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Precision USPIO-PEG-SLex Nanotheranostic Agent Targeted Photothermal Therapy for Enhanced Anti-PD-L1 Immunotherapy to
Ting Li1, Lianshan Guo2, Jiaxu Li3
1Department of Radiology, Guangxi Medical University Cancer Hospital, Nanning, 530021, People's Republic of China.
Background:
The anti-Programmed Death-Ligand 1 (termed aPD-L1) immune checkpoint blockade therapy has emerged as a promising treatment approach for various advanced solid tumors. However, the effect of aPD-L1 inhibitors limited by the tumor microenvironment makes most patients exhibit immunotherapy resistance.
Methods:
We conjugated the Sialyl Lewis X with a polyethylene glycol-coated ultrasmall superparamagnetic iron oxide (USPIO-PEG) to form UPS nanoparticles (USPIO-PEG-SLex, termed UPS). The physicochemical properties of UPS were tested and characterized. Transmission electron microscopy and ICP-OES were used to observe the cellular uptake and targeting ability of UPS. Flow cytometry, mitochondrial membrane potential staining, live-dead staining and scratch assay were used to verify the in vitro photothermal effect of UPS, and the stimulation of UPS on immune-related pathways at the gene level was analyzed by sequencing. Biological safety analysis and pharmacokinetic analysis of UPS were performed. Finally, the amplification effect of UPS-mediated photothermal therapy on aPD-L1-mediated immunotherapy and the corresponding mechanism were studied.
Results:
In vitro experiments showed that UPS had strong photothermal therapy ability and was able to stimulate 5 immune-related pathways. In vivo, when the PTT assisted aPD-L1 treatment, it exhibited a significant increase in CD4+ T cell infiltration by 14.46-fold and CD8+ T cell infiltration by 14.79-fold, along with elevated secretion of tumor necrosis factor-alpha and interferon-gamma, comparing with alone aPD-L1. This PTT assisted aPD-L1 therapy achieved a significant inhibition of both primary tumors and distant tumors compared to the alone aPD-L1, demonstrating a significant difference.
Conclusion:
The nanotheranostic agent UPS has been introduced into immunotherapy, which has effectively broadened its application in biomedicine. This photothermal therapeutic approach of the UPS nanotheranostic agent enhancing the efficacy of aPD-L1 immune checkpoint blockade therapy, can be instructive to address the challenges associated with immunotherapy resistance, thereby offering potential for clinical translation.
Insights
This study developed UPS nanoparticles to enhance anti-Programmed Death-Ligand 1 (aPD-L1) immunotherapy. UPS-mediated photothermal therapy significantly boosted T cell infiltration and tumor inhibition, overcoming immunotherapy resistance.
Area of Science:
- Biomedical Engineering
- Nanotechnology
- Immunotherapy
Background:
- Anti-Programmed Death-Ligand 1 (aPD-L1) immunotherapy shows promise for solid tumors.
- Tumor microenvironment often causes resistance to aPD-L1 inhibitors.
- Developing strategies to overcome immunotherapy resistance is crucial.
Purpose of the Study:
- To develop UPS nanoparticles (USPIO-PEG-SLex) for enhanced aPD-L1 immunotherapy.
- To investigate the photothermal therapy (PTT) capabilities of UPS.
- To evaluate the synergistic effect of UPS-mediated PTT and aPD-L1 therapy on tumor growth and immune response.
Main Methods:
- Conjugation of Sialyl Lewis X with USPIO-PEG to form UPS nanoparticles.
- Characterization of UPS physicochemical properties, cellular uptake, and targeting.
- In vitro assessment of UPS photothermal effect and immune pathway stimulation via gene sequencing.
- In vivo evaluation of UPS-mediated PTT combined with aPD-L1 therapy.
Main Results:
- UPS nanoparticles demonstrated potent in vitro photothermal therapy ability and stimulated 5 immune-related pathways.
- In vivo, PTT-assisted aPD-L1 therapy significantly increased CD4+ and CD8+ T cell infiltration (14.46-fold and 14.79-fold, respectively).
- Combined therapy led to elevated TNF-α and IFN-γ secretion and significant inhibition of primary and distant tumors compared to aPD-L1 alone.
Conclusions:
- UPS nanoparticles serve as a nanotheranostic agent to enhance aPD-L1 immunotherapy.
- This photothermal therapeutic approach offers a promising strategy to overcome immunotherapy resistance.
- The findings suggest potential for clinical translation in treating advanced solid tumors.
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