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Published in: Cancer Cell International 1/2017

Open Access 01-12-2017 | Primary Research

Microencapsulation of low-passage poorly-differentiated human mucoepidermoid carcinoma cells by alginate microcapsules: in vitro profiling of angiogenesis-related molecules

Authors: Sen Yang, Li-Juan Guo

Published in: Cancer Cell International | Issue 1/2017

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Abstract

Background

Human mucoepidermoid carcinoma (MEC) is regarded as the most common primary salivary malignancy. High-grade MEC has a high risk of recurrence and poor prognosis. Tumor angiogenesis, induced by poorly differentiated cancer cells of high-grade MEC, contributes to tumor growth and metastasis. Therefore, elucidating molecular mechanisms underlying the pro-angiogenic ability of poorly differentiated MEC cells is critical for the understanding of high-grade MEC progression. It is well known that three-dimensional (3D) cell culture, in contrast with conventional two-dimensional (2D) culture, provides a better approach to in vitro recapitulation of in vivo characteristics of cancer cells and their surrounding microenvironment. The purpose of this study was to model a 3D environment for in vitro gene expression profiling of key molecules in poorly differentiated MEC cells for cancer neovascularization and compared them with traditional 2D cell culture.

Methods

Low-passage poorly differentiated MEC cells, derived from human patient samples of high-grade MEC, were microencapsulated in sodium alginate gel microcapsules (3D culture) and compared with cells grown in 2D culture. Cancer cell proliferation was determined by MTT assays for 1 week, and gene expression of VEGF-A, bFGF and TSP-1 was analyzed by western blotting or ELISA. The hypoxic environment in 3D versus 2D culture were assessed by western blotting or immunofluorescence for HIF1α, and the effect of hypoxia on VEGF-A gene expression in 3D cultured cancer cells was assessed by western blotting with the use of the HIF1α inhibitor, 2-methoxyestradiol (2-MeOE2).

Results

When encapsulated in alginate gel microcapsules, low-passage poorly differentiated human MEC cells grew in blocks and demonstrated stronger and relatively unlimited proliferation activities. Moreover, significant differences were found in gene expression, with 3D-grown cancer cells a significant increment of VEGF-A and bFGF and a drastic reduction of TSP-1. Consistently, 3D-grown cancer cells secreted significantly more VEGF-A than 2D culture cancer cells. Furthermore, 3D-grown cancer cells showed significantly higher expression of HIF1α, a molecular indicator of hypoxia; the increased expression of VEGF-A in 3D cultured cancer cells was shown to be dependent on the HIF1α activities.

