LBPO.IM02 · 免疫学 · Late-Breaking
用于改善CAR T细胞功能的嵌合RNA结合蛋白高通量筛选
High-throughput screening of chimeric RNA-binding proteins for improved CAR T cell function
作者与单位 Authors & Affiliations
摘要 Abstract
中文摘要
基于基因改造细胞的免疫疗法在多种血液肿瘤中已获得成功;然而,复杂且免疫抑制的实体瘤微环境限制了细胞疗法对实体瘤的疗效,而实体瘤占据了大多数癌症。目前正在努力通过调控内源性基因的表达来达到更具治疗效力的T细胞状态,从而增强嵌合抗原受体(CAR)T细胞对抗实体瘤的活性并预防T细胞耗竭。一种有前景的策略涉及使用RNA结合蛋白(RBP),其通过mRNA剪接、输出、稳定性、降解和翻译来调控基因表达。近期研究表明,RBP在增殖、细胞因子产生、炎症反应和效应活性等T细胞功能中至关重要。然而,对内源性RBP的基因操作尚不足以在CAR T细胞中产生改善的效应表型以实现强效的肿瘤清除。为解决这一问题,我们通过组合来自不同天然RBP(参与免疫反应通路)的效应结构域和RNA结合结构域,合成了新型嵌合RBP,每个都标记有独特的DNA条形码。我们使用CRISPR-Cas12a编辑原代人类T细胞,将近12,000个嵌合RBP和一个CD19-28z CAR整合入内源性TRAC位点。在大规模混合敲入筛选中,我们将编辑后的CAR T细胞文库与应激剂量的Nalm6靶白血病细胞反复共培养,并进行急性和慢性抗原刺激实验以评估CAR T细胞的持久性。通过比较急性或慢性刺激实验前后的条形码读出,并将最丰富的条形码与增强的CAR T细胞增殖相关联,鉴定出最有效的嵌合RBP。多个嵌合RBP的表现优于天然RBP和仅CAR的对照,其中(N)YTHDF1-(RBD)ZFP36L1-(C)ZC3H12A成为最佳命中。在随后的功能验证实验中,这种合成蛋白诱导出独特的单细胞转录组特征,编辑后的细胞展现出优越的杀伤能力和独特的表型标志物。这些顶级嵌合RBP代表了值得进一步研究的有前景的候选者,可能带来改善的CAR T细胞疗法,从而克服实体瘤带来的挑战。该方法建立了一个可扩展的平台,用于发现和筛选下一代细胞疗法的新型合成基因。
查看英文原文 English abstract
Genetically modified cell-based immunotherapy has been successful in multiple liquid tumors; however, the complex and immunosuppressive solid tumor microenvironment has limited the efficacy of cell-based therapies for solid tumors, which account for the majority of cancers. There is ongoing effort to achieve a more therapeutically effective T cell state by modulating the expression of endogenous genes to enhance chimeric antigen receptor (CAR) T cell activity against solid tumors and prevent T cell exhaustion. One promising strategy involves the use of RNA-binding proteins (RBPs), which regulate gene expression through mRNA splicing, export, stability, degradation, and translation. Recent research indicates that RBPs are crucial in T cell functions such as proliferation, cytokine production, inflammatory responses, and effector activities. However, genetic manipulation of endogenous RBPs has not been sufficient to produce improved effector phenotypes in CAR T cells for robust tumor clearance. To address this, we synthesized novel chimeric RBPs by combining effector and RNA-binding domains from different natural RBPs involved in immune response pathways, each tagged with a unique DNA barcode. We edited primary human T cells using CRISPR-Cas12a to integrate a library of nearly 12,000 chimeric RBPs and a CD19-28z CAR into the endogenous TRAC locus. In large scale pooled knockin screens, we repetitively co-cultured the library of edited CAR T cells with stress doses of Nalm6 target leukemia cells, and performed both acute and chronic antigen stimulation assays to assess CAR T cell persistence . The most effective chimeric RBPs were identified by comparing barcode readouts before versus after the acute or chronic stimulation assays, and linking the most abundant barcodes to enhanced CAR T cell proliferation. Multiple chimeric RBPs outperformed both natural RBPs and CAR only controls, with (N)YTHDF1-(RBD)ZFP36L1-(C)ZC3H12A emerging as a top hit. In subsequent functional validation assays, this synthetic protein induced unique single-cell transcriptomic signatures, and the edited cells demonstrated superior killing capacity and distinct phenotypic markers. These top chimeric RBPs represent promising candidates for further study, potentially leading to improved CAR T cell therapies that can overcome the challenges posed by solid tumors. This approach establishes a scalable platform for the discovery and screening of new synthetic genes for next-generation cell therapies.
利益披露 Disclosure
C. Kernick, None..
O. Takacsi-Nagy, None..
A. Hartman, None..
L. Wu, None..
C. Chang, None..
A. Satpathy, None..
T. Roth, None.