决定异体 CAR T 细胞排斥与扩增的细胞和分子机制
Cellular and molecular mechanisms determining allogeneic CAR T cell rejection and expansion.
我们评估了11例接受单一批次cemacabtagene ansegedleucel(cema-cel)治疗的大B细胞淋巴瘤患者,cemacabtagene ansegedleucel是一种异体抗CD19 CAR T产品。
英文原题:Reprogramming the breast tumor immune microenvironment: cold-to-hot transition for enhanced immunotherapy.
本综述探讨将乳腺肿瘤免疫微环境从免疫抑制性冷状态重编程为免疫活性热状态。
本综述讨论如何将乳腺肿瘤免疫微环境从免疫抑制的“冷”状态重编程为免疫活跃的“热”状态。研究揭示了复杂的相互作用:乳酸、活性氧(ROS)和氨等代谢副产物蓄积会损害T细胞功能并促进肿瘤免疫逃逸。肿瘤微环境(TME)中白细胞介素10(IL-10)、转化生长因子(TGF)和IL-35等免疫抑制性细胞因子占主导。值得注意的是,IL-35由调节性T细胞和乳腺癌细胞产生。常规T细胞转化为产生IL-35的诱导型调节性T细胞,加之促炎细胞因子分泌受抑,共同抑制抗肿瘤免疫。PD-1、PD-L1、CTLA-4、TIM-3、LAG-3和TIGIT等关键免疫检查点分子在TME中上调,导致T细胞耗竭和免疫应答减弱;阻断这些检查点可恢复T细胞功能,并有望通过增强效应细胞浸润将冷肿瘤转化为热肿瘤。综述还探讨嵌合抗原受体(CAR)T细胞疗法的治疗潜力,重点介绍靶向糖蛋白和受体酪氨酸激酶等特定肿瘤相关抗原。将CAR-T细胞与免疫检查点抑制剂及其他免疫调节药物联合,有望提高其疗效并克服免疫抑制性TME所设障碍。文中还回顾微生物组调控雌激素代谢和全身炎症的作用;肠道菌群改变可影响TME,基于微生物组的干预可作为促进冷转热的另一种手段。综上,通过结合检查点阻断、CAR-T疗法和微生物组调节等策略,靶向免疫抑制相关代谢及免疫通路,有望将乳腺肿瘤TME由冷转热,增强免疫细胞浸润和功能,从而提高免疫治疗整体疗效并改善乳腺癌患者结局。
This review discusses reprogramming the breast tumor immune microenvironment from an immunosuppressive cold state to an immunologically active hot state. A complex interplay is revealed, in which the accumulation of metabolic byproducts-such as lactate, reactive oxygen species (ROS), and ammonia-is shown to impair T-cell function and promote tumor immune escape. It is demonstrated that the tumor microenvironment (TME) is dominated by immunosuppressive cytokines, including interleukin-10 (IL-10), transforming growth factor (TGF ), and IL-35. Notably, IL-35 is produced by regulatory T cells and breast cancer cells. The conversion of conventional T cells into IL-35-producing induced regulatory T cells, along with the inhibition of pro-inflammatory cytokine secretion, contributes to the suppression of anti-tumor immunity. It is further demonstrated that key immune checkpoint molecules-such as PD-1, PDL1, CTLA-4, TIM-3, LAG-3, and TIGIT-are upregulated within the TME, leading to Tcell exhaustion and diminished immune responses. The blockade of these checkpoints is shown to restore T-cell functionality and is proposed as a strategy to convert cold tumors into hot ones with robust effector cell infiltration. The therapeutic potential of chimeric antigen receptor (CAR)T cell therapy is also explored, and targeting specific tumor-associated antigens, such as glycoproteins and receptor tyrosine kinases, is highlighted. It is suggested that CART cell efficacy can be enhanced by combining these cells with immune checkpoint inhibitors and other immunomodulatory agents, thereby overcoming the barriers imposed by the immunosuppressive TME. Moreover, the role of the microbiome in regulating estrogen metabolism and systemic inflammation is reviewed. Alterations in the gut microbiota are shown to affect the TME, and microbiome-based interventions are proposed as an additional means to facilitate the cold-to-hot transition. It is concluded that by targeting the metabolic and immunological pathways that underpin immune suppression-through combination strategies involving checkpoint blockade, CART cell therapies, and microbiome modulation-the conversion of the breast TME from cold to hot can be achieved. This reprogramming is anticipated to enhance immune cell infiltration and function, thereby improving the overall efficacy of immunotherapies and leading to better clinical outcomes for breast cancer patients.
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