Conclusions

The present work shows the effects of 3D culture model by alginate microencapsulation on the proangiogenic potentials of low-passage poorly differentiated human MEC cells. Cancer cells in this 3D system demonstrate significant intensification of key molecular processes for tumor angiogenesis. This is due to a better modeling of the hypoxic tumor microenvironment during 3D culture.
Literature
1.
go back to reference Coca-Pelaz A, Rodrigo JP, Triantafyllou A, Hunt JL, Rinaldo A, Strojan P, et al. Salivary mucoepidermoid carcinoma revisited. Eur Arch Otorhinolaryngol. 2015;272(4):799–819.CrossRefPubMed Coca-Pelaz A, Rodrigo JP, Triantafyllou A, Hunt JL, Rinaldo A, Strojan P, et al. Salivary mucoepidermoid carcinoma revisited. Eur Arch Otorhinolaryngol. 2015;272(4):799–819.CrossRefPubMed
2.
3.
go back to reference Wang K, McDermott JD, Schrock AB, Elvin JA, Gay L, Karam SD, et al. Comprehensive genomic profiling of salivary mucoepidermoid carcinomas reveals frequent BAP1, PIK3CA, and other actionable genomic alterations. Ann Oncol. 2017;28(4):748–53.CrossRefPubMed Wang K, McDermott JD, Schrock AB, Elvin JA, Gay L, Karam SD, et al. Comprehensive genomic profiling of salivary mucoepidermoid carcinomas reveals frequent BAP1, PIK3CA, and other actionable genomic alterations. Ann Oncol. 2017;28(4):748–53.CrossRefPubMed
4.
5.
go back to reference Yang S, Guo LJ, Gao QH, Xuan M, Tan K, Zhang Q, et al. Derived vascular endothelial cells induced by mucoepidermoid carcinoma cells: 3-dimensional collagen matrix model. J Zhejiang Univ Sci B. 2010;11(10):745–53.CrossRefPubMedPubMedCentral Yang S, Guo LJ, Gao QH, Xuan M, Tan K, Zhang Q, et al. Derived vascular endothelial cells induced by mucoepidermoid carcinoma cells: 3-dimensional collagen matrix model. J Zhejiang Univ Sci B. 2010;11(10):745–53.CrossRefPubMedPubMedCentral
6.
go back to reference Yang S, Wang XY, Guo LJ, Tang XF, Gao QH, Xuan M, et al. Correlation between the expression of thrombospondin-1 and neovascularization in mucoepidermoid carcinoma. Chin Med J (Engl). 2008;121(19):1875–81. Yang S, Wang XY, Guo LJ, Tang XF, Gao QH, Xuan M, et al. Correlation between the expression of thrombospondin-1 and neovascularization in mucoepidermoid carcinoma. Chin Med J (Engl). 2008;121(19):1875–81.
7.
go back to reference Yang S, Guo LJ, Tang XF, Tan K, Gong RG, Li A, et al. The alteration of Id-1 and TSP-1 expression in mucoepidermoid carcinoma associated with its clinical features and prognosis. Int J Oral Maxillofac Surg. 2010;39(1):29–35.CrossRefPubMed Yang S, Guo LJ, Tang XF, Tan K, Gong RG, Li A, et al. The alteration of Id-1 and TSP-1 expression in mucoepidermoid carcinoma associated with its clinical features and prognosis. Int J Oral Maxillofac Surg. 2010;39(1):29–35.CrossRefPubMed
8.
go back to reference Volpert OV, Pili R, Sikder HA, Nelius T, Zaichuk T, Morris C, et al. Id1 regulates angiogenesis through transcriptional repression of thrombospondin-1. Cancer Cell. 2002;2(6):473–83.CrossRefPubMed Volpert OV, Pili R, Sikder HA, Nelius T, Zaichuk T, Morris C, et al. Id1 regulates angiogenesis through transcriptional repression of thrombospondin-1. Cancer Cell. 2002;2(6):473–83.CrossRefPubMed
9.
go back to reference Choi SY, Lin D, Gout PW, Collins CC, Xu Y, Wang Y. Lessons from patient-derived xenografts for better in vitro modeling of human cancer. Adv Drug Deliv Rev. 2014;79–80:222–37.CrossRefPubMed Choi SY, Lin D, Gout PW, Collins CC, Xu Y, Wang Y. Lessons from patient-derived xenografts for better in vitro modeling of human cancer. Adv Drug Deliv Rev. 2014;79–80:222–37.CrossRefPubMed
10.
