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Updated: Jul 11, 2026

Through the Looking Glass: Time-lapse Microscopy and Longitudinal Tracking of Single Cells to Study Anti-cancer Therapeutics
Published on: May 14, 2016
Cell cycle dependent and schedule-dependent antitumor effects of sorafenib combined with radiation
John P Plastaras1, Seok-Hyun Kim, Yingqiu Y Liu
1Laboratory of Molecular Oncology and Cell Cycle Regulation, Department of Medicine (Hematology/Oncology), University of Pennsylvania School of Medicine, Philadelphia, Pennsylvania 19104, USA.
Abstract:
The antineoplastic drug sorafenib (BAY 43-9006) is a multikinase inhibitor that targets the serine-threonine kinase B-Raf as well as several tyrosine kinases. Given the numerous molecular targets of sorafenib, there are several potential anticancer mechanisms of action, including induction of apoptosis, cytostasis, and antiangiogenesis. We observed that sorafenib has broad activity in viability assays in several human tumor cell lines but selectively induces apoptosis in only some lines. Sorafenib was found to decrease Mcl-1 levels in most cell lines tested, but this decrease did not correlate with apoptotic sensitivity. Sorafenib slows cell cycle progression and prevents irradiated cells from reaching and accumulating at G2-M. In synchronized cells, sorafenib causes a reversible G1 delay, which is associated with decreased levels of cyclin D1, Rb, and phosphorylation of Rb. Although sorafenib does not affect intrinsic radiosensitivity using in vitro colony formation assays, it significantly reduces colony size. In HCT116 xenograft tumor growth delay experiments in mice, sorafenib alters radiation response in a schedule-dependent manner. Radiation treatment followed sequentially by sorafenib was found to be associated with the greatest tumor growth delay. This study establishes a foundation for clinical testing of sequential fractionated radiation followed by sorafenib in gastrointestinal and other malignancies.
Insights
Sorafenib, a multikinase inhibitor, shows broad anticancer activity and delays cell cycle progression. Sequential treatment with radiation and sorafenib significantly enhances tumor growth delay in preclinical models.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- Sorafenib is a multikinase inhibitor targeting B-Raf and tyrosine kinases.
- Potential anticancer mechanisms include apoptosis induction, cytostasis, and antiangiogenesis.
Purpose of the Study:
- To investigate the anticancer mechanisms of sorafenib.
- To evaluate the combination of sorafenib and radiation therapy in preclinical models.
Main Methods:
- Sorafenib's effects on human tumor cell lines were assessed using viability assays.
- Cell cycle progression and molecular targets were analyzed.
- In vitro radiosensitivity and in vivo tumor growth delay experiments were conducted.
Main Results:
- Sorafenib demonstrated broad activity but selective apoptosis induction in cell lines.
- It decreased Mcl-1 levels and caused G1 cell cycle delay.
- Sorafenib reduced colony size and enhanced radiation-induced tumor growth delay in a schedule-dependent manner.
Conclusions:
- Sorafenib exhibits diverse anticancer effects and modulates cell cycle progression.
- Sequential radiation and sorafenib therapy shows promise for enhanced tumor growth delay.
- This supports clinical trials of fractionated radiation followed by sorafenib in malignancies.
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