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Updated: Aug 21, 2026

In Vitro Ubiquitination and Deubiquitination Assays of Nucleosomal Histones
Published on: July 25, 2019
Involvement of AP-2 binding sites in regulation of human beta-glucuronidase
Christiane Kunert-Keil1, Bernhard Sperker, Sandra Bien
1Department of Pharmacology and Peter Holtz Research Center of Pharmacology and Experimental Therapeutics, Ernst Moritz Arndt-University, Friedrich-Loeffler-Strasse 23d, 17487 Greifswald, Germany.
Abstract:
The lysosomal hydrolase beta-glucuronidase (beta-gluc) can be used for the bioactivation of non-toxic glucuronide prodrugs of anticancer agents. The enzyme is present at high levels in many tumours and hence may lead to an enhanced drug targeting by tumour-selective release of the active anticancer drug. Individual expression and regulation of this enzyme is one factor modulating the bioactivation of glucuronide prodrugs. Nevertheless, in contrast to murine beta-gluc, which is inducible by androgens, the human enzyme has been regarded as an unregulated housekeeping gene due to a lacking TATA box and high G+C contents within the putative promotor sequence. Despite these facts, we were able to demonstrate downregulation of human beta-gluc expression by the calcium ionophore A23187 and the calcium ATPase inhibitor thapsigargin in the human hepatoma cell line HepG2. However, cis-acting elements responsible for this regulation have not yet been identified. We therefore characterised the 5'-untranslated region of the human beta-gluc gene using transient transfection assays with promotor-luciferase constructs in HepG2 cells and cloned fragments between 3,770 bp and 107 bp. A23187 reduced the beta-gluc promotor activity. This effect disappeared using fragments smaller than 356 bp. Using site-directed in vitro mutagenesis and gel-electrophoretic-mobility shift assays, we found evidence of an involvement of transcription factor activating protein-2 (AP-2) binding sites on the regulation of human beta-glucuronidase by A23187. Our studies provide a basis for the understanding of the transcriptional regulation of the human beta-glucuronidase gene and could be useful for the optimisation of glucuronide prodrug therapy.
Insights
Researchers found that the human beta-glucuronidase (beta-gluc) gene expression can be downregulated. This discovery is key for optimizing anticancer prodrug therapy by understanding gene regulation.
Area of Science:
- Biochemistry
- Molecular Biology
- Pharmacology
Background:
- The lysosomal enzyme beta-glucuronidase (beta-gluc) is crucial for activating anticancer prodrugs.
- High tumor levels of beta-gluc offer potential for targeted drug delivery.
- Human beta-gluc was previously considered a housekeeping gene with limited regulation.
Purpose of the Study:
- To investigate the transcriptional regulation of human beta-gluc.
- To identify cis-acting elements involved in beta-gluc gene regulation.
- To understand the mechanism of beta-gluc downregulation by specific agents.
Main Methods:
- Transient transfection assays with promoter-luciferase constructs in HepG2 cells.
- Cloning and testing of various 5'-untranslated region fragments of the beta-gluc gene.
- Site-directed mutagenesis and gel-electrophoretic mobility shift assays (EMSA).
Main Results:
- The calcium ionophore A23187 downregulated beta-gluc promoter activity.
- Downregulation was dependent on a DNA fragment between 356 bp and 3,770 bp.
- Evidence suggests binding sites for activating protein-2 (AP-2) are involved in this regulation.
Conclusions:
- Human beta-gluc gene expression is subject to transcriptional regulation.
- Activating protein-2 (AP-2) binding sites play a role in A23187-mediated downregulation.
- These findings provide a foundation for improving glucuronide prodrug cancer therapy.
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