RNF43 p.G659fs 通过 PI3K/AKT/mTOR 信号通路和 HLA-E 上调导致 MSI-high 结直肠癌中 NK 细胞功能障碍
RNF43 p.G659fs leads to natural killer cell dysfunction in MSI-high colorectal cancer through PI3K/AKT/mTOR signaling and HLA-E up-regulation.
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:PD-L1/TLR7 dual-targeting nanobody-drug conjugate mediates potent tumor regression via elevating tumor immunogenicity in a host-expressed PD-L1 bias-dependent way.
PD-L1/TLR7 dual-targeting nanobody-drug conjugate mediates potent tumor regression via elevating tumor immunogenicity in a host-expressed PD-L1 bias-dependent way.
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新型 PD-L1/TLR7 双靶向 NDC 通过协调固有免疫和适应性免疫,对异质性肿瘤展现出强效作用,可作为改善 ICB 治疗的有前景策略,并显示出临床开发前景。
多种肿瘤对免疫检查点阻断(ICB)治疗不敏感。Toll样受体(TLRs)建立了固有免疫与适应性免疫之间的联系,可辅助T细胞活化,并作为有前景的联合靶点以增强ICB治疗。在此,我们旨在基于我们开发的PD-L1纳米抗体和TLR7激动剂,开发一种PD-L1/TLR7双靶向纳米抗体-药物偶联物(NDC),以提高抗程序性死亡配体1(PD-L1)治疗的疗效。
通过噬菌体展示获得PD-L1纳米抗体,并通过T细胞激活生物测定、体内成像和定量生物分布研究进行鉴定。在不同先天细胞模型中评估了TLR7激动剂的免疫激活和PD-L1诱导作用。我们通过化学偶联PD-L1纳米抗体和TLR7激动剂构建了PD-L1/TLR7双靶向NDCs。通过几种小鼠或人源化实体瘤模型评估了抗肿瘤效果。结合免疫表型分析、免疫细胞耗竭、肿瘤再攻击、RNA测序和PD-L1缺陷模型来确定NDCs功能的机制。基于PD-L1水平的多器官变化评估了NDCs体内行为的动态。
筛选出的 PD-L1 纳米抗体具有肿瘤靶向特性,并可缓解 T 细胞免疫抑制。TLR7 激动剂可诱导广泛的先天免疫反应以及抗原提呈细胞(APCs)上的瘤内 PD-L1 表达,其抗肿瘤效应依赖于瘤内递送。TLR7 激动剂与 PD-L1 纳米抗体联合可激活先天免疫和适应性免疫,并上调 PD-L1 相关信号通路。偶联形成双靶向 NDCs 后,TLR7 激动剂与 PD-L1 纳米抗体在“热”或“冷”肿瘤以及早期或晚期肿瘤模型中均发挥协同抗肿瘤效应并具有安全性,重塑了肿瘤免疫微环境并诱导了抗肿瘤免疫记忆。CD8 + T 细胞和NK 细胞是 NDCs 发挥作用的主要效应细胞。NDCs 可促进瘤内 APCs 和肿瘤细胞上的 PD-L1 表达,随后实现肿瘤内的靶向富集。此外,NDCs 的疗效偏向于依赖宿主 PD-L1 的表达。
Various tumors are insensitive to immune checkpoint blockade (ICB) therapy. Toll-like receptors (TLRs) establish the link between innate and adaptive immunity, which can assist T-cell activation and serve as promising targets for combination to enhance ICB therapy. Here, we aimed to improve efficacy for anti-programmed death ligand 1 (PD-L1) therapy by developing a PD-L1/TLR7 dual-targeting nanobody-drug conjugate (NDC), based on the PD-L1 nanobodies and TLR7 agonist we developed.
PD-L1 nanobodies were obtained by phage display screening and identified through T-cell activation bioassay, in vivo imaging and quantitative biodistribution study. Immune activation and PD-L1-inducing of TLR7 agonists were evaluated in diverse innate cell models. We constructed PD-L1/TLR7 dual-targeting NDCs by chemically coupling PD-L1 nanobodies and TLR7 agonists. The antitumor effect was evaluated via several murine or humanized solid tumor models. Immunophenotyping, immune cell depletion, tumor rechallenge, RNA sequencing and PD-L1-deficient models were combined to determine the mechanism for NDCs function. The dynamics of the in vivo behaviors of NDCs were assessed based on multiorgan changes in PD-L1 levels.
The screened PD-L1 nanobodies were characterized as tumor-targeting and alleviated T-cell immunosuppression. The TLR7 agonists induced broad innate immune responses and intratumoral PD-L1 expression on antigen-presenting cells (APCs), and its antitumor effect was dependent on intratumoral delivery. The combination of TLR7 agonists and PD-L1 nanobodies activated both innate and adaptive immunity and upregulated PD-L1-related signaling pathways. After coupling to form dual-targeting NDCs, TLR7 agonists and PD-L1 nanobodies exerted synergistic antitumor effects and safety in either 'hot' or 'cold' tumor and early or advanced tumor models, reshaped the tumor immune microenvironment and induced antitumor immune memory. CD8 + T cells and natural killer cells were the main effector cells for NDCs to function. NDCs can promote PD-L1 expression on intratumoral APCs and tumor cells, and subsequently achieve targeted enrichment in tumors. Moreover, the efficacy of NDCs is biased toward dependence on host expression of PD-L1.
The novel PD-L1/TLR7 dual-targeting NDC exhibited potent efficacy against heterogeneous tumors through orchestrating innate and adaptive immunity, which could act as a promising strategy to improve ICB therapy and shows prospects for clinical development.
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