RNF43 p.G659fs 通过 PI3K/AKT/mTOR 信号通路和 HLA-E 上调导致 MSI-high 结直肠癌中 NK 细胞功能障碍
RNF43 p.G659fs leads to natural killer cell dysfunction in MSI-high colorectal cancer through PI3K/AKT/mTOR signaling and HLA-E up-regulation.
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Multispecific targeting of glioblastoma with tumor microenvironment-responsive multifunctional engineered NK cells.
Multispecific targeting of glioblastoma with tumor microenvironment-responsive multifunctional engineered NK cells.
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肿瘤抗原异质性、严重免疫抑制的肿瘤微环境(TME)以及导致瘤内免疫浸润不足的淋巴细胞减少,使胶质母细胞瘤(GBM)对治疗高度耐药。为应对这些障碍,我们在此描述一种针对GBM的独特、精密的组合平台:一种基于基因工程改造的人自然杀伤(NK)细胞的协同多功能免疫疗法,这些NK细胞携带多种抗肿瘤功能,包括局部肿瘤响应性,可应对GBM治疗耐药的关键驱动因素:抗原逃逸、免疫反应的免疫代谢重编程以及免疫细胞归巢不良。
我们工程化改造了双特异性嵌合抗原受体(CAR)NK细胞,使其携带第三个功能模块,该模块在GBM TME中被激活,并可应对NK细胞功能的免疫代谢抑制:一种肿瘤特异性、局部释放的抗体片段,可独立于CAR信号抑制CD73活性并降低腺苷的局部浓度。这些多功能人NK细胞靶向患者来源的GBM异种移植瘤,在组织中表现出局部肿瘤部位特异性活性,并有效抑制腺苷产生。
我们还揭示了通过抑制自噬所诱导的GBM免疫谱的复杂重组。对自噬过程的药理学损伤不仅使GBM对NK细胞的抗原靶向更敏感,还促进了有利于NK浸润的趋化特征。
综上所述,我们的研究展示了一种有前景的基于NK细胞的组合策略,可同时靶向多种临床公认的GBM进展机制。
Tumor antigen heterogeneity, a severely immunosuppressive tumor microenvironment (TME) and lymphopenia resulting in inadequate immune intratumoral trafficking, have rendered glioblastoma (GBM) highly resistant to therapy.
To address these obstacles, here we describe a unique, sophisticated combinatorial platform for GBM: a cooperative multifunctional immunotherapy based on genetically engineered human natural killer (NK) cells bearing multiple antitumor functions including local tumor responsiveness that addresses key drivers of GBM resistance to therapy: antigen escape, immunometabolic reprogramming of immune responses, and poor immune cell homing.
We engineered dual-specific chimeric antigen receptor (CAR) NK cells to bear a third functional moiety that is activated in the GBM TME and addresses immunometabolic suppression of NK cell function: a tumor-specific, locally released antibody fragment which can inhibit the activity of CD73 independently of CAR signaling and decrease the local concentration of adenosine. The multifunctional human NK cells targeted patient-derived GBM xenografts, demonstrated local tumor site-specific activity in the tissue, and potently suppressed adenosine production.
We also unveil a complex reorganization of the immunological profile of GBM induced by inhibiting autophagy. Pharmacologic impairment of the autophagic process not only sensitized GBM to antigenic targeting by NK cells but promoted a chemotactic profile favorable to NK infiltration. Taken together, our study demonstrates a promising NK cell-based combinatorial strategy that can target multiple clinically recognized mechanisms of GBM progression simultaneously.
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