancer. 2014;5(3):127–39. Srinivasan M, Banerjee S, Palmer A, Zheng G, Chen A, Bosland MC, et al. HMGB1 in hormone-related cancer: a potential therapeutic target. Horm Cancer. 2014;5(3):127–39.
22.
go back to reference Dong YD, Cui L, Peng CH, Cheng DF, Han BS, Huang F. Expression and clinical significance of HMGB1 in human liver cancer: knockdown inhibits tumor growth and metastasis in vitro and in vivo. Oncol Rep. 2013;29:87–94.CrossRef Dong YD, Cui L, Peng CH, Cheng DF, Han BS, Huang F. Expression and clinical significance of HMGB1 in human liver cancer: knockdown inhibits tumor growth and metastasis in vitro and in vivo. Oncol Rep. 2013;29:87–94.CrossRef
23.
go back to reference Liu Y, Xie CL, Qiu YZ, Tian YQ, Zhang X, Huang DH, et al. Expression of HMGB1 protein in laryngeal squamous cell carcinoma and its clinical significance. Zhonghua zhong liu za zhi. 2012;34:132–6.PubMed Liu Y, Xie CL, Qiu YZ, Tian YQ, Zhang X, Huang DH, et al. Expression of HMGB1 protein in laryngeal squamous cell carcinoma and its clinical significance. Zhonghua zhong liu za zhi. 2012;34:132–6.PubMed
24.
go back to reference Ko YB, Kim BR, Nam SL, Yang JB, Park SY, Rho SB. High-mobility group box 1 (HMGB1) protein regulates tumor-associated cell migration through the interaction with BTB domain. Cell Signal. 2014;26:777–83.CrossRef Ko YB, Kim BR, Nam SL, Yang JB, Park SY, Rho SB. High-mobility group box 1 (HMGB1) protein regulates tumor-associated cell migration through the interaction with BTB domain. Cell Signal. 2014;26:777–83.CrossRef
25.
go back to reference Chen J, Xi B, Zhao Y, Yu Y, Zhang J, Wang C. High-mobility group protein B1 (HMGB1) is a novel biomarker for human ovarian cancer. Gynecol Oncol. 2012;126:109–17.CrossRef Chen J, Xi B, Zhao Y, Yu Y, Zhang J, Wang C. High-mobility group protein B1 (HMGB1) is a novel biomarker for human ovarian cancer. Gynecol Oncol. 2012;126:109–17.CrossRef
26.
go back to reference Chen J, Liu X, Zhang J, Zhao Y. Targeting HMGB1 inhibits ovarian cancer growth and metastasis by lentivirus-mediated RNA interference. J Cell Physiol. 2012;227:3629–38.CrossRef Chen J, Liu X, Zhang J, Zhao Y. Targeting HMGB1 inhibits ovarian cancer growth and metastasis by lentivirus-mediated RNA interference. J Cell Physiol. 2012;227:3629–38.CrossRef
27.
go back to reference Yu Y, Xie M, Kang R, Livesey KM, Cao L, Tang D. HMGB1 is a therapeutic target for leukemia. Am J Blood Res. 2012;2:36–43.PubMedPubMedCentral Yu Y, Xie M, Kang R, Livesey KM, Cao L, Tang D. HMGB1 is a therapeutic target for leukemia. Am J Blood Res. 2012;2:36–43.PubMedPubMedCentral
28.
go back to reference Monga SP. Role and regulation of β-catenin signaling during physiological liver growth. Gene Expr. 2014;16:51–62.CrossRef Monga SP. Role and regulation of β-catenin signaling during physiological liver growth. Gene Expr. 2014;16:51–62.CrossRef
29.
go back to reference Mazumder S, Plesca D, Almasan A. Caspase-3 activation is a critical determinant of genotoxic stress-induced apoptosis. Methods Mol Biol. 2008;414:13–21.PubMed Mazumder S, Plesca D, Almasan A. Caspase-3 activation is a critical determinant of genotoxic stress-induced apoptosis. Methods Mol Biol. 2008;414:13–21.PubMed
