Polydopamine-Based Nanoparticles for Synergistic Chemotherapy of Prostate Cancer
Kebang Hu1, Dongqi Zhang1, Weiran Ma2
1Department of Urology, Lequn Branch, The First Hospital of Jilin University, Changchun, 130031, People's Republic of China.
Introduction:
Immune regulatory small molecule JQ1 can block its downstream effector PD-L1 pathway and effectively reverse the PD-L1 upregulation induced by doxorubicin (DOX). So the synergistic administration of chemotherapeutic drug DOX and JQ1 is expected to increase the sensitivity of tumors to immune checkpoint therapy and jointly enhance the body's own immunity, thus effectively killing tumor cells. Therefore, a drug delivery system loaded with DOX and JQ1 was devised in this study.
Methods:
Polydopamine nanoparticles (PDA NPs) were synthesized through spontaneous polymerization. Under appropriate pH conditions, DOX and JQ1 were loaded onto the surface of PDA NPs, and the release of DOX and JQ1 were measured using UV-Vis or high performance liquid chromatography (HPLC). The mechanism of fabricated nanocomplex in vitro was investigated by cell uptake experiment, cell viability assays, apoptosis assays, and Western blot analysis. Finally, the tumor-bearing mouse model was used to evaluate the tumor-inhibiting efficacy and the biosafety in vivo.
Results:
JQ1 and DOX were successfully loaded onto PDA NPs. PDA-DOX/JQ1 NPs inhibited the growth of prostate cancer cells, reduced the expression of apoptosis related proteins and induced apoptosis in vitro. The in vivo biodistribution indicated that PDA-DOX/JQ1 NPs could accumulated at the tumor sites through the EPR effect. In tumor-bearing mice, JQ1 delivered with PDA-DOX/JQ1 NPs reduced PD-L1 expression at tumor sites, generating significant tumor suppression. Furthermore, PDA-DOX/JQ1 NPs could reduce the side effects, and produce good synergistic treatment effect in vivo.
Conclusion:
We have successfully prepared a multifunctional platform for synergistic prostate cancer therapy.
Insights
This study developed polydopamine nanoparticles loaded with doxorubicin (DOX) and JQ1 to treat prostate cancer. The nanoparticles effectively suppressed tumor growth and enhanced anti-tumor immunity in vivo.
Area of Science:
- Biomedical Engineering
- Nanotechnology
- Cancer Therapy
Background:
- The small molecule JQ1 inhibits the PD-L1 pathway, reversing doxorubicin (DOX)-induced PD-L1 upregulation.
- Synergistic administration of DOX and JQ1 can enhance anti-tumor immunity and sensitivity to immune checkpoint therapy.
Purpose of the Study:
- To develop a drug delivery system for synergistic prostate cancer therapy using DOX and JQ1.
- To evaluate the efficacy and biosafety of the drug delivery system in vitro and in vivo.
Main Methods:
- Polydopamine nanoparticles (PDA NPs) were synthesized and loaded with DOX and JQ1.
- In vitro studies included cell uptake, viability, apoptosis assays, and Western blot analysis.
- In vivo studies utilized a tumor-bearing mouse model to assess tumor inhibition and biosafety.
Main Results:
- PDA-DOX/JQ1 NPs successfully loaded both drugs and inhibited prostate cancer cell growth in vitro.
- In vivo studies showed PDA-DOX/JQ1 NPs accumulated at tumor sites, reduced PD-L1 expression, and significantly suppressed tumor growth.
- The nanoparticle system demonstrated reduced side effects and a synergistic therapeutic effect.
Conclusions:
- A multifunctional platform for synergistic prostate cancer therapy was successfully developed.
- PDA-DOX/JQ1 NPs offer a promising strategy for enhancing cancer treatment efficacy and reducing side effects.
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