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Novel Bioluminescent Activatable Reporter for Src Tyrosine Kinase Activity in Living Mice
Weibing Leng1, Dezhi Li1, Liang Chen2
11. Department of Medical Oncology, West China Hospital, Sichuan University, Chengdu 610041, Sichuan, China;; 2. Laboratory of Signal Transduction & Molecular Targeted Therapy, State Key Laboratory of Biotherapy, Sichuan University, Chengdu 610041, Sichuan, China;
Abstract:
Aberrant activation of the Src kinase is implicated in the development of a variety of human malignancies. However, it is almost impossible to monitor Src activity in an in vivo setting with current biochemical techniques. To facilitate the noninvasive investigation of the activity of Src kinase both in vitro and in vivo, we developed a genetically engineered, activatable bioluminescent reporter using split-luciferase complementation. The bioluminescence of this reporter can be used as a surrogate for Src activity in real time. This hybrid luciferase reporter was constructed by sandwiching a Src-dependent conformationally responsive unit (SH2 domain-Srcpep) between the split luciferase fragments. The complementation bioluminescence of this reporter was dependent on the Src activity status. In our study, Src kinase activity in cultured cells and tumor xenografts was monitored quantitatively and dynamically in response to clinical small-molecular kinase inhibitors, dasatinib and saracatinib. This system was also applied for high-throughput screening of Src inhibitors against a kinase inhibitor library in living cells. These results provide unique insights into drug development and pharmacokinetics/phoarmocodynamics of therapeutic drugs targeting Src signaling pathway enabling the optimization of drug administration schedules for maximum benefit. Using both Firefly and Renilla luciferase imaging, we have successfully monitored Src tyrosine kinase activity and Akt serine/threonine kinase activity concurrently in one tumor xenograft. This dual luciferase reporter imaging system will be helpful in exploring the complex signaling networks in vivo. The strategies reported here can also be extended to study and image other important kinases and the cross-talks among them.
Insights
Scientists developed a novel bioluminescent reporter to noninvasively monitor Src kinase activity in real time. This tool aids in studying Src-driven cancers and evaluating kinase inhibitors in vivo.
Area of Science:
- Biochemistry
- Molecular Biology
- Oncology
Background:
- Aberrant Src kinase activation is crucial in human malignancies.
- Current methods struggle to monitor Src activity noninvasively in vivo.
- A need exists for real-time imaging of kinase activity for drug development.
Purpose of the Study:
- To develop a genetically engineered, activatable bioluminescent reporter for noninvasive Src kinase activity monitoring.
- To enable real-time in vitro and in vivo investigation of Src kinase activity.
- To facilitate drug discovery and pharmacodynamic studies targeting the Src signaling pathway.
Main Methods:
- Developed a split-luciferase complementation reporter system.
- Engineered a Src-dependent conformational unit (SH2 domain-Srcpep) within the reporter.
- Utilized bioluminescence to quantify Src activity in cells and tumor xenografts.
- Applied dual luciferase imaging (Firefly and Renilla) for concurrent kinase activity monitoring.
Main Results:
- Reporter bioluminescence directly correlated with Src kinase activity.
- Successfully monitored Src activity in response to kinase inhibitors (dasatinib, saracatinib).
- Enabled high-throughput screening of Src inhibitors in living cells.
- Demonstrated concurrent monitoring of Src and Akt kinase activity in vivo.
Conclusions:
- The developed bioluminescent reporter system provides a noninvasive method for real-time Src kinase activity assessment.
- This reporter facilitates drug development, optimization of drug schedules, and pharmacokinetic/pharmacodynamic studies.
- The strategy is adaptable for studying other kinases and their cross-talk, advancing in vivo signaling network exploration.

