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KLF8 and FAK cooperatively enrich the active MMP14 on the cell surface required for the metastatic progression of breast cancer

Krüppel-like factor 8 (KLF8) regulates critical gene transcription associated with cancer. The underlying mechanisms, however, remain largely unidentified. We have recently demonstrated that KLF8 expression enhances the activity but not expression of matrix metalloproteinase-2 (MMP2), the target sub...

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Autores principales: Lu, Heng, Hu, Liu, Yu, Lin, Wang, Xianhui, Urvalek, Alison M., Li, Tianshu, Shen, Chao, Mukherjee, Debarati, Lahiri, Satadru K., Wason, Melissa S., Zhao, Jihe
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3929536/
https://www.ncbi.nlm.nih.gov/pubmed/23812425
http://dx.doi.org/10.1038/onc.2013.247
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author Lu, Heng
Hu, Liu
Yu, Lin
Wang, Xianhui
Urvalek, Alison M.
Li, Tianshu
Shen, Chao
Mukherjee, Debarati
Lahiri, Satadru K.
Wason, Melissa S.
Zhao, Jihe
author_facet Lu, Heng
Hu, Liu
Yu, Lin
Wang, Xianhui
Urvalek, Alison M.
Li, Tianshu
Shen, Chao
Mukherjee, Debarati
Lahiri, Satadru K.
Wason, Melissa S.
Zhao, Jihe
author_sort Lu, Heng
collection PubMed
description Krüppel-like factor 8 (KLF8) regulates critical gene transcription associated with cancer. The underlying mechanisms, however, remain largely unidentified. We have recently demonstrated that KLF8 expression enhances the activity but not expression of matrix metalloproteinase-2 (MMP2), the target substrate of MMP14. Here, we report a novel KLF8 to MMP14 signaling that promotes human breast cancer invasion and metastasis. Using cell lines for inducible expression and knockdown of KLF8, we demonstrate that KLF8 promotes MMP14 expression at the transcriptional level. Knocking down KLF8 expression inhibited the breast cancer cell invasion both in vitro and in vivo as well as the lung metastasis in mice, which could be rescued by ectopic expression of MMP14. Promoter reporter assays and oligonucleotide and chromatin immunoprecipitations determined that KLF8 activates the human MMP14 gene promoter by both directly acting on the promoter and indirectly via promoting the nuclear translocation of β-catenin, the expression of T cell factor-1 (TCF1) and subsequent activation of the promoter by the β-catenin/TCF1 complex. Inhibition of focal adhesion kinase (FAK) using pharmacological inhibitor, RNA interference or knockout showed that the cell surface presentation of active MMP14 downstream of KLF8 depends upon FAK expression and activity. Taken together, this work identified novel signaling mechanisms by which KLF8 and FAK work together to promote the extracellular activity of MMP14 critical for breast cancer metastasis.
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spelling pubmed-39295362014-11-29 KLF8 and FAK cooperatively enrich the active MMP14 on the cell surface required for the metastatic progression of breast cancer Lu, Heng Hu, Liu Yu, Lin Wang, Xianhui Urvalek, Alison M. Li, Tianshu Shen, Chao Mukherjee, Debarati Lahiri, Satadru K. Wason, Melissa S. Zhao, Jihe Oncogene Article Krüppel-like factor 8 (KLF8) regulates critical gene transcription associated with cancer. The underlying mechanisms, however, remain largely unidentified. We have recently demonstrated that KLF8 expression enhances the activity but not expression of matrix metalloproteinase-2 (MMP2), the target substrate of MMP14. Here, we report a novel KLF8 to MMP14 signaling that promotes human breast cancer invasion and metastasis. Using cell lines for inducible expression and knockdown of KLF8, we demonstrate that KLF8 promotes MMP14 expression at the transcriptional level. Knocking down KLF8 expression inhibited the breast cancer cell invasion both in vitro and in vivo as well as the lung metastasis in mice, which could be rescued by ectopic expression of MMP14. Promoter reporter assays and oligonucleotide and chromatin immunoprecipitations determined that KLF8 activates the human MMP14 gene promoter by both directly acting on the promoter and indirectly via promoting the nuclear translocation of β-catenin, the expression of T cell factor-1 (TCF1) and subsequent activation of the promoter by the β-catenin/TCF1 complex. Inhibition of focal adhesion kinase (FAK) using pharmacological inhibitor, RNA interference or knockout showed that the cell surface presentation of active MMP14 downstream of KLF8 depends upon FAK expression and activity. Taken together, this work identified novel signaling mechanisms by which KLF8 and FAK work together to promote the extracellular activity of MMP14 critical for breast cancer metastasis. 2013-07-01 2014-05-29 /pmc/articles/PMC3929536/ /pubmed/23812425 http://dx.doi.org/10.1038/onc.2013.247 Text en Users may view, print, copy, download and text and data- mine the content in such documents, for the purposes of academic research, subject always to the full Conditions of use: http://www.nature.com/authors/editorial_policies/license.html#terms
spellingShingle Article
Lu, Heng
Hu, Liu
Yu, Lin
Wang, Xianhui
Urvalek, Alison M.
Li, Tianshu
Shen, Chao
Mukherjee, Debarati
Lahiri, Satadru K.
Wason, Melissa S.
Zhao, Jihe
KLF8 and FAK cooperatively enrich the active MMP14 on the cell surface required for the metastatic progression of breast cancer
title KLF8 and FAK cooperatively enrich the active MMP14 on the cell surface required for the metastatic progression of breast cancer
title_full KLF8 and FAK cooperatively enrich the active MMP14 on the cell surface required for the metastatic progression of breast cancer
title_fullStr KLF8 and FAK cooperatively enrich the active MMP14 on the cell surface required for the metastatic progression of breast cancer
title_full_unstemmed KLF8 and FAK cooperatively enrich the active MMP14 on the cell surface required for the metastatic progression of breast cancer
title_short KLF8 and FAK cooperatively enrich the active MMP14 on the cell surface required for the metastatic progression of breast cancer
title_sort klf8 and fak cooperatively enrich the active mmp14 on the cell surface required for the metastatic progression of breast cancer
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3929536/
https://www.ncbi.nlm.nih.gov/pubmed/23812425
http://dx.doi.org/10.1038/onc.2013.247
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