间皮素作为癌症免疫治疗的生物标志物和治疗靶点
Mesothelin as Biomarker and Therapeutic Target for Immunotherapy in Cancer.
癌症仍是一个关键的全球健康问题,原因在于发现晚、耐药和高死亡率。
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Triple checkpoint blockade of PD-1, Tim-3, and Lag-3 enhances adoptive T cell immunotherapy in a mouse model of ovarian cancer.
Triple checkpoint blockade of PD-1, Tim-3, and Lag-3 enhances adoptive T cell immunotherapy in a mouse model of ovarian cancer.
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卵巢癌患者的五年生存率仍低于50%,凸显了开发创新疗法的必要性。一种有前景的方法是对T细胞进行工程化改造,使其特异性靶向肿瘤中特异性过表达的蛋白,从而控制肿瘤生长而不损伤健康组织。间皮素(MSLN)参与卵巢癌的恶性和侵袭性表型,在健康细胞中的表达有限,因此可作为免疫治疗候选靶点。
我们此前在卵巢癌小鼠模型中的研究显示,工程化表达MSLN靶向T细胞受体(TCR)的T细胞(TCR^MSLN)具有治疗活性,可延缓肿瘤生长并延长小鼠生存期。
然而,肿瘤微环境(TME)表达的抑制性配体会与活化T细胞上的抑制性受体相互作用,抑制抗肿瘤功能。我们推测,工程化T细胞联合检查点阻断可增强T细胞功能并提高疗效,但单独给予靶向各个抑制通路的单特异性抗体,未能显著提升T细胞疗效。相比之下,工程化T细胞联合PD-1、Tim-3和Lag-3三重阻断,与单独抗体治疗或TCR^MSLN联合单药/双药抗体相比,显著改善了T细胞功能和动物总生存期。单细胞RNA测序显示,接受三抗联合治疗的TCR^MSLN T细胞中,干扰素应答和代谢功能相关基因表达升高,而与耗竭相关的基因表达降低。这些结果提示,同时阻断多条抑制通路的策略可能是提高患者过继性T细胞治疗疗效所必需的。
The five-year survival rate for ovarian cancer patients remains below 50%, underscoring the need for innovative therapies. One promising approach involves engineering T cells to specifically target proteins uniquely overexpressed in tumors, thereby controlling tumor growth without toxicity to healthy tissues. Mesothelin (MSLN) contributes to the malignant and invasive phenotype in ovarian cancer and has limited expression in healthy cells, making it a candidate immunotherapy target.
Our previous results in a mouse model of ovarian cancer demonstrated that T cells engineered to express a T cell receptor (TCR) targeting MSLN (TCR MSLN ) mediated therapeutic activity, delaying tumor growth and prolonging mouse survival.
However, inhibitory ligands expressed in the tumor microenvironment (TME) interacted with inhibitory receptors on activated T cells, suppressing antitumor function.
We hypothesized combining engineered T cells with checkpoint blockade would enhance T cell function and improve therapeutic efficacy, but administration of monospecific antibodies targeting individual inhibitory pathways had no significant impact on T cell efficacy. By contrast, the combination of PD-1, Tim-3, and Lag-3 blockade with engineered T cells significantly improved T cell function and overall animal survival relative to treatment with antibody alone or TCR MSLN with singlet or doublet antibody combinations.
Single-cell RNA sequencing revealed TCR MSLN T cells treated with the triplet antibody combination increased expression of genes involved in interferon responses and metabolic function, and reduced expression of genes associated with exhaustion. These results suggest that strategies to disrupt multiple inhibitory pathways simultaneously may be necessary for improved adoptive T cell therapy efficacy in patients.
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