Down-regulation of human topoisomerase IIα expression correlates with relative amounts of specificity factors Sp1 and Sp3 bound at proximal and distal promoter regions
Open Access
- 20 May 2007
- journal article
- research article
- Published by Springer Nature in BMC Molecular Biology
- Vol. 8 (1) , 36
- https://doi.org/10.1186/1471-2199-8-36
Abstract
Background: Topoisomerase IIα has been shown to be down-regulated in doxorubicin-resistant cell lines. The specificity proteins Sp1 and Sp3 have been implicated in regulation of topoisomerase IIα transcription, although the mechanism by which they regulate expression is not fully understood. Sp1 has been shown to bind specifically to both proximal and distal GC elements of the human topoisomerase IIα promoter in vitro, while Sp3 binds only to the distal GC element unless additional flanking sequences are included. While Sp1 is thought to be an activator of human topoisomerase IIα, the functional significance of Sp3 binding is not known. Therefore, we sought to determine the functional relationship between Sp1 and Sp3 binding to the topoisomerase IIα promoter in vivo. We investigated endogenous levels of Sp1, Sp3 and topoisomerase IIα as well as binding of both Sp1 and Sp3 to the GC boxes of the topoisomerase IIα promoter in breast cancer cell lines in vivo after short term doxorubicin exposure. Results: Functional effects of Sp1 and Sp3 were studied using transient cotransfection assays using a topoisomerase IIα promoter reporter construct. The in vivo interactions of Sp1 and Sp3 with the GC elements of the topoisomerase IIα promoter were studied in doxorubicin-treated breast cancer cell lines using chromatin immunoprecipitation assays. Relative amounts of endogenous proteins were measured using immunoblotting. In vivo DNA looping mediated by proteins bound at the GC1 and GC2 elements was studied using the chromatin conformation capture assay. Both Sp1 and Sp3 bound to the GC1 and GC2 regions. Sp1 and Sp3 were transcriptional activators and repressors respectively, with Sp3 repression being dominant over Sp1-mediated activation. The GC1 and GC2 elements are linked in vivo to form a loop, thus bringing distal regulatory elements and their cognate transcription factors into close proximity with the transcription start site. Conclusion: These observations provide a mechanistic explanation for the modulation of topoisomerase IIα and concomitant down-regulation that can be mediated by topoisomerase II poisons. Competition between Sp1 and Sp3 for the same cognate DNA would result in activation or repression depending on absolute amounts of each transcription factor in cells treated with doxorubicin.Keywords
This publication has 42 references indexed in Scilit:
- Down-regulation of human topoisomerase IIα correlates with altered expression of transcriptional regulators NF-YA and Sp1Anti-Cancer Drugs, 2004
- Sp1 and Sp3 Transcription Factors Mediate Interleukin-1β Down-regulation of Human Type II Collagen Gene Expression in Articular ChondrocytesJournal of Biological Chemistry, 2003
- Modulation of DNA topoisomerase IIα promoter activity by members of the Sp (specificity protein) and NF-Y (nuclear factor Y) families of transcription factorsBiochemical Journal, 2003
- Characterization of the human activator protein-2gamma (AP-2gamma) gene: control of expression by Sp1/Sp3 in breast tumour cellsBiochemical Journal, 2003
- Sp3 Is a Transcriptional Repressor of Transforming Growth Factor-β ReceptorsJournal of Biological Chemistry, 2001
- Insulin-like Growth Factor-I Regulates Transcription of the Elastin Gene through a Putative Retinoblastoma Control ElementJournal of Biological Chemistry, 1996
- Sp3 Represses Transcription When Tethered to Promoter DNA or Targeted to Promoter Proximal RNAJournal of Biological Chemistry, 1996
- The Role of the Transcription Factor Sp1 in Regulating the Expression of the WAF1/CIP1 Gene in U937 Leukemic CellsPublished by Elsevier ,1996
- Cleavage of Structural Proteins during the Assembly of the Head of Bacteriophage T4Nature, 1970
- DISC ELECTROPHORESIS‐I BACKGROUND AND THEORY*Annals of the New York Academy of Sciences, 1964