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:Leukemic Stem Cell-Targeted Liposomal Nanoimmunotherapy Reverses Immune Evasion and Inhibits Fusion Oncoprotein-Driven Acute Myeloid Leukemia by Silencing B-Cell Lymphoma 2.
急性髓系白血病(AML)是一种由白血病干细胞和免疫逃逸驱动的常见且侵袭性强的血液系统恶性肿瘤。
急性髓系白血病(AML)是一种由白血病干细胞和免疫逃逸驱动的常见且侵袭性强的血液系统恶性肿瘤。在其亚型中,混合谱系白血病-AF9(MLL-AF9)重排型AML极为致命,B细胞淋巴瘤2(Bcl2)作为一种关键抗凋亡蛋白,支持白血病细胞存活和免疫功能障碍。在此背景下靶向Bcl2对于瓦解致癌回路和恢复免疫活性至关重要。在此,我们从头合成了IL-3受体α链(IL-3Rα,通常称为分化簇123或CD123)靶向适配体连接脂质体纳米载体(CD123-si-Bcl2@LNPs),包封Bcl2 siRNA(CD123-si-Bcl2@LNPs),用于选择性靶向AML、破坏存活并恢复免疫。机制研究确立了一条此前未被表征的信号轴,其中MLL-AF9融合癌蛋白诱导转录因子c-Myb过表达。该诱导的c-Myb直接结合Bcl2启动子,上调Bcl2表达并增强STAT3表达及其Ser727自磷酸化。因此,该通路放大了IL-6驱动的免疫抑制并削弱了NK和CD8⁺ T细胞应答。纳米复合物介导的该特定信号轴破坏成功逆转了这些致癌和免疫抑制信号。治疗疗效使用患者来源异种移植(PDX)模型进行评估,该模型通过将MLL-AF9逆转录病毒过表达于从AML患者中分选的CD34⁺/CD38⁻白血病干细胞并植入NOD/SCID小鼠而生成。CD123-si-Bcl2@LNPs显著降低了体内白血病负荷。Bcl2 siRNA 封装脂质体纳米颗粒在体外和体内模型中均表现出强效的 Bcl2 敲低、凋亡诱导以及受损的白血病自我更新能力。治疗后免疫谱分析显示 NK 细胞(CD56⁺)表达增强,T 细胞耗竭逆转,CD8⁺ T 细胞活化以 CTLA-4 下调为标志。分化标志物分析显示 CD45+ 和 c-KIT+ 表达降低,同时髓系单核细胞分化标志物 CD11b 上调,表明髓系成熟和白血病干性降低。这种双重作用治疗策略通过 CD123-si-Bcl2@LNPs 治疗同时靶向 MLL-AF9 阳性 AML 细胞中的生存和免疫逃逸通路,为 MLL-AF9 阳性急性髓系白血病的未来转化潜力提供了一种有前景的精准导向纳米免疫治疗策略。意义声明:•CD123 适配体靶向脂质体纳米载体促进急性髓系白血病(AML)中 siRNA 的精准递送,显著提高 Bcl2 siRNA 的转染效率和稳定性。•siRNA 纳米疗法揭示了一个涉及 c-Myb、Bcl2 和 STAT3 轴的新型免疫逃逸轴,该轴对 AML 的进展至关重要。•靶向沉默 Bcl2 破坏白血病干细胞的生存网络。•纳米免疫疗法重振自然杀伤(NK)细胞和 CD8⁺ T 细胞的抗肿瘤活性。•脂质体 siRNA 疗法在 NOD/SCID 患者来源异种移植(PDX)小鼠模型中有效抑制 MLL-AF9 白血病。
Acute Myeloid Leukemia (AML) is a prevalent and aggressive hematologic cancer driven by leukemic stem cells and immune evasion. Among its subtypes, Mixed Lineage Leukemia-AF9 (MLL-AF9)- rearranged AML is exceptionally lethal, with B-cell lymphoma 2 (Bcl2), a key anti-apoptotic protein, supporting leukemic survival and immune dysfunction. Targeting Bcl2 in this context is crucial for dismantling oncogenic circuits and restoring immune activity. Here, we have synthesized, de novo, IL-3 receptor alpha chain (IL-3Rα, commonly known as cluster of differentiation 123 or CD123) targeted aptamer-tethered liposomal nanocarriers (CD123-si-Bcl2@LNPs) encapsulating Bcl2 siRNA (CD123-si-Bcl2@LNPs) for selective AML targeting, survival disruption, and immune restoration. Mechanistic studies established a previously uncharacterized signaling axis wherein the MLL-AF9 fusion oncoprotein induces the overexpression of the transcription factor c-Myb. This induced c-Myb binds directly to the Bcl2 promoter, upregulating Bcl2 expression and enhancing both STAT3 expression and its Ser727 autophosphorylation. Consequently, this pathway amplifies IL-6-driven immunosuppression and dampens NK and CD8⁺ T cell responses. Nanocomposite-mediated disruption of this specific axis successfully reversed these oncogenic and immunosuppressive signals. Therapeutic efficacy was evaluated using a patient-derived xenograft (PDX) model, generated by retroviral MLL-AF9 overexpression in CD34⁺/CD38⁻ sorted leukemic stem cells from AML patients and engraftment into NOD/SCID mice. CD123-si-Bcl2@LNPs significantly reduced leukemic burden in vivo. Bcl2 siRNA encapsulated liposomal nanoparticles demonstrated robust Bcl2 knockdown, apoptosis induction, and impaired leukemic self-renewal across in vitro and in vivo models. Post-treatment immune profiling revealed enhanced NK cell (CD56⁺) expression and reversal of T cell exhaustion, with CD8⁺ T cell activation marked by downregulation of CTLA-4. Differentiation marker analysis revealed decreased CD45+ and c-KIT+ expression, accompanied by an upregulation of the myeloid monocyte differentiation marker CD11b, indicating myeloid maturation and a reduction in leukemic stemness. This dual-action therapeutic strategy simultaneously targets survival and immune evasion pathways in MLL-AF9-positive AML cells by the treatment of CD123-si-Bcl2@LNPs, offering a promising, precision-guided nano-immunotherapeutic strategy for future translational potential for MLL-AF9-positive acute myeloid leukemia. STATEMENT OF SIGNIFICANCE: •The CD123 aptamer-targeted liposomal nanocarrier facilitates precise siRNA delivery in acute myeloid leukemia (AML), significantly enhancing the transfection efficiency and stability of Bcl2 siRNA. •siRNA nanotherapy reveals a novel immune-evasion axis involving c-Myb, Bcl2, and STAT3 axis which is critical for the progression of AML. •Targeted silencing of Bcl2 disrupts the survival networks of leukemic stem cells. •Nano-immunotherapy revitalizes the antitumor activity of natural killer (NK) cells and CD8⁺ T-cells. •Liposomal siRNA therapy effectively suppresses MLL-AF9 leukemia in NOD/SCID patient-derived xenograft (PDX) mouse models.
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