一种用于克服非小细胞肺癌治疗中抗原异质性的多靶向 CAR-T 细胞平台
A Multi-Targeting Chimeric Antigen Receptor-T Cell Platform to Overcome Antigen Heterogeneity in the Treatment of Non-Small Cell Lung Cancer.
这些发现支持采用多靶点CAR-T 策略来应对NSCLC及可能其他实体瘤中的抗原异质性。
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Colocalized targeting of TGF-β and PD-L1 by bintrafusp alfa elicits distinct antitumor responses.
Colocalized targeting of TGF-β and PD-L1 by bintrafusp alfa elicits distinct antitumor responses.
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BA 通过 PD-L1 结合将 TGF-β trap 靶向肿瘤,从而更有效地阻断 TGF-β。这种共定位靶向相对于单药联合治疗能引发独特且更优越的抗肿瘤反应。
Bintrafusp alfa (BA) 是一种双功能融合蛋白,设计用于在肿瘤微环境 (TME) 中同时共定位抑制两条免疫抑制通路:转化生长因子-β (TGF-β) 和程序性死亡配体 1 (PD-L1)。我们假设,BA 通过靶向 PD-L1 至肿瘤,使 TGF-β 陷阱 (TGF-βRII) 共定位至 TME,使其能够比全身性 TGF-β 阻断更有效地在肿瘤中螯合 TGF-β,从而增强抗肿瘤活性。
使用多种技术表征TGF-β trap的结合亲和力。在增殖实验和双向混合淋巴细胞反应实验中,比较了BA与抗PD-L1联合TGF-β trap或pan-TGF-β抗体fresolimumab的组合。在MC38肿瘤中进行了TIL(肿瘤浸润淋巴细胞)(TILs)的免疫表型分析和RNA测序(RNAseq)分析,评估BA或联合治疗后的基质和免疫景观。通过单细胞RNAseq(scRNAseq)和免疫染色研究了MC38肿瘤和人肺癌组织中TGF-β和PD-L1的共表达及其相关基因特征。在体外研究了BA诱导的TGF-β内化、降解和耗竭。
BA与fresolimumab对TGF-β1的内在结合力相当,但BA基于亲合力效应的结合亲和力增加了约80倍。BA对TGF-β依赖性且表达PD-L1的细胞增殖的抑制作用比TGF-β trap或fresolimumab更强效。与抗PD-L1联合TGF-β trap或fresolimumab相比,BA在体外增强了T细胞活化,并增加了MC38肿瘤中的TIL,这与疗效相关。与联合治疗相比,BA在TME中诱导了不同的基因表达,包括免疫相关基因特征的上调以及TGF-β调控通路活性的降低,如上皮-间质转化、细胞外基质沉积和纤维化。调节性T细胞、巨噬细胞、髓系免疫细胞和成纤维细胞是TME中关键的PD-L1/TGF-β1共表达细胞。scRNAseq分析提示BA对巨噬细胞表型具有调节作用,并经组织学评估证实。PD-L1/TGF-β1共表达也见于人类肿瘤中。最后,BA诱导TGF-β1在溶酶体内内化并降解。
Bintrafusp alfa (BA) is a bifunctional fusion protein designed for colocalized, simultaneous inhibition of two immunosuppressive pathways, transforming growth factor-β (TGF-β) and programmed death-ligand 1 (PD-L1), within the tumor microenvironment (TME). We hypothesized that targeting PD-L1 to the tumor by BA colocalizes the TGF-β trap (TGF-βRII) to the TME, enabling it to sequester TGF-β in the tumor more effectively than systemic TGF-β blockade, thereby enhancing antitumor activity.
Multiple technologies were used to characterize the TGF-β trap binding avidity. BA versus combinations of anti-PD-L1 and TGF-β trap or the pan-TGF-β antibody fresolimumab were compared in proliferation and two-way mixed lymphocyte reaction assays. Immunophenotyping of tumor-infiltrating lymphocytes (TILs) and RNA sequencing (RNAseq) analysis assessing stromal and immune landscape following BA or the combination therapy were performed in MC38 tumors. TGF-β and PD-L1 co-expression and their associated gene signatures in MC38 tumors and human lung carcinoma tissue were studied with single-cell RNAseq (scRNAseq) and immunostaining. BA-induced internalization, degradation, and depletion of TGF-β were investigated in vitro.
BA and fresolimumab had comparable intrinsic binding to TGF-β1, but there was an ~80× avidity-based increase in binding affinity with BA. BA inhibited cell proliferation in TGF-β-dependent and PD-L1-expressing cells more potently than TGF-β trap or fresolimumab. Compared with the combination of anti-PD-L1 and TGF-β trap or fresolimumab, BA enhanced T cell activation in vitro and increased TILs in MC38 tumors, which correlated with efficacy. BA induced distinct gene expression in the TME compared with the combination therapy, including upregulation of immune-related gene signatures and reduced activities in TGF-β-regulated pathways, such as epithelial-mesenchymal transition, extracellular matrix deposition, and fibrosis. Regulatory T cells, macrophages, immune cells of myeloid lineage, and fibroblasts were key PD-L1/TGF-β1 co-expressing cells in the TME. scRNAseq analysis suggested BA modulation of the macrophage phenotype, which was confirmed by histological assessment. PD-L1/TGF-β1 co-expression was also seen in human tumors. Finally, BA induced TGF-β1 internalization and degradation in the lysosomes.
BA more effectively blocks TGF-β by targeting TGF-β trap to the tumor via PD-L1 binding. Such colocalized targeting elicits distinct and superior antitumor responses relative to single agent combination therapy.
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