CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:STING and TLR7/8 agonists-based nanovaccines for synergistic antitumor immune activation.
STING and TLR7/8 agonists-based nanovaccines for synergistic antitumor immune activation.
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无标签:基于模式识别受体(PRRs)的免疫刺激疗法已成为抗击癌症的有效方法,能够在低免疫原性肿瘤环境中招募肿瘤特异性淋巴细胞。干扰素基因刺激因子(STING)的激动剂环二核苷酸(CDNs)是一组非常有前景的抗癌分子,通过激活先天免疫来增加肿瘤免疫原性。
然而,CDNs的肿瘤免疫疗效受到多种因素的限制,包括细胞因子产生相对狭窄、向STING的递送效率低下以及快速清除。此外,单一佐剂分子无法引发广泛的细胞因子反应,因此无法进一步放大抗癌效果。为解决这一问题,通常将两种或更多激动剂分子联合使用以协同增强免疫疗效。在本工作中,我们发现STING激动剂CDG SF与Toll样受体7/8(TLR7/8)激动剂522的组合产生了更广泛的细胞因子反应。随后,我们开发了多组分纳米疫苗(MCNVs),由PC7A聚合物作为纳米载体包裹抗原OVA和佐剂分子组成。这些MCNVs激活骨髓来源树突状细胞(BMDCs)产生多种促炎因子,促进抗原交叉呈递以刺激特异性抗肿瘤T细胞反应。在体内实验中,我们观察到MCNVs在TIL(肿瘤浸润淋巴细胞)中引发了强烈的T细胞反应,导致显著的肿瘤消退,并且值得注意的是,在没有其他联合治疗的情况下,小鼠在25天内达到了100%的生存率。这些数据表明,我们的纳米疫苗具有巨大潜力,可通过增强持久性和效力来推进癌症免疫治疗。电子补充材料:补充材料(CDG SF、522、PC7A 和 OVA 的合成;MCNVs 的制备;流式细胞术的代表性设门策略)可在本文在线版本中获取,网址为 10.1007/s12274-022-4282-x。
UNLABELLED: Immunostimulatory therapies based on pattern recognition receptors (PRRs) have emerged as an effective approach in the fight against cancer, with the ability to recruit tumor-specific lymphocytes in a low-immunogenicity tumor environment. The agonist cyclic dinucleotides (CDNs) of the stimulator of interferon gene (STING) are a group of very promising anticancer molecules that increase tumor immunogenicity by activating innate immunity.
However, the tumor immune efficacy of CDNs is limited by several factors, including relatively narrow cytokine production, inefficient delivery to STING, and rapid clearance.
In addition, a single adjuvant molecule is unable to elicit a broad cytokine response and thus cannot further amplify the anticancer effect. To address this problem, two or more agonist molecules are often used together to synergistically enhance immune efficacy. In this work, we found that a combination of the STING agonist CDG SF and the Toll-like receptor 7/8 (TLR7/8) agonist 522 produced a broader cytokine response. Subsequently, we developed multicomponent nanovaccines (MCNVs) consisting of a PC7A polymer as a nanocarrier encapsulating the antigen OVA and adjuvant molecules. These MCNVs activate bone marrow-derived dendritic cells (BMDCs) to produce multiple proinflammatory factors that promote antigen cross-presentation to stimulate specific antitumor T-cell responses.
In in vivo experiments, we observed that MCNVs triggered a strong T-cell response in tumor-infiltrating lymphocytes, resulting in significant tumor regression and, notably, a 100% survival rate in mice through 25 days without other partnering therapies. These data suggest that our nanovaccines have great potential to advance cancer immunotherapy with increased durability and potency.
ELECTRONIC SUPPLEMENTARY MATERIAL: Supplementary material (synthesis of CDG SF , 522, PC7A and OVA; preparation of MCNVs; representative gating strategies for flow cytometry) is available in the online version of this article at 10. 1007/s12274-022-4282-x.
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