PO.IM01.07 · 免疫学

改进用于CAR-NK免疫治疗结直肠癌的效应细胞

Improving effector cells for CAR-NK immunotherapy against colorectal cancer

海报缩略图:改进用于CAR-NK免疫治疗结直肠癌的效应细胞
编号 132 展板 6 时间 4/19 02:00–05:00 区域 Section 7 主讲 Enzo Medico, MD;PhD
分会场 Alternative Cell Type and in Situ Cell Therapies
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作者与单位 Authors & Affiliations

Marco Cortese, Alice D'Andrea, Alfonso Navarro Zapata, Sahar Taebi, Consalvo Petti, Enzo Medico

Candiolo Cancer Institute, FPO-IRCCS, Candiolo, Italy

摘要 Abstract

中文摘要
靶向癌胚抗原(CEA)的基于嵌合抗原受体(CAR)的免疫治疗代表了一种有前景的结直肠癌(CRC)治疗策略,CRC是全球癌症相关死亡的主要原因之一。相较于对实体瘤的活性受限于显著副作用的CAR-T细胞,CAR-NK细胞代表了一种潜在更安全的替代方案,在维持有效抗肿瘤活性的同时降低了毒性。因此,我们致力于开发和优化针对CRC的CEA特异性CAR-NK细胞,沿三条研究路线展开:(i) 在NK-92模型中选择和验证一个参考CEA CAR;(ii) 用白细胞介素对CEA.CAR-NK-92细胞进行进一步工程化;以及(iii) 探索其他NK效应细胞类型。为选择参考CEA CAR构建体,构建了基于两种不同亲和力scFv(hMN-14和BW431/26,分别为较高和较低亲和力)的第二代CAR。为每种构建体生成了稳定的NK-92克隆(较高亲和力:NK-92.F3克隆;较低亲和力:NK-92.G8克隆)并进行功能表征。在体外,NK-92.F3克隆对CEA阳性CRC细胞表现出更强的杀伤活性。在体内,在荷CEA+ CRC异种移植的NOD/Scid小鼠中,两个克隆表现出相当的活性,均显著减少肿瘤进展,证实了它们的治疗潜力。考虑到更高的亲和力和更好的体外表现,选择基于hMN-14的CAR作为NK平台后续演进的参考CAR。为增强CAR-NK-92的性能,将野生型NK-92和NK-92.F3细胞工程化以组成型表达不同的白细胞介素。功能实验表明,特定白细胞介素的表达显著提高了细胞毒性和激活水平,凸显细胞因子工程化作为增强CAR-NK活性的有效策略。为克服NK-92细胞的主要内在局限,即输注前需要辐照,我们研究了诱导多能干细胞(iPSC)来源的NK细胞(iNK),作为一种可再生且临床可规模化的替代NK来源。比较了四种iPSC向NK分化的方案,三种基于3D拟胚体中间体,一种基于2D单层。其中,一种3D方案和该2D方案被证明更为可靠。随后用参考CEA CAR转导iPSC细胞,克隆化,分化为NK,并验证其功能性和细胞毒性能。总之,这项工作鉴定了一个稳健的参考CEA-CAR构建体,并建立了两种互补策略——用细胞因子工程化增强效应功能,以及iPSC来源NK细胞生成以克服NK-92局限——为开发更安全、可规模化的新一代结直肠癌CAR-NK疗法奠定了基础。
查看英文原文 English abstract
Chimeric Antigen Receptor (CAR)-based immunotherapy targeting carcinoembryonic antigen (CEA) represents a promising strategy for the treatment of colorectal cancer (CRC), a leading cause of cancer-related mortality worldwide. With respect to CAR-T cells, whose activity against solid tumors is limited by significant side effects, CAR-NK cells represent a potentially safer alternative, offering reduced toxicity while maintaining effective anti-tumor activity. We therefore worked at developing and optimizing CEA-specific CAR-NK cells against CRC, along three research lines: (i) selection and validation of a reference CEA CAR in the NK-92 model; (ii) further engineering of CEA.CAR-NK-92 cells with interleukins, and (iii) exploration of additional NK effector types. To select the reference CEA CAR construct, second generation CARs based on two scFvs with different affinities (hMN-14 and BW431/26, respectively higher and lower affinity) were constructed. Stable NK-92 clones were generated for each construct (higher affinity: NK-92.F3 clone; lower affinity: NK-92.G8 clone) and functionally characterized. In vitro , the NK-92.F3 clone exhibited stronger killing activity against CEA-positive CRC cells. In vivo , in NOD/Scid mice bearing CEA+ CRC xenografts, the two clones displayed comparable activity, both significantly reducing tumor progression and confirming their therapeutic potential. Considering the higher affinity and the better in vitro performances, the hMN-14-based CAR was selected as the reference CAR for subsequent evolutions of the NK platform. To enhance CAR-NK-92 performances, wild-type NK-92 and NK-92.F3 cells were engineered to constitutively express different interleukins. Functional assays demonstrated that specific interleukin expression markedly increased cytotoxicity and activation, highlighting cytokine engineering as an effective strategy to potentiate CAR-NK activity. To overcome the major intrinsic limitation of NK-92 cells, i.e. the need for irradiation before infusion, we investigated induced pluripotent stem cell (iPSC)-derived NK cells (iNKs) as a renewable and clinically scalable alternative NK source. Four iPSC-to-NK differentiation protocols were compared, three based on 3D embryoid body intermediates and one on 2D monolayer. Of these, one 3D and the 2D protocol proved more reliable. iPSC cells were then transduced with the reference CEA CAR, cloned, differentiated into NK and validated for functionality and cytotoxic performances. In conclusion, this work identified a robust reference CEA-CAR construct and established two complementary strategies, cytokine engineering to enhance effector function and iPSC-derived NK cell generation to overcome NK-92 limitations, providing a foundation for the development of safer, scalable, and next-generation CAR-NK therapies for colorectal cancer.
利益披露 Disclosure
M. Cortese, None.. A. D'Andrea, None.. A. Navarro Zapata, None.. S. Taebi, None.. C. Petti, None.. E. Medico, None.

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