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Single Cell Analysis Of Transcriptionally Active Alleles By Single Molecule FISH
Published on: September 20, 2020
Noninvasive assessment of E2F-1-mediated transcriptional regulation in vivo
Parisa Monfared1, Alexandra Winkeler, Markus Klein
1Laboratory for Gene Therapy and Molecular Imaging, Max-Planck Institute for Neurological Research with Klaus-Joachim-Zülch-Laboratories of the Max Planck Society, Faculty of Medicine, University of Cologne, Cologne, Germany.
Abstract:
Targeted therapies directed against individual cancer-specific molecular alterations offer the development of disease-specific and individualized treatment strategies. Activation of the transcription factor E2F-1 via alteration of the p16-cyclinD-Rb pathway is one of the key molecular events in the development of gliomas. E2F-1 binds to and activates the E2F-1 promoter in an autoregulatory manner. The human E2F-1 promoter has been shown to be selectively activated in tumor cells with a defect in the pRb pathway. Paradoxically, E2F-1 also carries tumor suppressor function. Our investigations focused on analyzing the dynamics of the activity of the E2F-1 responsive element under basal conditions and certain stimuli such as chemotherapy using molecular imaging technology. We constructed a retrovirus bearing the Cis-E2F-TA-LITG reporter system to noninvasively assess E2F-1-dependent transcriptional regulation in culture and in vivo. We show that our reporter system is sensitive to monitor various changes in cellular E2F-1 levels and its transcriptional control of our reporter system to follow the state of the Rb/E2F pathway and the DNA damage-induced up-regulation of E2F-1 activity in vivo. Exposure to 1,3-bis(2-chloroethyl)-1-nitrosourea leads to increased E2F-1 expression levels in a dose- and time-dependent manner, which can be quantified by imaging in vivo, leading to an alteration of cell cycle progression and caspase 3/7 activity. In summary, noninvasive imaging of E2F-1 as a common downstream regulator of cell cycle progression using the Cis-E2F-TA-LUC-IRES-TKGFP reporter system is highly attractive for evaluating the kinetics of cell cycle regulation and the effects of novel cell cycle targeting anticancer agents in vivo.
Insights
This study developed a novel imaging system to track E2F-1 activity, a key factor in cell cycle regulation and glioma development. The system noninvasively monitors E2F-1 dynamics, aiding in the evaluation of new cancer therapies targeting the cell cycle.
Area of Science:
- Molecular biology
- Oncology
- Biomedical imaging
Background:
- Targeted cancer therapies rely on understanding molecular alterations.
- E2F-1 transcription factor activation, linked to the p16-cyclinD-Rb pathway, is crucial in glioma development.
- E2F-1 exhibits paradoxical tumor suppressor functions and autoregulatory promoter activity.
Purpose of the Study:
- To analyze E2F-1 responsive element dynamics under basal and stimulated conditions using molecular imaging.
- To develop a noninvasive method for assessing E2F-1-dependent transcriptional regulation in vitro and in vivo.
- To evaluate the effects of chemotherapy on E2F-1 activity and cell cycle progression.
Main Methods:
- Construction of a retrovirus carrying the Cis-E2F-TA-LITG reporter system.
- Noninvasive assessment of E2F-1 transcriptional regulation in cell cultures and in vivo.
- Quantification of E2F-1 expression changes and cell cycle alterations following chemotherapy exposure.
Main Results:
- The reporter system effectively monitored cellular E2F-1 levels and Rb/E2F pathway status.
- DNA damage-induced E2F-1 activity was successfully tracked in vivo.
- Chemotherapy (1,3-bis(2-chloroethyl)-1-nitrosourea) increased E2F-1 expression dose- and time-dependently, altering cell cycle and caspase activity.
Conclusions:
- Noninvasive imaging of E2F-1 using the Cis-E2F-TA-LUC-IRES-TKGFP reporter system is feasible.
- This approach allows for evaluating cell cycle regulation kinetics.
- The system is valuable for assessing the efficacy of novel anticancer agents targeting the cell cycle in vivo.

