Design, synthesis, and anticancer activity of three novel palbociclib derivatives
Tian Li1, An-Di Zhou1, Li-Fei Bai2
1Department of Cardio-Thoracic Surgery, State Key Laboratory of Pharmaceutical Biotechnology, Affiliated Drum Tower Hospital, Medical School of Nanjing University, School of Life Sciences, Nanjing University, Nanjing, China.
Abstract:
Cancer is one of the most serious diseases threatening human health, so it is particularly important to develop effective tumor-targeting drugs. As the first CDK4/6 inhibitor, palbociclib effectively inhibits tumor proliferation by blocking the cell cycle to the G1 phase. 10-HCPT is a Topo I inhibitor; however, its clinical application has been greatly limited due to its high toxicity. Based on the successful development of double target inhibitors, three novel palbociclib derivatives (HP-1, HP-2, and HP-3) were designed and synthesized from Palbociclib and 10-HCPT, and their biological activities were investigated. At first, the possible binding sites of the three compounds to Topo I and CDK4/6 were predicted by molecular docking. Then, we evaluated the anti-proliferative effects of the three palbociclib derivatives. In general, human lung cancer cells were more sensitive to HP-1, HP-2, and HP-3, especially NCI-H460. In addition, cell cycle arrest and apoptosis induction were investigated by flow cytometry. The three palbociclib derivatives, especially HP-1, had obvious cell cycle arrest phenomenon on NCI-H460 cells and induced apoptosis of NCI-H460 cells significantly. In the end, it was proved that these three drugs had obvious cyclin-dependent kinase inhibitory activities. In short, all the data showed that HP-1, HP-2, and HP-3 could play anti-cancer roles by acting on dual targets and had the characteristics of high efficiencies and low toxicities, which opened up a new idea for the study of palbociclib derivatives.
Insights
Three novel palbociclib derivatives (HP-1, HP-2, HP-3) were synthesized to target both CDK4/6 and Topo I. These compounds show potent anti-cancer activity, particularly against lung cancer cells, with reduced toxicity.
Area of Science:
- Medicinal Chemistry
- Molecular Pharmacology
- Cancer Biology
Background:
- Palbociclib is a CDK4/6 inhibitor that blocks tumor proliferation.
- 10-HCPT is a Topo I inhibitor with limited clinical use due to toxicity.
- Developing dual-target inhibitors offers a promising strategy for cancer therapy.
Purpose of the Study:
- To design and synthesize novel palbociclib derivatives targeting both CDK4/6 and Topo I.
- To evaluate the anti-proliferative effects and mechanisms of action of these new compounds.
- To explore the potential of these derivatives as efficient and low-toxicity anti-cancer agents.
Main Methods:
- Molecular docking was used to predict binding sites for Topo I and CDK4/6.
- Anti-proliferative effects were assessed on human lung cancer cell lines.
- Cell cycle arrest and apoptosis were analyzed using flow cytometry.
- Cyclin-dependent kinase inhibitory activities were confirmed.
Main Results:
- Three novel palbociclib derivatives (HP-1, HP-2, HP-3) were successfully synthesized.
- HP-1, HP-2, and HP-3 demonstrated significant anti-proliferative activity, especially against NCI-H460 lung cancer cells.
- These compounds induced cell cycle arrest and apoptosis in NCI-H460 cells.
- The derivatives exhibited potent cyclin-dependent kinase inhibitory activities.
Conclusions:
- HP-1, HP-2, and HP-3 act as dual-target inhibitors against CDK4/6 and Topo I.
- These novel derivatives show high efficiency and low toxicity, offering a new approach for palbociclib-based cancer drug development.
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