PROTAC 工程化蛋白/DNA 纳米抗原是癌症免疫治疗中树突状细胞疫苗的有效增强剂
PROTAC-Engineered Protein/DNA Nanoantigen is a Potent Booster for Dendritic Cell Vaccines in Cancer Immunotherapy.
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Single-component lipid nanoparticles for engineering SOCS1 gene-silenced dendritic cells to boost tumor immunotherapy.
Single-component lipid nanoparticles for engineering SOCS1 gene-silenced dendritic cells to boost tumor immunotherapy.
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能够启动抗肿瘤反应的树突状细胞(DCs)在肿瘤免疫治疗中展现出巨大潜力,然而其效果不尽如人意,部分原因可归因于抑制性细胞因子的高表达,如细胞因子信号传导抑制因子1(SOCS1),这限制了其应用。
因此,沉默DCs中的这些基因对于基于DCs的治疗至关重要。然而,将siRNA安全有效地递送至DCs仍面临挑战。在此,我们设计了由单一阳离子脂质(OA2)组成的单组分脂质纳米颗粒,用于将siRNA导入小鼠DCs,以抑制免疫抑制基因并增强基于DCs治疗的效应反应。与其他多组分脂质纳米颗粒相比,单组分脂质纳米颗粒在理论上易于控制和检测,有利于未来的转化。
我们发现,与商业化的lipofectine2000相比,应用OA2脂质纳米颗粒使DCs中SOCS1的表达显著下调超过50%。
此外,OA2脂质纳米颗粒的处理对DCs的抗原捕获没有影响。因此,我们制备了一种负载Ova抗原的SOCS1下调DC疫苗,并证明由于SOCS1的下调,DCs的抗原呈递和促炎因子分泌能力得到改善,从而导致免疫抑制性肿瘤微环境得到改善,最终在B16-Ova荷瘤小鼠中表现出有效的肿瘤预防和抑制作用。单组分脂质纳米颗粒为siRNA递送至原代DCs提供了一个可用的载体平台,似乎是工程化DCs并进而增强基于DCs的肿瘤免疫治疗的有力工具。
Dendritic cells (DCs) that can prime antitumor responses show great potential in tumor immunotherapy, whereas the unsatisfactory effect which can be ascribed in part to the high expression of inhibitory cytokines, such as the suppressor of cytokine signaling 1 (SOCS1), restricts their application.
Thus, silencing these genes in DCs is essential for DC-based therapy.
However, safe and effective delivery of siRNA to DCs still faces challenges.
Herein, we designed single-component lipid nanoparticles comprising a solely cationic lipid (OA2) for introducing siRNA into mouse DCs in order to inhibit the immunosuppressive gene and boost the effector responses of DC-based therapy. Compared to other multi-component lipid nanoparticles, single-component lipid nanoparticles are theoretically easy-to-control and detective, which is beneficial for future translation.
We showed that the application of OA2 lipid nanoparticles significantly downregulated the expression of SOCS1 in DCs over 50%, compared with the commercial lipofectine2000. Besides, the treatment of OA2 lipid nanoparticles had no influence on the antigen capture of DCs.
Thus, we fabricated a SOCS1-downregulated DC vaccine pulsed with Ova antigen and demonstrated that the antigen presentation and pro-inflammatory factor secretion ability of DCs were improved due to the SOCS1 downregulation, leading to an ameliorated immunosuppressive tumor microenvironment and finally exhibiting potent tumor prevention and suppression in B16-Ova tumor-bearing mice.
Single-component lipid nanoparticles, which provide an available vector platform for siRNA delivery to primary DCs, appear to be a potent tool to engineer DCs and in turn boost DC-based tumor immunotherapy.
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