Lysosome activable polymeric vorinostat encapsulating PD-L1KD for a combination of HDACi and immunotherapy
Fengkun Lu1, Lei Hou1, Sizhen Wang2
1Department of Pharmacy, Hebei North University Hebei Key Laboratory of Neuropharmacology, Zhangjiakou, People's Republic of China.
Abstract:
PD-1/PD-L1 blocking therapy has become one of the most promising methods in the field of tumor treatment. However, it encounters the challenge of immune escape due to the exhaustion of T cells. Studies have shown that the epigenetic regulation drug histone deacetylase inhibitor (HDACi) may be able to reverse exhausted T cells by changing the epigenetic transcription program. Therefore, the combination of epigenetic therapy and PD-1/PD-L1 blockade therapy is expected to reverse the immune escape, whereas the overriding goal should aim at the spontaneous release and synergy of PD-1/PD-L1 blocking siRNA and HDACi. In this study, we develop PDDS{polyethylene glycol-b-asparaginate(diethylenetriamine-vorinostat), (PEG-b-P[Asp(DET-SAHA)n] PPDS)}encapsulating siRNA-PD-L1to provide micelles siRNA-PD-L1-loaded micelles (siRNA@PPDS). Transmission electron microscope (TEM) images demonstrate that siRNA@PPDS micelles presented spherical morphology with a size of about 120 nm; hydrodynamic data analysis indicates pH sensitivity of siRNA@PPDS micelles. The experiments reveal that siRNA@PPDS micelles could be well uptaken by the tumor cells to silence the expression of PD-L1 protein in a dose-dependent manner; compared with the free SAHA, the SAHA-loaded micelles PPDS show higher cytotoxicity to induce tumor cell apoptosis and block cell cycle in G1 phase on melanoma-bearing mice, siRNA@PPDS has shown outstanding inhibition of tumor growth and pulmonary metastasis. By comprehensively activating the immune system, lysosome activable polymeric vorinostat encapsulating PD-L1KD for the combination therapy of PD-L1-KD and HDACIs can be an effective strategy to reverse the unresponsiveness of immune checkpoint inhibitors and a promising treatment to inhibit tumor growth, recurrence, and metastasis in clinic.
Insights
This study developed novel nanoparticles combining PD-1/PD-L1 blocking siRNA and HDAC inhibitors to overcome tumor immune escape. This combination therapy effectively inhibited tumor growth and metastasis by reactivating the immune system.
Area of Science:
- Oncology
- Immunotherapy
- Nanomedicine
- Epigenetics
Background:
- Programmed cell death protein 1 (PD-1)/PD-1 ligand (PD-L1) blockade is a promising cancer treatment.
- Tumor immune escape due to T-cell exhaustion limits the efficacy of PD-1/PD-L1 therapy.
- Histone deacetylase inhibitors (HDACi) can reverse T-cell exhaustion by altering epigenetic programs.
Purpose of the Study:
- To develop a combined epigenetic and immunotherapy strategy to overcome immune escape.
- To create pH-sensitive polymeric micelles (siRNA@PPDS) encapsulating PD-1/PD-L1 siRNA and vorinostat (SAHA).
Main Methods:
- Synthesis and characterization of siRNA-loaded polymeric micelles (siRNA@PPDS).
- Evaluation of micelle pH sensitivity, cellular uptake, and PD-L1 silencing in tumor cells.
- Assessment of cytotoxicity, apoptosis induction, cell cycle arrest, and anti-tumor efficacy in melanoma-bearing mice.
Main Results:
- siRNA@PPDS micelles exhibited spherical morphology (approx. 120 nm) and pH sensitivity.
- siRNA@PPDS effectively silenced PD-L1 expression in tumor cells dose-dependently.
- SAHA-loaded micelles (PPDS) demonstrated enhanced cytotoxicity and apoptosis induction compared to free SAHA.
- siRNA@PPDS significantly inhibited tumor growth and pulmonary metastasis in vivo.
- The combination therapy activated the immune system, reversing unresponsiveness to immune checkpoint inhibitors.
Conclusions:
- Lysosome-activatable polymeric micelles encapsulating PD-L1 siRNA and HDACi represent an effective strategy for combination therapy.
- This approach can overcome resistance to immune checkpoint inhibitors and inhibit tumor growth, recurrence, and metastasis.
- The developed nanomedicine holds promise for clinical application in cancer treatment.
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