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Published in: Journal of Experimental & Clinical Cancer Research 1/2009

Open Access 01-12-2009 | Research

Subcellular localization of APMCF1 and its biological significance of expression pattern in normal and malignant human tissues

Authors: Yaqing Zhang, Qinlong Li, Feng Zhu, Jihong Cui, Kainan Li, Qing Li, Ruian Wang, Wenyong Wang, Weihua Wang, Wei Yan

Published in: Journal of Experimental & Clinical Cancer Research | Issue 1/2009

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Abstract

Background

APMCF1 is a novel human gene first cloned from apoptotic MCF-7 cells. Our previous study found ectogenic APMCF1 could induce G1 arrest in hepatocarcinoma cell line HHCC. In order to search its broad expression profile for further understanding of its mechanism in tumor, we investigated a subcellular location of APMCF1 and performed an immunohistochemistry study including various tumor and normal tissues. Discovery from the expression characterization of AMPCF1 may have applicability in the analysis of its biological function in tumor.

Methods

We investigated subcellular localization of APMCF1 by transient transfection in green monkey kidney epithelial cells (COS-7) with a fusion protein vector pEGFP-APMCF1 and detected expression profile in a broad range of normal and malignant human tissues via tissue microarray (TMA) by immunohistochemistry with polyclonal antibody first produced in our laboratory.

Results

EGFP-APMCF1 was generally localized in the cytoplasm of COS-7 cell. Positive staining of APMCF1 was found in liver, lung, breast, colon, stomach, esophagus and testis, exhibited a ubiquitous expression pattern while its expression was up-regulated in tumor tissues compared with corresponding normal tissues. Normal brain neuron cells also showed expression of APMCF1, but negative in gliocyte cells and glioma. Both the normal and tumor tissues of ovary were absent of APMCF1 expression. Positive immunostaining for APMCF1 with large samples in liver, colon, esophagus, lung and breast carcinomas were 96% (51/53), 80% (44/55), 57% (30/53), 58% (33/57) and 34% (16/47) respectively.

