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Published on: December 7, 2017
Transcriptional regulation of a metastasis suppressor gene by Tip60 and beta-catenin complexes
Jung Hwa Kim1, Bogyou Kim, Ling Cai
1Department of Biological Sciences, College of Natural Sciences, Seoul National University, Seoul 151-742, South Korea.
Abstract:
Defining the molecular strategies that integrate diverse signalling pathways in the expression of specific gene programmes that are critical in homeostasis and disease remains a central issue in biology. This is particularly pertinent in cancer biology because downregulation of tumour metastasis suppressor genes is a common occurrence, and the underlying molecular mechanisms are not well established. Here we report that the downregulation of a metastasis suppressor gene, KAI1, in prostate cancer cells involves the inhibitory actions of beta-catenin, along with a reptin chromatin remodelling complex. This inhibitory function of beta-catenin-reptin requires both increased beta-catenin expression and recruitment of histone deacetylase activity. The coordinated actions of beta-catenin-reptin components that mediate the repressive state serve to antagonize a Tip60 coactivator complex that is required for activation; the balance of these opposing complexes controls the expression of KAI1 and metastatic potential. The molecular mechanisms underlying the antagonistic regulation of beta-catenin-reptin and the Tip60 coactivator complexes for the metastasis suppressor gene, KAI1, are likely to be prototypic of a selective downregulation strategy for many genes, including a subset of NF-kappaB target genes.
Insights
Prostate cancer metastasis suppressor KAI1 is downregulated by beta-catenin and reptin. This complex inhibits KAI1 gene expression, controlling cancer cell metastasis.
Area of Science:
- Molecular biology
- Cancer biology
- Epigenetics
Background:
- Understanding gene regulation in homeostasis and disease is crucial.
- Downregulation of tumor metastasis suppressor genes is common in cancer, but mechanisms are unclear.
Purpose of the Study:
- To elucidate the molecular mechanisms of KAI1 metastasis suppressor gene downregulation in prostate cancer.
Main Methods:
- Investigated the roles of beta-catenin, reptin, and histone deacetylase activity.
- Analyzed the interplay between beta-catenin-reptin and Tip60 coactivator complexes.
Main Results:
- Beta-catenin and reptin complex formation inhibits KAI1 expression in prostate cancer cells.
- This inhibition requires increased beta-catenin and histone deacetylase recruitment.
- Antagonistic regulation between beta-catenin-reptin and Tip60 complexes controls KAI1 expression and metastasis.
Conclusions:
- The beta-catenin-reptin complex suppresses KAI1, promoting prostate cancer metastasis.
- This regulatory mechanism may apply to other genes, including NF-kappaB targets.
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