Literature DB >> 22294829

Microencapsulated tumor assay: evaluation of the nude mouse model of pancreatic cancer.

Ming-Zhe Ma1, Dong-Feng Cheng, Jin-Hua Ye, Yong Zhou, Jia-Xiang Wang, Min-Min Shi, Bao-San Han, Cheng-Hong Peng.   

Abstract

AIM: To establish a more stable and accurate nude mouse model of pancreatic cancer using cancer cell microencapsulation.
METHODS: The assay is based on microencapsulation technology, wherein human tumor cells are encapsulated in small microcapsules (approximately 420 μm in diameter) constructed of semipermeable membranes. We implemented two kinds of subcutaneous implantation models in nude mice using the injection of single tumor cells and encapsulated pancreatic tumor cells. The size of subcutaneously implanted tumors was observed on a weekly basis using two methods, and growth curves were generated from these data. The growth and metastasis of orthotopically injected single tumor cells and encapsulated pancreatic tumor cells were evaluated at four and eight weeks postimplantation by positron emission tomography-computed tomography scan and necropsy. The pancreatic tumor samples obtained from each method were then sent for pathological examination. We evaluated differences in the rates of tumor incidence and the presence of metastasis and variations in tumor volume and tumor weight in the cancer microcapsules vs single-cell suspensions.
RESULTS: Sequential in vitro observations of the microcapsules showed that the cancer cells in microcapsules proliferated well and formed spheroids at days 4 to 6. Further in vitro culture resulted in bursting of the membrane of the microcapsules and cells deviated outward and continued to grow in flasks. The optimum injection time was found to be 5 d after tumor encapsulation. In the subcutaneous implantation model, there were no significant differences in terms of tumor volume between the encapsulated pancreatic tumor cells and cells alone and rate of tumor incidence. There was a significant difference in the rate of successful implantation between the cancer cell microencapsulation group and the single tumor-cell suspension group (100% vs 71.43%, respectively, P = 0.0489) in the orthotropic implantation model. The former method displayed an obvious advantage in tumor mass (4th wk: 0.0461 ± 0.0399 vs 0.0313 ± 0.021, t = -0.81, P = 0.4379; 8th wk: 0.1284 ± 0.0284 vs 0.0943 ± 0.0571, t = -2.28, respectively, P = 0.0457) compared with the latter in the orthotopic implantation model.
CONCLUSION: Encapsulation of pancreatic tumor cells is a reliable method for establishing a pancreatic tumor animal model.

Entities:  

Keywords:  Encapsulation; Model of pancreatic neoplasms; Nude mice; Orthotopic implantation model; Subcutaneous implantation model

Mesh:

Year:  2012        PMID: 22294829      PMCID: PMC3261543          DOI: 10.3748/wjg.v17.i3.257

Source DB:  PubMed          Journal:  World J Gastroenterol        ISSN: 1007-9327            Impact factor:   5.742


  28 in total

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Authors:  F M Marincola; L F Da Pozzo; B J Drucker; W D Holder
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5.  Microencapsulated tumor assay: new short-term assay for in vivo evaluation of the effects of anticancer drugs on human tumor cell lines.

Authors:  E Gorelik; A Ovejera; R Shoemaker; A Jarvis; M Alley; R Duff; J Mayo; R Herberman; M Boyd
Journal:  Cancer Res       Date:  1987-11-01       Impact factor: 12.701

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7.  Twenty-three new human tumor lines established in nude mice.

Authors:  J Fogh; T Orfeo; J Tiso; F E Sharkey; J M Fogh; W P Daniels
Journal:  Exp Cell Biol       Date:  1980

8.  An imageable highly metastatic orthotopic red fluorescent protein model of pancreatic cancer.

Authors:  Matthew H Katz; Shinako Takimoto; Daniel Spivack; A R Moossa; Robert M Hoffman; Michael Bouvet
Journal:  Clin Exp Metastasis       Date:  2004       Impact factor: 5.150

9.  Orthotopic transplantation models of pancreatic adenocarcinoma derived from cell lines and primary tumors and displaying varying metastatic activity.

Authors:  Panayiotis Loukopoulos; Kengo Kanetaka; Masaaki Takamura; Tatsuhiro Shibata; Michiie Sakamoto; Setsuo Hirohashi
Journal:  Pancreas       Date:  2004-10       Impact factor: 3.327

10.  Characterization of the tumorigenic and metastatic properties of a human pancreatic tumor cell line (AsPC-1) implanted orthotopically into nude mice.

Authors:  M H Tan; T M Chu
Journal:  Tumour Biol       Date:  1985
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3.  Establishment of a Model of Microencapsulated SGC7901 Human Gastric Carcinoma Cells Cocultured with Tumor-Associated Macrophages.

Authors:  Jin-Ming Zhu; Xiu-Lian Quan; Shi-Chao Han; Xue-Jun Fan; He-Ming Li; Shan-Shan Liang; Xi Chen; Ruo-Yu Wang; Xue-Ning Ji
Journal:  Can J Gastroenterol Hepatol       Date:  2018-04-02

Review 4.  Microencapsulation for the Therapeutic Delivery of Drugs, Live Mammalian and Bacterial Cells, and Other Biopharmaceutics: Current Status and Future Directions.

Authors:  Catherine Tomaro-Duchesneau; Shyamali Saha; Meenakshi Malhotra; Imen Kahouli; Satya Prakash
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  4 in total

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