Conclusion

These results revealed a cytoplastic expression pattern of APMCF1 and up-regulated in tumour tissues suggesting APMCF1 may have potential relationship with oncogenesis. The data presented should serve as a useful reference for further studies of APMCF1 functions in tumorigenesis and might provide a potential anti-tumor target.
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Literature
1.
go back to reference Zhu F, Yan W, Zhao ZL, Chai YB, Lu F, Wang Q, Peng WD, Yang AG, Wang CJ: Improved PCR-based subtractive hybridization strategy for cloning differentially expressed genes. BioTechniques. 2000, 29 (2): 310-313. Zhu F, Yan W, Zhao ZL, Chai YB, Lu F, Wang Q, Peng WD, Yang AG, Wang CJ: Improved PCR-based subtractive hybridization strategy for cloning differentially expressed genes. BioTechniques. 2000, 29 (2): 310-313.
2.
go back to reference Yan W, Li Q, Zhu F, Zhao ZL: Improved PCR-based subtractive hybridization, a new strategy on cloning differential expression genes in apoptotic MCF-7 cells. J Cell Mol Immuno. 2001, 17 (1): 35-37. Yan W, Li Q, Zhu F, Zhao ZL: Improved PCR-based subtractive hybridization, a new strategy on cloning differential expression genes in apoptotic MCF-7 cells. J Cell Mol Immuno. 2001, 17 (1): 35-37.
3.
go back to reference Yan W, Wang WL, Zhu F, Chen SQ, Li QL, Wang L: Isolation of a novel member of small G protein superfamily and its expression in colon cancer. World J Gastroenterol. 2003, 9 (8): 1719-1724.CrossRef Yan W, Wang WL, Zhu F, Chen SQ, Li QL, Wang L: Isolation of a novel member of small G protein superfamily and its expression in colon cancer. World J Gastroenterol. 2003, 9 (8): 1719-1724.CrossRef
4.
go back to reference Li Q, Yan W, Cheng S, Guo S, Wang W, Zhang Z, Wang L, Zhang J, Wang W: Introduction of G1 phase arrest in Human Hepatocellular carcinoma cells (HHCC) by APMCF1 gene transfection through the down-regulation of TIMP3 and up-regulation of the CDK inhibitors p21. Molecular biology reports. 2006, 33 (4): 257-263.CrossRef Li Q, Yan W, Cheng S, Guo S, Wang W, Zhang Z, Wang L, Zhang J, Wang W: Introduction of G1 phase arrest in Human Hepatocellular carcinoma cells (HHCC) by APMCF1 gene transfection through the down-regulation of TIMP3 and up-regulation of the CDK inhibitors p21. Molecular biology reports. 2006, 33 (4): 257-263.CrossRef
5.
go back to reference Schlenker O, Hendricks A, Sinning I, Wild K: The structure of the mammalian signal recognition particle (SRP) receptor as prototype for the interaction of small GTPases with Longin domains. The Journal of biological chemistry. 2006, 281 (13): 8898-8906.CrossRef Schlenker O, Hendricks A, Sinning I, Wild K: The structure of the mammalian signal recognition particle (SRP) receptor as prototype for the interaction of small GTPases with Longin domains. The Journal of biological chemistry. 2006, 281 (13): 8898-8906.CrossRef
6.
go back to reference Lundquist EA: Small GTPases. WormBook. 2006, 1-18. Lundquist EA: Small GTPases. WormBook. 2006, 1-18.
7.
go back to reference Pochynyuk O, Stockand JD, Staruschenko A: Ion channel regulation by Ras, Rho, and Rab small GTPases. Exp Biol Med (Maywood). 2007, 232 (10): 1258-1265.CrossRef Pochynyuk O, Stockand JD, Staruschenko A: Ion channel regulation by Ras, Rho, and Rab small GTPases. Exp Biol Med (Maywood). 2007, 232 (10): 1258-1265.CrossRef
8.
go back to reference Paduch M, Jelen F, Otlewski J: Structure of small G proteins and their regulators. Acta biochimica Polonica. 2001, 48 (4): 829-850. Paduch M, Jelen F, Otlewski J: Structure of small G proteins and their regulators. Acta biochimica Polonica. 2001, 48 (4): 829-850.
9.
go back to reference Bar-Sagi D, Hall A: Ras and Rho GTPases: a family reunion. Cell. 2000, 103 (2): 227-238.CrossRef Bar-Sagi D, Hall A: Ras and Rho GTPases: a family reunion. Cell. 2000, 103 (2): 227-238.CrossRef
10.
go back to reference Li W, Chong H, Guan KL: Function of the Rho family GTPases in Ras-stimulated Raf activation. The Journal of biological chemistry. 2001, 276 (37): 34728-34737.CrossRef Li W, Chong H, Guan KL: Function of the Rho family GTPases in Ras-stimulated Raf activation. The Journal of biological chemistry. 2001, 276 (37): 34728-34737.CrossRef