go back to reference Ray S, Langan RC, Mullinax JE, Koizumi T, Xin HW, Wiegand GW, et al. Establishment of human ultra-low passage colorectal cancer cell lines using spheroids from fresh surgical specimens suitable for in vitro and in vivo studies. J Cancer. 2012;3:196–206.CrossRefPubMedPubMedCentral Ray S, Langan RC, Mullinax JE, Koizumi T, Xin HW, Wiegand GW, et al. Establishment of human ultra-low passage colorectal cancer cell lines using spheroids from fresh surgical specimens suitable for in vitro and in vivo studies. J Cancer. 2012;3:196–206.CrossRefPubMedPubMedCentral
11.
12.
go back to reference Barnes L, Eveson JW. Pathology and genetics of head and neck tumors. Lyon: IARC Press; 2005. p. 219–20. Barnes L, Eveson JW. Pathology and genetics of head and neck tumors. Lyon: IARC Press; 2005. p. 219–20.
13.
go back to reference Sánchez P, Hernández RM, Pedraz JL, Orive G. Encapsulation of cells in alginate gels. Methods Mol Biol. 2013;1051:313–25.CrossRefPubMed Sánchez P, Hernández RM, Pedraz JL, Orive G. Encapsulation of cells in alginate gels. Methods Mol Biol. 2013;1051:313–25.CrossRefPubMed
14.
go back to reference Xu XX, Liu C, Liu Y, Li N, Guo X, Wang SJ, et al. Encapsulated human hepatocellular carcinoma cells by alginate gel beads as an in vitro metastasis model. Exp Cell Res. 2013;319(14):2135–44.CrossRefPubMed Xu XX, Liu C, Liu Y, Li N, Guo X, Wang SJ, et al. Encapsulated human hepatocellular carcinoma cells by alginate gel beads as an in vitro metastasis model. Exp Cell Res. 2013;319(14):2135–44.CrossRefPubMed
15.
go back to reference Estrada MF, Rebelo SP, Davies EJ, Pinto MT, Pereira H, Santo VE, et al. Modelling the tumour microenvironment in long-term microencapsulated 3D co-cultures recapitulates phenotypic features of disease progression. Biomaterials. 2016;78:50–61.CrossRefPubMed Estrada MF, Rebelo SP, Davies EJ, Pinto MT, Pereira H, Santo VE, et al. Modelling the tumour microenvironment in long-term microencapsulated 3D co-cultures recapitulates phenotypic features of disease progression. Biomaterials. 2016;78:50–61.CrossRefPubMed
16.
go back to reference Lim F, Sun AM. Microencapsulated islets as bioartificial endocrine pancreas. Science. 1980;210(4472):908–10.CrossRefPubMed Lim F, Sun AM. Microencapsulated islets as bioartificial endocrine pancreas. Science. 1980;210(4472):908–10.CrossRefPubMed
17.
go back to reference Orive G, Hernández RM, Gascón AR, Calafiore R, Chang TM, De Vos P, et al. Cell encapsulation: promise and progress. Nat Med. 2003;9(1):104–7.CrossRefPubMed Orive G, Hernández RM, Gascón AR, Calafiore R, Chang TM, De Vos P, et al. Cell encapsulation: promise and progress. Nat Med. 2003;9(1):104–7.CrossRefPubMed
18.
go back to reference Wang Q, Li S, Xie Y, Yu W, Xiong Y, Ma X, et al. Cytoskeletal reorganization and repolarization of hepatocarcinoma cells in APA microcapsule to mimic native tumor characteristics. Hepatol Res. 2006;35(2):96–103.CrossRefPubMed Wang Q, Li S, Xie Y, Yu W, Xiong Y, Ma X, et al. Cytoskeletal reorganization and repolarization of hepatocarcinoma cells in APA microcapsule to mimic native tumor characteristics. Hepatol Res. 2006;35(2):96–103.CrossRefPubMed
19.
go back to reference Leal-Egaña A, Fritsch A, Heidebrecht F, Díaz-Cuenca A, Nowicki M, Bader A, et al. Tuning liver stiffness against tumours: an in vitro study using entrapped cells in tumour-like microcapsules. J Mech Behav Biomed Mater. 2012;9:113–21.CrossRefPubMed Leal-Egaña A, Fritsch A, Heidebrecht F, Díaz-Cuenca A, Nowicki M, Bader A, et al. Tuning liver stiffness against tumours: an in vitro study using entrapped cells in tumour-like microcapsules. J Mech Behav Biomed Mater. 2012;9:113–21.CrossRefPubMed
22.
23.
