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建立靶向前列腺特异性膜抗原的多肽嵌合抗原受体工程化 NK 细胞用于去势抵抗性前列腺癌并诱导铁死亡相关细胞死亡

英文原题:The establishment of polypeptide PSMA-targeted chimeric antigen receptor-engineered natural killer cells for castration-resistant prostate cancer and the induction of ferroptosis-related cell death.

PubMed 2022/06/15(内容时间) Cancer Commun (Lond) Q1 · IF 28.4(JCR 2025)

研究概要

p-PSMA-CAR-NK92MI细胞可在体外和体内有效杀伤CRPC PSMA+细胞。该策略可能为CRPC患者提供额外的治疗选择。

研究思路结论见上方概要

去势抵抗性前列腺癌(CRPC)因缺乏有效治疗而死亡率高。基于嵌合抗原受体(CAR)的疗法是一种有前景的免疫治疗策略。在此,我们旨在设计一种新型CAR-自然杀伤(NK)细胞,对CRPC具有临床意义的杀肿瘤效果。

我们构建了基于CD244的重组慢病毒载体的新型CAR-NK92MI细胞。根据细胞裂解实验和CD107a表达水平,筛选了不同的胞内段(CD244、NKG2D或CD3ζ)以确定最佳候选。为了增强CAR对肿瘤抗原的亲和力,我们比较了针对前列腺特异性膜抗原(anti-PSMA)的特异性抗体与通过噬菌体展示组合文库筛选出的PSMA靶向多肽(p-PSMA)。随后,生成了同时对PSMA具有高亲和力和强杀瘤能力的CAR-NK92MI细胞。此外,我们在体外和体内验证了其肿瘤杀伤效果。通过流式细胞术和酶联免疫吸附试验,比较了NK92MI细胞与CAR-NK92MI细胞的细胞因子释放。此外,还探索了铁死亡相关细胞死亡作为可能的潜在机制。

构建了三种不同的CAR胞内区:CAR1(CD244)、CAR2(CD244、NKG2D)和CAR3(CD244、NKG2D和CD3ζ)。选择CAR2以赋予CAR-NK92MI细胞更强的杀肿瘤能力。与抗PSMA相比,p-PSMA对肿瘤抗原表现出增强的亲和力。因此,生成了p-PSMA-CAR-NK92MI细胞,其表达的CAR具有基于多肽的抗原结合区、胞内CD244和NKG2D共刺激结构域。它们能够选择性地成功杀伤PSMA+靶细胞,对PSMA阳性C4-2细胞的特异性裂解率为73.19%,对PSMA阴性PC3细胞为33.04%。此外,p-PSMA-CAR-NK92MI细胞的IFN-γ、TNF-α和颗粒酶B浓度显著高于NK92MI细胞。在CRPC癌症异种移植模型中,p-PSMA-CAR-NK92MI细胞显著抑制肿瘤生长,并比NK92MI细胞发挥更一致的杀伤效果。此外,铁死亡是CAR-NK92MI细胞攻击癌细胞的潜在机制,并由IFN-γ触发。

展开英文摘要原文

BACKGROUND: The mortality of castration-resistant prostate cancer (CRPC) is high due to lack of an effective treatment. Chimeric antigen receptor (CAR)-based therapy is a promising immunotherapeutic strategy. Here, we aimed to design a novel CAR-natural killer (NK) cells with a clinically significant tumoricidal effect on CRPC. METHODS: We constructed novel CAR-NK92MI cells with a CD244-based recombinant lentiviral vector. Different intracellular segments (CD244, NKG2D, or CD3ζ) were screened to identify the best candidate according to cell lysis assay and CD107a expression levels. To enhance the affinity of the CAR to the tumor antigen, we compared an antibody specific for prostate-specific membrane antigen (anti-PSMA) with PSMA-targeted polypeptide (p-PSMA), which was screened by phage display combinatorial library. Then, CAR-NK92MI cells with both a high affinity for PSMA and a strong tumoricidal capacity were generated. In addition, we verified their tumor-killing effect in vitro and in vivo. The release of cytokine by NK92MI cells was compared with that by CAR-NK92MI cells through flow cytometry and enzyme-linked immunosorbent assay. Moreover, ferroptosis-related cell death was explored as a possible underlying mechanism. RESULTS: Three different CAR intracellular regions CAR1 (CD244), CAR2 (CD244, NKG2D) and CAR3 (CD244, NKG2D, and CD3ζ) were constructed. CAR2 was chosen to confer a stronger tumoricidal ability on CAR-NK92MI cells. Compared with anti-PSMA, p-PSMA exhibited enhanced affinity for the tumor antigen. Thus, p-PSMA-CAR-NK92MI cells, which expressed CAR with a polypeptide-based antigen-binding region, an intracellular CD244 and a NKG2D costimulatory domain, were generated. They could selectively and successfully kill PSMA + target cells and exhibited specific lysis rate of 73.19% for PSMA-positive C4-2 cells and 33.04% for PSMA-negative PC3 cells. Additionally, p-PSMA-CAR-NK92MI cells had significantly higher concentrations of IFN-γ, TNF-α and granzyme B than NK92MI cells. In a CRPC cancer xenograft model, p-PSMA-CAR-NK92MI cells significantly inhibited tumor growth and exerted a more consistent killing effect than NK92MI cells. Moreover, ferroptosis is a potential mechanism through which CAR-NK92MI cells attack cancer cells, and is triggered by IFN-γ. CONCLUSIONS: p-PSMA-CAR-NK92MI cells can effectively kill CRPC PSMA+ cells in vitro and in vivo. This strategy may provide additional treatment options for patients with CRPC.

论文信息

作者
Wu L、Liu F、Yin L、Wang F、Shi H、Zhao Q、Yang F、Chen D
单位
State Key Laboratory of Molecular Oncology, National Cancer Center/National Clinical Research Center for Cancer/Cancer Hospital, Chinese Academy of Medical Sciences and Peking Union Medical College, Beijing, 100021, P. R. China.China
文献类型
非美国政府资助研究
期刊
Cancer communications (London, England)2022 Aug
原文标识
PubMed 35706368 · DOI 10.1002/cac2.12321