30.
go back to reference Xu YB, Du QH, Zhang MY, Yun P, He CY. Propofol suppresses proliferation, invasion and angiogenesis by down-regulating ERK-VEGF/MMP-9 signaling in Eca-109 esophageal squamous cell carcinoma cells. Eur Rev Med Pharmacol Sci. 2013;17:2486–94.PubMed Xu YB, Du QH, Zhang MY, Yun P, He CY. Propofol suppresses proliferation, invasion and angiogenesis by down-regulating ERK-VEGF/MMP-9 signaling in Eca-109 esophageal squamous cell carcinoma cells. Eur Rev Med Pharmacol Sci. 2013;17:2486–94.PubMed
31.
go back to reference Cock-Rada AM, Medjkane S, Janski N, Yousfi N, Perichon M, Chaussepied M, et al. SMYD3 promotes cancer invasion by epigenetic upregulation of the metalloproteinase MMP-9. Cancer Res. 2012;72:810–20.CrossRef Cock-Rada AM, Medjkane S, Janski N, Yousfi N, Perichon M, Chaussepied M, et al. SMYD3 promotes cancer invasion by epigenetic upregulation of the metalloproteinase MMP-9. Cancer Res. 2012;72:810–20.CrossRef
32.
go back to reference Zwaga T, Bovee JV, Kroon HM. Osteosarcoma of the femur with skip, lymph node, and lung metastases. Radiographics. 2008;28:277–83.CrossRef Zwaga T, Bovee JV, Kroon HM. Osteosarcoma of the femur with skip, lymph node, and lung metastases. Radiographics. 2008;28:277–83.CrossRef
33.
go back to reference Gatla HR, Singha B, Persaud V, Vancurova I. Evaluating cytoplasmic and nuclear levels of inflammatory cytokines in cancer cells by Western blotting. Methods Mol Biol. 2014;1172:271–83.CrossRef Gatla HR, Singha B, Persaud V, Vancurova I. Evaluating cytoplasmic and nuclear levels of inflammatory cytokines in cancer cells by Western blotting. Methods Mol Biol. 2014;1172:271–83.CrossRef
34.
go back to reference Zhang P, Liu Y, Wu ZH, Chen J, Chen G, Zhou QH. Effects of high mobility group box-1 silencing upon the invasion and proliferation in human lung cancer cell L9981 by RNA inhibition. Zhonghua yi xue za zhi. 2009;89:3156–9.PubMed Zhang P, Liu Y, Wu ZH, Chen J, Chen G, Zhou QH. Effects of high mobility group box-1 silencing upon the invasion and proliferation in human lung cancer cell L9981 by RNA inhibition. Zhonghua yi xue za zhi. 2009;89:3156–9.PubMed
35.
go back to reference Yin Y, Li W, Deng M, Zhang P, Shen Q, Wang G, et al. Extracellular high mobility group box chromosomal protein 1 promotes drug resistance by increasing the expression of P-glycoprotein expression in gastric adenocarcinoma cells. Mol Med Rep. 2014;9:1439–43.CrossRef Yin Y, Li W, Deng M, Zhang P, Shen Q, Wang G, et al. Extracellular high mobility group box chromosomal protein 1 promotes drug resistance by increasing the expression of P-glycoprotein expression in gastric adenocarcinoma cells. Mol Med Rep. 2014;9:1439–43.CrossRef
36.
go back to reference Song B, Song WG, Li ZJ, Xu ZF, Wang XW, Wang CX, et al. Effect of HMGB1 silencing on cell proliferation, invasion and apoptosis of MGC-803 gastric cancer cells. Cell Biochem Funct. 2011. doi: 10.1002/cbf.1811. Song B, Song WG, Li ZJ, Xu ZF, Wang XW, Wang CX, et al. Effect of HMGB1 silencing on cell proliferation, invasion and apoptosis of MGC-803 gastric cancer cells. Cell Biochem Funct. 2011. doi: 10.​1002/​cbf.​1811.
