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:RNA helicase SKIV2L impedes tumor immunity by reprogramming arginine metabolism of hepatocellular carcinomas.
我们的研究结果发现了一条新的c-Myc-SKIV2L-精氨酸代谢轴,该轴驱动HCC进展和免疫逃逸。靶向SKIV2L可重编程TME并重新激活抗肿瘤免疫,为克服HCC中对CAR T细胞疗法等免疫治疗的耐药性提供了一种有前景的治疗策略。
人类实体瘤如肝细胞癌(HCC)会建立复杂的免疫抑制性肿瘤微环境(TME),从而削弱现有免疫疗法(如CAR-T(CAR T)细胞疗法)的疗效。为推动HCC的免疫治疗进展,阐明驱动TME形成和免疫逃逸的分子机制至关重要。
我们整合了bulk和单细胞RNA测序分析,以评估免疫调控并进行通路富集分析。通过比较有或无SKIV2L敲低的HCC的增殖和肿瘤发生,揭示了SKIV2L的致癌作用。使用RNA测序、RNA免疫沉淀测序、免疫沉淀-质谱和邻近连接 assay 研究了SKIV2L驱动的机制。使用流式细胞术和肿瘤-T细胞共培养 assay 进行了SKIV2L在精氨酸代谢和抗肿瘤免疫中的功能研究。
SKIV2L在HCC中过表达,其表达水平与患者预后和肿瘤免疫细胞浸润呈负相关。敲除SKIV2L破坏了HCC的免疫抑制格局,增强了全身抗肿瘤免疫,并显著增强了CAR T细胞疗法的疗效。在机制上,SKIV2L通过招募GNL3来稳定编码精氨酸摄取和代谢关键调控因子的mRNA,包括精氨酸转运体SLC7A1和精氨酸分解代谢酶ARG2,从而促进HCC中的精氨酸代谢。这一SKIV2L-精氨酸轴促成了免疫抑制性TME并损害了T细胞功能。此外,SKIV2L被鉴定为c-Myc的直接转录靶点,将SKIV2L定位为c-Myc驱动肿瘤发生的可成药介质。
BACKGROUND AND AIMS: Human solid tumors such as hepatocellular carcinomas (HCC) establish a complex immunosuppressive tumor microenvironment (TME) that undermines the efficacy of existing immunotherapies such as chimeric antigen receptor T (CAR T) cell therapy. To advance immunotherapy for HCC, it is crucial to delineate the molecular mechanisms that drive TME formation and immune evasion. METHODS: We integrated bulk and single-cell RNA sequencing analysis to assess immune regulation and conduct pathway enrichment analyses. The oncogenic roles of SKIV2L were revealed by comparing the proliferation and tumorigenesis of HCC with or without SKIV2L knockdown. SKIV2L-driven mechanisms were investigated using RNA sequencing, RNA immunoprecipitation sequencing, immunoprecipitation-mass spectrometry, and proximity ligation assay. Functional studies of SKIV2L in arginine metabolism and anti-tumor immunity were performed using flow cytometry and tumor-T cell co-culture assays. RESULTS: SKIV2L was overexpressed in HCC, and its expression levels negatively correlated with patient prognosis and tumor immune cell infiltration. Depletion of SKIV2L disrupted the immunosuppressive landscape of HCC, enhanced systemic antitumor immunity, and significantly augmented the efficacy of CAR T cell therapy. Mechanistically, SKIV2L promoted arginine metabolism in HCC by recruiting GNL3 to stabilize mRNAs encoding key regulators of arginine uptake and metabolism, including the arginine transporter SLC7A1 and the arginine-catabolizing enzyme ARG2. This SKIV2L-arginine axis fostered an immunosuppressive TME and impaired T-cell function. Furthermore, SKIV2L was identified as a direct transcriptional target of c-Myc, positioning SKIV2L as a druggable mediator of c-Myc-driven oncogenesis. CONCLUSIONS: Our findings identify a novel c-Myc-SKIV2L-arginine metabolism axis that drives HCC progression and immune evasion. Targeting SKIV2L reprograms TME and reinvigorates antitumor immunity, providing a promising therapeutic strategy to overcome resistance to immunotherapy such as CAR T cell therapy in HCC.
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