CAR-T(CAR-T)细胞疗法在非肿瘤性疾病中的应用
Chimeric antigen receptor T (CAR-T) cell therapy in non-oncological diseases.
CAR-T(CAR-T)细胞在血液系统恶性肿瘤中的应用推动了这种免疫治疗形式的显著进展。
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Construction and Functional Evaluation of Cyclic Peptide-Based CAR T Cells in Tumor Models.
Construction and Functional Evaluation of Cyclic Peptide-Based CAR T Cells in Tumor Models.
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环肽正逐渐成为嵌合抗原受体(CAR)工程中一类有前景的识别模块。与基于单链可变片段(scFv)的CAR相比,二硫键导向多环肽(DDMPs)代表了一种新型替代方案,具有显著更小的分子尺寸(<5 kDa)、通过二硫键导向环化增强的结构稳定性,以及对序列多样化的广泛耐受性,从而支持系统性的亲和力和特异性优化。基于DDMP的CAR-T 细胞利用这些特性介导抗原依赖性细胞毒性,同时表现出减弱的细胞因子分泌特征,支持开发针对实体瘤的潜在更安全的免疫疗法。
在此,我们提出了一套涵盖CAR构建体设计与生成以及体外和体内功能评估的完整工作流程。虽然DDMPs被用作示例性识别模块,但方案的A部分和C-L部分可直接适用于任何CAR形式,包括基于scFv和纳米抗体的设计,仅需极少修改,使该工作流程可被更广泛的CAR-T 细胞研究群体所使用。该方案包括Jurkat NFAT报告细胞系和表达荧光素酶的肿瘤靶细胞系的生成,这些细胞系广泛用于不同的检测中。
总之,这些标准化的读出指标使得能够在不同肿瘤模型中严格、客观地比较CAR-T 细胞的疗效和安全性。关键特征 DDMPs(<5 kDa)是紧凑的、二硫键环化的抗原识别模块,可耐受广泛的序列多样化,使得能够实现超越传统基于scFv的CAR的亲和力和特异性优化。一个整合流程将所有功能性比较归一化至CAR阳性细胞数,消除了转导效率作为构建体设计间混杂变量的影响。互补性读出交叉验证疗效与特异性:NFAT激活、基于发光的杀伤、基于流式细胞术的细胞裂解以及基于ELISA的细胞因子分泌。通过体内成像系统(IVIS)进行的异种移植成像验证了DDMP-CAR-T 细胞的抗肿瘤活性,将交叉验证扩展至临床前肿瘤模型。
Cyclic peptides are emerging as a promising class of recognition modules for chimeric antigen receptor (CAR) engineering. Compared with single-chain variable fragment (scFv)-based CARs, disulfide-directed multicyclic peptides (DDMPs) represent a novel alternative, offering a markedly smaller molecular size (<5 kDa), enhanced structural stability through disulfide-directed cyclization, and broad tolerance to sequence diversification that supports systematic affinity and specificity optimization.
DDMP-based CAR T cells leverage these properties to mediate antigen-dependent cytotoxicity while exhibiting an attenuated cytokine secretion profile, supporting the development of potentially safer immunotherapies for solid tumors.
Here, we present a comprehensive workflow spanning CAR construct design and generation through in vitro and in vivo functional evaluation. While DDMPs are used as the exemplar recognition module, sections A and C-L of the protocol are directly applicable to any CAR format, including scFv- and nanobody-based designs with minimal modifications, making the workflow accessible to the broader CAR T-cell research community.
The protocol includes the generation of Jurkat NFAT reporter cell lines and luciferase-expressing tumor target lines, which are widely used in different assays.
Together, these standardized readouts enable rigorous, objective comparison of CAR T-cell efficacy and safety across tumor models. Key features DDMPs (<5 kDa) are compact, disulfide-cyclized antigen recognition modules that tolerate extensive sequence diversification, enabling affinity and specificity optimization beyond conventional scFv-based CARs.
An integrated pipeline normalizes all functional comparisons to CAR-positive cell numbers, eliminating transduction efficiency as a confounding variable across construct designs. Complementary readouts cross-validate efficacy and specificity: NFAT activation, luminescence-based killing, flow cytometry-based cytolysis, and ELISA-based cytokine secretion. Xenograft imaging via the in vivo imaging system (IVIS) validates DDMP-CAR T-cell antitumor activity, extending cross-validation to preclinical tumor models.
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