11.
go back to reference Aznar S, Lacal JC: Searching new targets for anticancer drug design: the families of Ras and Rho GTPases and their effectors. Prog Nucleic Acid Res Mol Biol. 2001, 67: 193-234.CrossRef Aznar S, Lacal JC: Searching new targets for anticancer drug design: the families of Ras and Rho GTPases and their effectors. Prog Nucleic Acid Res Mol Biol. 2001, 67: 193-234.CrossRef
12.
go back to reference Takai Y, Sasaki T, Matozaki T: Small GTP-binding proteins. Physiological reviews. 2001, 81 (1): 153-208. Takai Y, Sasaki T, Matozaki T: Small GTP-binding proteins. Physiological reviews. 2001, 81 (1): 153-208.
13.
go back to reference Aznar S, Lacal JC: Rho signals to cell growth and apoptosis. Cancer letters. 2001, 165 (1): 1-10.CrossRef Aznar S, Lacal JC: Rho signals to cell growth and apoptosis. Cancer letters. 2001, 165 (1): 1-10.CrossRef
14.
go back to reference Lee KH, Kim SW, Kim JR: Reactive oxygen species regulate urokinase plasminogen activator expression and cell invasion via mitogen-activated protein kinase pathways after treatment with hepatocyte growth factor in stomach cancer cells. J Exp Clin Cancer Res. 2009, 28: 73-CrossRef Lee KH, Kim SW, Kim JR: Reactive oxygen species regulate urokinase plasminogen activator expression and cell invasion via mitogen-activated protein kinase pathways after treatment with hepatocyte growth factor in stomach cancer cells. J Exp Clin Cancer Res. 2009, 28: 73-CrossRef
15.
go back to reference Der CJ, Krontiris TG, Cooper GM: Transforming genes of human bladder and lung carcinoma cell lines are homologous to the ras genes of Harvey and Kirsten sarcoma viruses. Proceedings of the National Academy of Sciences of the United States of America. 1982, 79 (11): 3637-3640.CrossRef Der CJ, Krontiris TG, Cooper GM: Transforming genes of human bladder and lung carcinoma cell lines are homologous to the ras genes of Harvey and Kirsten sarcoma viruses. Proceedings of the National Academy of Sciences of the United States of America. 1982, 79 (11): 3637-3640.CrossRef
16.
go back to reference Murray MJ, Cunningham JM, Parada LF, Dautry F, Lebowitz P, Weinberg RA: The HL-60 transforming sequence: a ras oncogene coexisting with altered myc genes in hematopoietic tumors. Cell. 1983, 33 (3): 749-757.CrossRef Murray MJ, Cunningham JM, Parada LF, Dautry F, Lebowitz P, Weinberg RA: The HL-60 transforming sequence: a ras oncogene coexisting with altered myc genes in hematopoietic tumors. Cell. 1983, 33 (3): 749-757.CrossRef
17.
go back to reference Shimizu K, Goldfarb M, Perucho M, Wigler M: Isolation and preliminary characterization of the transforming gene of a human neuroblastoma cell line. Proceedings of the National Academy of Sciences of the United States of America. 1983, 80 (2): 383-387.CrossRef Shimizu K, Goldfarb M, Perucho M, Wigler M: Isolation and preliminary characterization of the transforming gene of a human neuroblastoma cell line. Proceedings of the National Academy of Sciences of the United States of America. 1983, 80 (2): 383-387.CrossRef
18.
go back to reference Vaidehi N, Floriano WB, Trabanino R, Hall SE, Freddolino P, Choi EJ, Zamanakos G, Goddard WA: Prediction of structure and function of G protein-coupled receptors. Proceedings of the National Academy of Sciences of the United States of America. 2002, 99 (20): 12622-12627.CrossRef Vaidehi N, Floriano WB, Trabanino R, Hall SE, Freddolino P, Choi EJ, Zamanakos G, Goddard WA: Prediction of structure and function of G protein-coupled receptors. Proceedings of the National Academy of Sciences of the United States of America. 2002, 99 (20): 12622-12627.CrossRef
19.
go back to reference Schwartz TU, Schmidt D, Brohawn SG, Blobel G: Homodimerization of the G protein SRbeta in the nucleotide-free state involves proline cis/trans isomerization in the switch II region. Proceedings of the National Academy of Sciences of the United States of America. 2006, 103 (18): 6823-6828.CrossRef Schwartz TU, Schmidt D, Brohawn SG, Blobel G: Homodimerization of the G protein SRbeta in the nucleotide-free state involves proline cis/trans isomerization in the switch II region. Proceedings of the National Academy of Sciences of the United States of America. 2006, 103 (18): 6823-6828.CrossRef