37.
go back to reference Gnanasekar M, Thirugnanam S, Ramaswamy K. Short hairpin RNA (shRNA) constructs targeting high mobility group box-1 (HMBG1) expression leads to inhibition of prostate cancer cell survival and apoptosis. Int J Oncol. 2009;34:425–31.PubMed Gnanasekar M, Thirugnanam S, Ramaswamy K. Short hairpin RNA (shRNA) constructs targeting high mobility group box-1 (HMBG1) expression leads to inhibition of prostate cancer cell survival and apoptosis. Int J Oncol. 2009;34:425–31.PubMed
38.
go back to reference Yu Y, Xie M, He YL, Xu WQ, Zhu S, Cao LZ. Role of high mobility group box 1 in adriamycin-induced apoptosis in leukemia K562 cells. Ai zheng. 2008;27:929–33.PubMed Yu Y, Xie M, He YL, Xu WQ, Zhu S, Cao LZ. Role of high mobility group box 1 in adriamycin-induced apoptosis in leukemia K562 cells. Ai zheng. 2008;27:929–33.PubMed
39.
go back to reference Suren D, Yildirim M, Demirpence O, Kaya V, Alikanoglu AS, Bulbuller N, et al. The role of high mobility group box 1 (HMGB1) in colorectal cancer. Med Sci Monit. 2014;20:530–7.CrossRef Suren D, Yildirim M, Demirpence O, Kaya V, Alikanoglu AS, Bulbuller N, et al. The role of high mobility group box 1 (HMGB1) in colorectal cancer. Med Sci Monit. 2014;20:530–7.CrossRef
40.
go back to reference Chen RC, Yi PP, Zhou RR, Xiao MF, Huang ZB, Tang DL, et al. The role of HMGB1-rage axis in migration and invasion of hepatocellular carcinoma cell lines. Mol Cell Biochem. 2014;390:271–80.CrossRef Chen RC, Yi PP, Zhou RR, Xiao MF, Huang ZB, Tang DL, et al. The role of HMGB1-rage axis in migration and invasion of hepatocellular carcinoma cell lines. Mol Cell Biochem. 2014;390:271–80.CrossRef
41.
go back to reference Li ZJ, Song B, Liu J, Han JJ, Wang CX, Zhu YX, et al. Inhibitory effect of silencing of HMGB1 gene expression on the invasive and metastatic abilities of MGC-803 gastric cancer cells. Zhonghua zhong liu za zhi. 2013;35:244–8.PubMed Li ZJ, Song B, Liu J, Han JJ, Wang CX, Zhu YX, et al. Inhibitory effect of silencing of HMGB1 gene expression on the invasive and metastatic abilities of MGC-803 gastric cancer cells. Zhonghua zhong liu za zhi. 2013;35:244–8.PubMed
Metadata
Title
HMGB1 promotes cellular proliferation and invasion, suppresses cellular apoptosis in osteosarcoma
Authors
Qingbing Meng
Jie Zhao
Hongbing Liu
Guoyou Zhou
Wensheng Zhang
Xingli Xu
Minqian Zheng
Publication date
01-12-2014
Publisher
Springer Netherlands
Published in
Tumor Biology / Issue 12/2014
Print ISSN: 1010-4283
Electronic ISSN: 1423-0380
DOI
https://doi.org/10.1007/s13277-014-2535-3

Other articles of this Issue 12/2014

Tumor Biology 12/2014 Go to the issue
Webinar | 19-02-2024 | 17:30 (CET)

Keynote webinar | Spotlight on antibody–drug conjugates in cancer

Antibody–drug conjugates (ADCs) are novel agents that have shown promise across multiple tumor types. Explore the current landscape of ADCs in breast and lung cancer with our experts, and gain insights into the mechanism of action, key clinical trials data, existing challenges, and future directions.

Dr. Véronique Diéras
Prof. Fabrice Barlesi
Developed by: Springer Medicine