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:ICOS-expressing CAR-T cells mediate durable eradication of triple-negative breast cancer and metastasis.
我们的研究突出了 ICOS 作为对抗三阴性乳腺癌复发和转移的有前景策略的潜在临床应用。
背景:常规疗法失败且易复发和转移,使三阴性乳腺癌(TNBC)成为极具挑战性的疾病,预后不佳且生存率较低。免疫疗法,包括免疫检查点阻断和嵌合抗原受体(CAR)T细胞疗法,为治疗TNBC提供了创新且可能更有效的策略。在这一背景下,诱导性共刺激分子(ICOS)属于CTLA4/CD28家族,通过与其配体ICOSL结合,在调节免疫应答和T细胞分化中发挥关键作用。然而,ICOS/ICOSL轴对癌症的影响并不一致。 方法:本研究通过免疫组织化学检测TNBC肿瘤组织中的ICOSL表达水平。我们采用第三代CAR-T技术开发ICOS增强型B7H3-CAR-T细胞(ICOS-B7H3-CAR),增强ICOS表达并靶向B7H3抗原。建立TNBC异种移植和转移模型,以考察肿瘤内CAR-T细胞的细胞毒性和持久性。通过过表达和CRISPR/Cas9介导的敲除(KO)调节TNBC细胞系中的ICOSL表达。 结果:我们观察到TNBC肿瘤组织中ICOSL表达升高,且与患者预后较差相关。与常规B7H3-CAR-T细胞相比,ICOS-B7H3-CAR-T细胞在体外和体内均显著抑制TNBC细胞生长,并伴随干扰素γ和肿瘤坏死因子α等细胞因子分泌增加。此外,体内实验显示,ICOS-B7H3-CAR-T细胞的抗肿瘤活性持续时间更长,并能有效清除TNBC转移模型中的转移灶,从而延长生存期。重要的是,通过过表达或敲除TNBC细胞ICOSL来改变其表达,显著影响ICOS-B7H3-CAR-T细胞功能。这提示TNBC细胞ICOSL表达水平对于增强ICOS-B7H3-CAR-T细胞强效抗肿瘤作用至关重要。 结论:总体而言,本研究强调ICOS在临床应用中的潜力,可作为应对TNBC复发和转移的有前景策略。
BACKGROUND: The failure of conventional therapies and the propensity for recurrence and metastasis make triple-negative breast cancer (TNBC) a formidable challenge with grim prognoses and diminished survival rates. Immunotherapy, including immune checkpoint blockade and chimeric antigen receptor (CAR)-T cell therapy, presents innovative and potentially more effective strategies for addressing TNBC. Within this context, the inducible costimulator (ICOS), a member of the CTLA4/CD28 family, plays a crucial role in regulating immune responses and T-cell differentiation by binding to its ligand ICOSL. However, the impact of the ICOS/ICOSL axis on cancer varies. METHODS: In this study, immunohistochemistry was conducted to examine the expression level of ICOSL in TNBC tumor tissues. We developed ICOS-enhanced B7H3-CAR-T cells (ICOS-B7H3-CAR) using the third-generation CAR-T cell technology, which featured magnified ICOS expression and targeted the B7H3 antigen. Xenograft and metastasis models of TNBC were conducted to examine the cytotoxicity and durability of CAR-T cells in tumors. Overexpression and CRISPR/Cas9-mediated knockout (KO) techniques were employed to regulate the expression of ICOSL on TNBC cell lines. RESULTS: Notably, we observed elevated ICOSL expression in TNBC tumor tissues, which correlated with poor survival prognosis in patients with TNBC. Compared with conventional B7H3-CAR-T cells, ICOS-B7H3-CAR-T cells significantly inhibited the tumor growth of TNBC cells both in vitro and in vivo, accompanied by increased secretion of cytokines such as interferon gamma and tumor necrosis factor alpha. Furthermore, the in vivo experiments illustrated that ICOS-B7H3-CAR-T cells exhibited prolonged antitumor activity and could effectively eradicate metastases in a TNBC metastasis model, consequently extending survival. Importantly, manipulating the expression of ICOSL on TNBC cells through overexpression or KO significantly influenced the function of ICOS-B7H3-CAR-T cells. This suggests that the level of ICOSL expression on TNBC cells is critical for enhancing the potent antitumor effects of ICOS-B7H3-CAR-T cells. CONCLUSION: Overall, our study highlights the potential clinical application of ICOS as a promising strategy for combating TNBC recurrence and metastasis.
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