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Updated: Jun 24, 2026

Live Imaging of Drug Responses in the Tumor Microenvironment in Mouse Models of Breast Cancer
Published on: March 24, 2013
A new model for studying tissue-specific mdr1a gene expression in vivo by live imaging
Long Gu1, Walter M Tsark, Donna A Brown
1Division of Tumor Cell Biology, Beckman Research Institute at City of Hope, 1500 East Duarte Road, Duarte, CA 91010, USA.
Abstract:
Multidrug resistance continues to be a major impediment to successful chemotherapy in cancer patients. One cause of multidrug resistance is enhanced expression of the mdr1 gene, but the precise factors and physiological conditions controlling mdr1 expression are not entirely known. To gain a better understanding of mdr1 transcriptional regulation, we created a unique mouse model that allows noninvasive bioimaging of mdr1 gene expression in vivo and in real time. The model uses a firefly luciferase (fLUC) gene inserted by homologous recombination into the murine mdr1a genetic locus. The inserted fLUC gene is preceded by a neo expression cassette flanked by loxP sites, so that Cre-mediated recombination is required to configure the fLUC gene directly under the control of the endogenous mdr1a promoter. We now demonstrate that the mdr1a.fLUC knock-in is a faithful reporter for mdr1a expression in naive animals, in which fLUC mRNA levels and luminescence intensities accurately parallel endogenous mdr1a mRNA expression. We also demonstrate xenobiotic-inducible regulation of mdr1a.fLUC expression in real time, in parallel with endogenous mdr1a expression, resulting in a more detailed understanding of the kinetics of mdr1a gene induction. This mouse model demonstrates the feasibility of using bioimaging coupled with Cre/loxP conditional knock-in to monitor regulated gene expression in vivo. It represents a unique tool with which to study the magnitude and kinetics of mdr1a induction under a variety of physiologic, pharmacologic, genetic, and environmental conditions.
Insights
Researchers developed a novel mouse model for real-time, noninvasive bioimaging of multidrug resistance (mdr1) gene expression. This tool aids in understanding mdr1 regulation and its role in chemotherapy resistance.
Area of Science:
- Molecular Biology
- Genetics
- Cancer Research
Background:
- Multidrug resistance (mdr1) gene expression is a key factor in chemotherapy failure.
- The precise regulation of mdr1 expression under various physiological conditions remains incompletely understood.
Purpose of the Study:
- To develop a novel mouse model for noninvasive, real-time in vivo imaging of mdr1 gene expression.
- To investigate the transcriptional regulation and kinetics of mdr1 gene induction.
Main Methods:
- Created a knock-in mouse model with a firefly luciferase (fLUC) reporter gene under the control of the endogenous mdr1a promoter using Cre/loxP recombination.
- Validated the model by correlating fLUC mRNA and luminescence with endogenous mdr1a mRNA levels.
- Monitored xenobiotic-inducible regulation of mdr1a.fLUC expression in real time.
Main Results:
- The mdr1a.fLUC knock-in mouse accurately reports endogenous mdr1a expression in naive animals.
- Demonstrated real-time, inducible regulation of mdr1a.fLUC expression, mirroring endogenous mdr1a.
- Provided a detailed understanding of the kinetics of mdr1a gene induction.
Conclusions:
- The developed mouse model is a feasible and unique tool for in vivo monitoring of regulated gene expression.
- This model facilitates the study of mdr1 induction kinetics under diverse conditions, advancing cancer chemotherapy research.
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