Specifically blocking αvβ8-mediated TGF-β signaling to reverse immunosuppression by modulating macrophage polarization.

IF 11.4 1区 医学 Q1 ONCOLOGY Journal of Experimental & Clinical Cancer Research Pub Date : 2025-01-02 DOI:10.1186/s13046-024-03250-1
Cuicui Guo, Hui Sun, Yulei Du, Xiaodong Dai, Yu Pang, Zhen Han, Xinhui Xiong, Shaowei Li, Junhua Zhang, Qingbing Zheng, Xun Gui
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Abstract

Background: Targeting the TGF-β pathway in tumor therapy has proven challenging due to the highly context-dependent functions of TGF-β. Integrin αvβ8, a pivotal activator of TGF-β, has been implicated in TGF-β signaling within tumors, as demonstrated by the significant anti-tumor effects of anti-αvβ8 antibodies. Nevertheless, the expression profile of αvβ8 remains a subject of debate, and the precise mechanisms underlying the anti-tumor effects of anti-αvβ8 antibodies are not yet fully elucidated.

Methods: We utilized single-cell RNA sequencing to assess αvβ8 expression across various human tumors. An anti-αvβ8 antibody was developed and characterized for its binding and blocking properties in vitro. Cryo-EM single-particle analysis was employed to study the detailed interaction between αvβ8 and the antibody Fab fragment. The anti-tumor efficacy of the antibody was evaluated in syngeneic mouse models with varying levels of αvβ8 expression, both as a monotherapy and in combination with PD-1 antibodies. Human PBMCs were isolated to investigate αvβ8 expression in myeloid cells, and macrophages were exposed to the antibody to study its impact on macrophage polarization. Pharmacokinetic studies of the αvβ8 antibody were conducted in cynomolgus monkeys.

Results: Integrin αvβ8 is notably expressed in certain tumor types and tumor-infiltrating macrophages. The specific αvβ8 antibody 130H2 demonstrated high affinity, specificity, and blocking potency in vitro. Cryo-EM analysis further revealed that 130H2 interacts exclusively with the β8 subunit, without binding to the αv subunit. In vivo studies showed that this antibody significantly inhibited tumor growth and alleviated immunosuppression by promoting immune cell infiltration. Furthermore, combining the antibody with PD-1 inhibition produced a synergistic anti-tumor effect. In human PBMCs, monocytes exhibited high αvβ8 expression, and the antibody directly modulated macrophage polarization. Tumors with elevated αvβ8 expression were particularly responsive to 130H2 treatment. Additionally, favorable pharmacokinetic properties were observed in cynomolgus monkeys.

Conclusions: In summary, integrin αvβ8 is highly expressed in certain tumors and tumor-infiltrating macrophages. Targeting αvβ8 with a blocking antibody significantly inhibits tumor growth by modulating macrophage polarization and enhancing immune cell infiltration. Combining αvβ8 targeting with PD-1 treatment markedly increases the sensitivity of immune-excluded tumors. These results support further clinical evaluation of αvβ8 antibodies.

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特异性阻断αvβ8介导的TGF-β信号通路,通过调节巨噬细胞极化逆转免疫抑制。
背景:由于TGF-β具有高度环境依赖性的功能,靶向TGF-β途径在肿瘤治疗中具有挑战性。整合素αvβ8是TGF-β的关键激活因子,抗αvβ8抗体具有显著的抗肿瘤作用,表明其参与肿瘤内TGF-β信号转导。然而,αvβ8的表达谱仍然是一个有争议的话题,抗αvβ8抗体抗肿瘤作用的确切机制尚未完全阐明。方法:利用单细胞RNA测序技术检测αvβ8在不同肿瘤中的表达。制备了一种抗αvβ8抗体,并对其体外结合和阻断特性进行了表征。采用Cryo-EM单粒子分析方法详细研究αvβ8与抗体Fab片段的相互作用。在αvβ8表达水平不同的同基因小鼠模型中,单药和联合PD-1抗体对该抗体的抗肿瘤效果进行了评估。分离人外周血单核细胞,研究αvβ8在骨髓细胞中的表达,并将抗体暴露于巨噬细胞,研究其对巨噬细胞极化的影响。对αvβ8抗体在食蟹猴体内进行了药动学研究。结果:整合素αvβ8在某些肿瘤类型及肿瘤浸润性巨噬细胞中显著表达。αvβ8特异性抗体130H2具有较高的亲和力、特异性和体外阻断能力。Cryo-EM分析进一步发现130H2只与β8亚基相互作用,不与αv亚基结合。体内研究表明,该抗体通过促进免疫细胞浸润,显著抑制肿瘤生长,减轻免疫抑制。此外,该抗体与PD-1抑制剂联合可产生协同抗肿瘤作用。在人外周血单核细胞中,αvβ8高表达,抗体直接调节巨噬细胞极化。αvβ8表达升高的肿瘤对130H2治疗反应特别明显。此外,在食蟹猴体内观察到良好的药代动力学特性。结论:综上所述,整合素αvβ8在某些肿瘤和肿瘤浸润性巨噬细胞中高表达。用阻断抗体靶向αvβ8,通过调节巨噬细胞极化和增强免疫细胞浸润,显著抑制肿瘤生长。αvβ8靶向联合PD-1治疗可显著提高免疫排斥肿瘤的敏感性。这些结果支持αvβ8抗体的进一步临床评价。
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来源期刊
CiteScore
18.20
自引率
1.80%
发文量
333
审稿时长
1 months
期刊介绍: The Journal of Experimental & Clinical Cancer Research is an esteemed peer-reviewed publication that focuses on cancer research, encompassing everything from fundamental discoveries to practical applications. We welcome submissions that showcase groundbreaking advancements in the field of cancer research, especially those that bridge the gap between laboratory findings and clinical implementation. Our goal is to foster a deeper understanding of cancer, improve prevention and detection strategies, facilitate accurate diagnosis, and enhance treatment options. We are particularly interested in manuscripts that shed light on the mechanisms behind the development and progression of cancer, including metastasis. Additionally, we encourage submissions that explore molecular alterations or biomarkers that can help predict the efficacy of different treatments or identify drug resistance. Translational research related to targeted therapies, personalized medicine, tumor immunotherapy, and innovative approaches applicable to clinical investigations are also of great interest to us. We provide a platform for the dissemination of large-scale molecular characterizations of human tumors and encourage researchers to share their insights, discoveries, and methodologies with the wider scientific community. By publishing high-quality research articles, reviews, and commentaries, the Journal of Experimental & Clinical Cancer Research strives to contribute to the continuous improvement of cancer care and make a meaningful impact on patients' lives.
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