免疫检查点阻断通过扩增效应 CD8⁺ T 细胞克隆增强淋巴细胞清除性化疗诱导的抗肿瘤免疫
Immune Checkpoint Blockade Augments Lymphodepleting Chemotherapy-Induced Antitumor Immunity by Expanding Effector CD8+ T-cell Clones.
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:CSPG4 CAR-redirected Cytokine Induced Killer lymphocytes (CIK) as effective cellular immunotherapy for HLA class I defective melanoma.
CSPG4 CAR-redirected Cytokine Induced Killer lymphocytes (CIK) as effective cellular immunotherapy for HLA class I defective melanoma.
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在本研究中,我们报道了 CSPG4-CAR.CIK 对黑色素瘤(包括 HLA-I 表达低或缺陷的黑色素瘤)具有强烈的临床前活性。我们的发现支持 CSPG4 作为黑色素瘤中有价值的 CAR 靶点,并为在免疫检查点抑制剂无应答或复发的患者这一具有挑战性的情况下探索 CAR-CIK 细胞免疫疗法的临床研究提供了转化依据。
即使承认使用免疫检查点抑制剂(ICI)治疗转移性黑色素瘤取得了改变游戏规则的结果,但很大一部分患者(40-60%)仍然由于耐药性的发展而未能响应或复发。人类白细胞抗原I类(HLA-I)分子表达的改变被认为在ICI的临床耐药中起主要作用。在这种情况下,使用不依赖HLA的CAR重定向淋巴细胞的细胞免疫疗法是一种有前景的替代方案,需要专门的转化模型。
在本研究中,我们提出了一种不依赖HLA的治疗策略,即利用细胞因子诱导的杀伤淋巴细胞(CIK),通过基因工程改造使其表达针对肿瘤抗原CSPG4的嵌合抗原受体(CAR)作为效应机制。我们在体外以及异种移植小鼠模型中,研究了CSPG4-CAR.CIK的临床前抗肿瘤活性,重点关注HLA-I分子表达缺陷的患者来源黑色素瘤细胞系(Mel)。
我们成功地从转移性黑色素瘤患者中制备了CSPG4-CAR.CIK,并报道了其在体外对一组表达CSPG4的患者来源Mel具有强烈的活性。即使在极低的效靶比下,黑色素瘤杀伤活性依然强烈,且不受靶细胞上HLA-I分子表达水平(高、低、缺陷)的影响。此外,CAR.CIK条件培养基能够上调黑色素瘤细胞上HLA-I分子的表达。用外源性IFN-γ和IFN-α处理Mel细胞也重现了类似的免疫调节效应。CSPG4-CAR.CIK的抗黑色素瘤活性在体内得到了成功证实,在免疫缺陷小鼠中对HLA缺陷型Mel异种移植瘤获得了显著的肿瘤生长抑制。
Even acknowledging the game-changing results achieved in the treatment of metastatic melanoma with the use of immune checkpoint inhibitors (ICI), a large proportion of patients (40-60%) still fail to respond or relapse due to the development of resistance. Alterations in the expression of Human Leukocyte Antigen class I (HLA-I) molecules are considered to play a major role in clinical resistance to ICI. Cellular immunotherapy with HLA-independent CAR-redirected lymphocytes is a promising alternative in this challenging setting and dedicated translational models are needed.
In this study, we propose an HLA-independent therapeutic strategy with Cytokine Induced Killer lymphocytes (CIK) genetically engineered with a Chimeric Antigen Receptor (CAR) targeting the tumor antigen CSPG4 as effector mechanism. We investigated the preclinical antitumor activity of CSPG4-CAR.CIK in vitro and in a xenograft murine model focusing on patient-derived melanoma cell lines (Mel) with defective expression of HLA-I molecules.
We successfully generated CSPG4-CAR.CIK from patients with metastatic melanoma and reported their intense activity in vitro against a panel of CSPG4-expressing patient-derived Mel. The melanoma killing activity was intense, even at very low effector to target ratios, and not influenced by the expression level (high, low, defective) of HLA-I molecules on target cells. Furthermore, CAR.CIK conditioned medium was capable of upregulating the expression of HLA-I molecules on melanoma cells. A comparable immunomodulatory effect was replicated by treatment of Mel cells with exogenous IFN-γ and IFN-α. The antimelanoma activity of CSPG4-CAR.CIK was successfully confirmed in vivo, obtaining a significant tumor growth inhibition of an HLA-defective Mel xenograft in immunodeficient mice.
In this study we reported the intense preclinical activity of CSPG4-CAR.CIK against melanoma, including those with low or defective HLA-I expression. Our findings support CSPG4 as a valuable CAR target in melanoma and provide translational rationale for clinical studies exploring CAR-CIK cellular immunotherapies within the challenging setting of patients not responsive or relapsing to immune checkpoint inhibitors.
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