20.
go back to reference Bacher G, Lutcke H, Jungnickel B, Rapoport TA, Dobberstein B: Regulation by the ribosome of the GTPase of the signal-recognition particle during protein targeting. Nature. 1996, 381 (6579): 248-251.CrossRef Bacher G, Lutcke H, Jungnickel B, Rapoport TA, Dobberstein B: Regulation by the ribosome of the GTPase of the signal-recognition particle during protein targeting. Nature. 1996, 381 (6579): 248-251.CrossRef
21.
go back to reference Wild K, Weichenrieder O, Strub K, Sinning I, Cusack S: Towards the structure of the mammalian signal recognition particle. Current opinion in structural biology. 2002, 12 (1): 72-81.CrossRef Wild K, Weichenrieder O, Strub K, Sinning I, Cusack S: Towards the structure of the mammalian signal recognition particle. Current opinion in structural biology. 2002, 12 (1): 72-81.CrossRef
22.
go back to reference Legate KR, Andrews DW: The beta-subunit of the signal recognition particle receptor is a novel GTP-binding protein without intrinsic GTPase activity. The Journal of biological chemistry. 2003, 278 (30): 27712-27720.CrossRef Legate KR, Andrews DW: The beta-subunit of the signal recognition particle receptor is a novel GTP-binding protein without intrinsic GTPase activity. The Journal of biological chemistry. 2003, 278 (30): 27712-27720.CrossRef
23.
go back to reference Berchuck A, Iversen ES, Lancaster JM, Pittman J, Luo J, Lee P, Murphy S, Dressman HK, Febbo PG, West M, et al: Patterns of gene expression that characterize long-term survival in advanced stage serous ovarian cancers. Clin Cancer Res. 2005, 11 (10): 3686-3696.CrossRef Berchuck A, Iversen ES, Lancaster JM, Pittman J, Luo J, Lee P, Murphy S, Dressman HK, Febbo PG, West M, et al: Patterns of gene expression that characterize long-term survival in advanced stage serous ovarian cancers. Clin Cancer Res. 2005, 11 (10): 3686-3696.CrossRef
24.
go back to reference Rancano C, Rubio T, Correas I, Alonso MA: Genomic structure and subcellular localization of MAL, a human T-cell-specific proteolipid protein. The Journal of biological chemistry. 1994, 269 (11): 8159-8164. Rancano C, Rubio T, Correas I, Alonso MA: Genomic structure and subcellular localization of MAL, a human T-cell-specific proteolipid protein. The Journal of biological chemistry. 1994, 269 (11): 8159-8164.
25.
go back to reference Alonso MA, Millan J: The role of lipid rafts in signalling and membrane trafficking in T lymphocytes. Journal of cell science. 2001, 114 (Pt 22): 3957-3965. Alonso MA, Millan J: The role of lipid rafts in signalling and membrane trafficking in T lymphocytes. Journal of cell science. 2001, 114 (Pt 22): 3957-3965.
26.
go back to reference Schwartz DR, Kardia SL, Shedden KA, Kuick R, Michailidis G, Taylor JM, Misek DE, Wu R, Zhai Y, Darrah DM, et al: Gene expression in ovarian cancer reflects both morphology and biological behavior, distinguishing clear cell from other poor-prognosis ovarian carcinomas. Cancer research. 2002, 62 (16): 4722-4729. Schwartz DR, Kardia SL, Shedden KA, Kuick R, Michailidis G, Taylor JM, Misek DE, Wu R, Zhai Y, Darrah DM, et al: Gene expression in ovarian cancer reflects both morphology and biological behavior, distinguishing clear cell from other poor-prognosis ovarian carcinomas. Cancer research. 2002, 62 (16): 4722-4729.
Metadata
Title
Subcellular localization of APMCF1 and its biological significance of expression pattern in normal and malignant human tissues
Authors
Yaqing Zhang
Qinlong Li
Feng Zhu
Jihong Cui
Kainan Li
Qing Li
Ruian Wang
Wenyong Wang
Weihua Wang
Wei Yan
Publication date
01-12-2009
Publisher
BioMed Central
Published in
Journal of Experimental & Clinical Cancer Research / Issue 1/2009
Electronic ISSN: 1756-9966
DOI
https://doi.org/10.1186/1756-9966-28-111

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