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B7H6 是驱动血液肿瘤患者 NK 细胞介导杀伤的主要激活配体:来自临床、计算机模拟、体外和体内研究的证据

英文原题:B7H6 is the predominant activating ligand driving natural killer cell-mediated killing in patients with liquid tumours: evidence from clinical, in silico, in vitro, and in vivo studies.

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B7H6 is the predominant activating ligand driving natural killer cell-mediated killing in patients with liquid tumours: evidence from clinical, in silico, in vitro, and in vivo studies.

PubMed 2024/11/22(内容时间) EBioMedicine Q1 · IF 11.2(JCR 2025)

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研究概要

尽管 NK 细胞因其强大的抗肿瘤效应且不会引起移植物抗宿主病(GvHD)而受到关注,从而使其成为一种有前景的现货型疗法,但我们对 NK 细胞杀伤机制的有限理解阻碍了其临床应用。

中文摘要

自然杀伤(NK)细胞是一类先天淋巴细胞,天然具有识别并杀伤感染细胞或肿瘤细胞的能力,因此成为肿瘤免疫治疗的有前景活细胞药物。然而,现有疗效有限,提示我们对其杀伤机制认识不足。NK细胞介导的杀伤涉及复杂的决策过程,需要整合多种配体-受体组合产生的激活和抑制信号。但不同激活配体-受体相互作用在触发NK细胞杀伤中的相对重要性仍不清楚。

研究系统整合临床、计算分析、体外及体内数据,量化多种激活配体的作用。临床分析采用大型泛癌数据集(n=10,595),使用CIBERSORT对NK细胞水平较高的患者进行分层,并基于激活配体表达进行多变量Cox回归和Kaplan-Meier生存分析。为评估配体表达对细胞层面NK杀伤的影响,研究通过流式细胞术检测33种不同来源的人肿瘤细胞系表面五种主要激活配体(B7H6、MICA/B、ULBP1、ULBP2/5/6和ULBP3),并以钙黄绿素-AM法评估人原代NK细胞及NK-92细胞系介导的细胞毒性。研究利用数学模型和贝叶斯统计量化各激活配体对NK杀伤活性的贡献。为进一步验证结果,研究进行了配体敲低及过表达后的钙黄绿素-AM实验、细胞结合实验,以及在配体下调或过表达的液体肿瘤(LT)细胞系中开展共培养实验。此外,还建立LT异种移植小鼠模型,评估NK细胞靶向优势配体表达肿瘤的疗效。

临床分析发现,在几乎全部18种激活配体中,只有富含NK细胞且B7H6水平较高的LT患者显示较好生存结局(p=0.0069)。这一意外发现得到涵盖多种配体及肿瘤的数据集分析进一步证实:在五种代表性配体中,B7H6对NK细胞杀伤的贡献最大。B7H6水平较低的LT细胞系(包括急性髓系白血病、B细胞淋巴瘤和T急性淋巴细胞白血病)较B7H6较高细胞系更不易被NK细胞杀伤。即使在同一细胞系内,NK细胞也会选择性靶向B7H6水平较高的细胞。最后,LT异种移植小鼠模型(n=24)证实,在接受NK细胞治疗的小鼠中,肿瘤B7H6水平较高与较低肿瘤负荷及较长生存期相关(p=0.0022)。 解释:NK细胞因具有强效抗肿瘤作用且不会引起移植物抗宿主病(GvHD),受到广泛关注,被视为有前景的现货型疗法;但对NK杀伤机制认识有限,阻碍了其临床应用。本研究揭示了激活配体B7H6在驱动NK细胞杀伤中的关键作用,尤其是在LT背景下。因此,B7H6表达水平可作为LT患者的预后标志物。此外,开发NK细胞免疫疗法时,提高B7H6及其对应受体NKp30的水平可能是最有效的策略。 经费:本研究获得韩国国家科学技术研究委员会(NST)项目(CAP-18-02-KRIBB、GTL24021-000)、国家研究基金会项目(2710012258、2710004815)及基础科学研究院项目(IBS-R029-C3)资助。

展开英文摘要原文

Natural killer (NK) cells are a subset of innate lymphoid cells that are inherently capable of recognizing and killing infected or tumour cells. This has positioned NK cells as a promising live drug for tumour immunotherapy, but limited success suggests incomplete knowledge of their killing mechanism. NK cell-mediated killing involves a complex decision-making process based on integrating activating and inhibitory signals from various ligand-receptor repertoires. However, the relative importance of the different activating ligand-receptor interactions in triggering NK killing remains unclear.