go back to reference Zhang L, Li L, Wang Y, Liu Y, Li C. MC3 Mucoepidermoid carcinoma cell line enriched cancer stem-like cells following chemotherapy. Oncol Lett. 2014;7(5):1569–75.PubMedPubMedCentral Zhang L, Li L, Wang Y, Liu Y, Li C. MC3 Mucoepidermoid carcinoma cell line enriched cancer stem-like cells following chemotherapy. Oncol Lett. 2014;7(5):1569–75.PubMedPubMedCentral
24.
go back to reference Wang J, Chen J, Zhang K, Zhao Y, Nör JE, Wu J. TGF-β1 regulates the invasive and metastatic potential of mucoepidermoid carcinoma cells. J Oral Pathol Med. 2011;40(10):762–8.CrossRefPubMedPubMedCentral Wang J, Chen J, Zhang K, Zhao Y, Nör JE, Wu J. TGF-β1 regulates the invasive and metastatic potential of mucoepidermoid carcinoma cells. J Oral Pathol Med. 2011;40(10):762–8.CrossRefPubMedPubMedCentral
25.
go back to reference Warner KA, Adams A, Bernardi L, Nor C, Finkel KA, Zhang Z, et al. Characterization of tumorigenic cell lines from the recurrence and lymph node metastasis of a human salivary mucoepidermoid carcinoma. Oral Oncol. 2013;49(11):1059–66.CrossRefPubMed Warner KA, Adams A, Bernardi L, Nor C, Finkel KA, Zhang Z, et al. Characterization of tumorigenic cell lines from the recurrence and lymph node metastasis of a human salivary mucoepidermoid carcinoma. Oral Oncol. 2013;49(11):1059–66.CrossRefPubMed
26.
go back to reference Gillet JP, Calcagno AM, Varma S, Marino M, Green LJ, Vora MI, et al. Redefining the relevance of established cancer cell lines to the study of mechanisms of clinical anti-cancer drug resistance. Proc Natl Acad Sci USA. 2011;108(46):18708–13.CrossRefPubMedPubMedCentral Gillet JP, Calcagno AM, Varma S, Marino M, Green LJ, Vora MI, et al. Redefining the relevance of established cancer cell lines to the study of mechanisms of clinical anti-cancer drug resistance. Proc Natl Acad Sci USA. 2011;108(46):18708–13.CrossRefPubMedPubMedCentral
28.
go back to reference Boot A, van Eendenburg J, Crobach S, Ruano D, Speetjens F, Calame J, et al. Characterization of novel low passage primary and metastatic colorectal cancer cell lines. Oncotarget. 2016;7(12):14499–509.CrossRefPubMedPubMedCentral Boot A, van Eendenburg J, Crobach S, Ruano D, Speetjens F, Calame J, et al. Characterization of novel low passage primary and metastatic colorectal cancer cell lines. Oncotarget. 2016;7(12):14499–509.CrossRefPubMedPubMedCentral
30.
go back to reference Bray LJ, Binner M, Holzheu A, Friedrichs J, Freudenberg U, Hutmacher DW, et al. Multi-parametric hydrogels support 3D in vitro bioengineered microenvironment models of tumour angiogenesis. Biomaterials. 2015;53:609–20.CrossRefPubMed Bray LJ, Binner M, Holzheu A, Friedrichs J, Freudenberg U, Hutmacher DW, et al. Multi-parametric hydrogels support 3D in vitro bioengineered microenvironment models of tumour angiogenesis. Biomaterials. 2015;53:609–20.CrossRefPubMed
31.
go back to reference Rokstad AM, Gustafsson BI, Espevik T, Bakke I, Pfragner R, Svejda B, et al. Microencapsulation of small intestinal neuroendocrine neoplasm cells for tumor model studies. Cancer Sci. 2012;103(7):1230–7.CrossRefPubMedPubMedCentral Rokstad AM, Gustafsson BI, Espevik T, Bakke I, Pfragner R, Svejda B, et al. Microencapsulation of small intestinal neuroendocrine neoplasm cells for tumor model studies. Cancer Sci. 2012;103(7):1230–7.CrossRefPubMedPubMedCentral
Metadata
Title
Microencapsulation of low-passage poorly-differentiated human mucoepidermoid carcinoma cells by alginate microcapsules: in vitro profiling of angiogenesis-related molecules
Authors
Sen Yang
Li-Juan Guo
Publication date
01-12-2017
Publisher
BioMed Central
Published in
Cancer Cell International / Issue 1/2017
Electronic ISSN: 1475-2867
DOI
https://doi.org/10.1186/s12935-017-0479-6

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