We employed a systematic approach combining clinical, in silico, in vitro, and in vivo data analysis to quantify the impact of various activating ligands. Clinical data analysis was conducted using massive pan-cancer data (n = 10,595), where patients with high NK cell levels were stratified using CIBERSORT. Subsequently, multivariate Cox regression and Kaplan-Meier (KM) survival analysis were performed based on activating ligand expression. To examine the impact of ligand expression on NK killing at the cellular level, we assessed surface expression of five major activating ligands (B7H6, MICA/B, ULBP1, ULBP2/5/6, and ULBP3) of human tumour cell lines of diverse origins (n = 33) via flow cytometry (FACs) and their NK cell-mediated cytotoxicity on by calcein-AM assay using human primary NK cells and NK-92 cell lines. Based on this data, we quantified the contribution of each activating ligand to the NK killing activity using mathematical models and Bayesian statistics. To further validate the results, we performed calcein-AM assays upon ligand knockdown and overexpression, conjugation assays, and co-culture assays in activating ligand-downregulated/overexpressed in liquid tumour (LT) cell lines. Moreover, we established LT-xenograft mouse models to assess the efficacy of NK cell targeting toward tumours with dominant ligands.

Through the clinical analysis, we discovered that among nearly all 18 activating ligands, only patients with LT who were NK cell-rich and specifically had higher B7H6 level exhibited a favorable survival outcome (p = 0.0069). This unexpected dominant role of B7H6 was further confirmed by the analysis of datasets encompassing multiple ligands and a variety of tumours, which showed that B7H6 exhibited the highest contribution to NK killing among five representative ligands. Furthermore, LT cell lines (acute myeloid leukemia (AML), B cell lymphoma, and T-acute lymphocytic leukemia (ALL)) with lowered B7H6 demonstrated decreased susceptibility to NK cell-mediated cytotoxicity compared to those with higher levels. Even within the same cell line, NK cells selectively targeted cells with higher B7H6 levels. Finally, LT-xenograft mouse models (n = 24) confirmed that higher B7H6 results in less tumour burden and longer survival in NK cell-treated LT mice (p = 0.0022). INTERPRETATION: While NK cells have gained attention for their potent anti-tumour effects without causing graft-versus-host disease (GvHD), thus making them a promising off-the-shelf therapy, our limited understanding of NK killing mechanisms has hindered their clinical application. This study illuminates the crucial role of the activating ligand B7H6 in driving NK cell killing, particularly in the context of LT. Therefore, the expression level of B7H6 could serve as a prognostic marker for patients with LT. Moreover, for the development of NK cell-based immunotherapy, focusing on increasing the level of B7H6 on its cognate receptor, NKp30, could be the most effective strategy. FUNDING: This work was supported by the National Research Council of Science & Technology (NST) grant (CAP-18-02-KRIBB, GTL24021-000), a National Research Foundation grant (2710012258, 2710004815), and an Institute for Basic Science grant (IBS-R029-C3).

论文信息

作者
Lee S、Chae SJ、Jang IH、Oh SC、Kim SM、Lee SY、Kim JH、Ko J
第一作者单位
Center for Cell and Gene Therapy, Korea Research Institute of Bioscience and Biotechnology (KRIBB), Daejeon, 34141, Republic of Korea; Division of Life Sciences, Korea University, Seoul, 02841, Republic of Korea.South Korea
通讯作者单位
Center for Cell and Gene Therapy, Korea Research Institute of Bioscience and Biotechnology (KRIBB), Daejeon, 34141, Republic of Korea; Biomedical Mathematics Group, Pioneer Research Center for Mathematical and Computational Sciences, Institute for Basic Science, Daejeon, 34126, Republic of Korea; KRIBB School of Bioscience, Korea University of Science and Technology (UST), Daejeon, 34113, Republic of Korea; Department of Biopharmaceutical Convergence, School of Pharmacy, Sungkyunkwan University, Suwon, 16419, Republic of Korea. Electronic address: tdkim@kribb.re.kr.South Korea
期刊
EBioMedicine2024 Dec
原文标识
PubMed 39579618 · DOI 10.1016/j.ebiom.2024.105459