PO.ET04.01 · 实验与分子治疗
病毒样颗粒的功能化以改进体内免疫细胞工程
Functionalization of virus-like particles for improved in vivo immune cell engineering
作者与单位 Authors & Affiliations
摘要 Abstract
中文摘要
为解决传统嵌合抗原受体(CAR)T细胞制造的局限性,我们开发了一种基于功能化病毒样颗粒(VLP)的新型体内CAR工程平台,这些VLP与最小病毒基因组自组装,以高效包装和递送mRNA载荷。我们的初步研究比较了用VSV-G假型慢病毒(LV)转导的原代人T细胞与用我们的mRNA递送VLP和形成环状DNA的非整合型LV(NILV)转导的原代人T细胞中转基因(GFP)表达的水平和稳定性。在这些研究中,在等效滴度下,我们的VLP比LV和NILV多转导超过20%的细胞。正如预期,VLP处理和NILV处理的T细胞中的GFP表达在移除VLP后72小时下降,这与瞬时转基因表达一致。为进一步改进该平台,我们以两种方式修饰了VLP包膜。首先,我们添加了一个抗CD3靶向单链可变片段(scFv),其融合于VSV-G融合蛋白的低密度脂蛋白(LDL)受体盲突变体(VSVg mut)。该构建体促进T细胞特异性靶向而无非特异性细胞结合。在T细胞与Raji B细胞的共培养模型中,我们证明我们的scFv包被VLP可转导多达15%的T细胞,而不到1%的B细胞被转导。由于该靶向分子来源于博纳吐单抗(blinatumomab),抗CD3 scFv包被的VLP相较于非功能化VLP对照还诱导了原代人T细胞中激活标志物CD69和CD25的上调。其次,我们对VLP进行工程改造以表达一种免疫增强分子,以同时改进mRNA递送并增强工程化T细胞的细胞毒活性。虽然递送抗CD19 CAR的scFv包被VLP转导了不到5%的静息原代T细胞,但增强子包被的VLP转导了约35%的细胞,双功能化VLP(scFv+增强子)转导了约24%的细胞。接下来,我们使用体外活细胞成像实验(Incucyte)定量了功能化VLP处理的静息T细胞在72小时内对CD19+ Nalm6细胞的杀伤。仅用抗CD3 scFv包被VLP处理的细胞未引发显著的抗肿瘤活性(表现为肿瘤细胞持续生长),而仅使用增强子包被VLP靶向T细胞使肿瘤细胞相比对照靶向T细胞减少约75%。值得注意的是,用双功能化VLP(抗CD3 scFv加增强子)处理的T细胞导致肿瘤细胞几乎完全杀伤(>95%)。总之,我们通过抗CD3和功能化包膜进行双重免疫细胞靶向的新型VLP系统在体外增强了mRNA递送和抗CD19 CAR-T细胞介导的细胞毒性。使用人源化小鼠模型的体内研究正在进行中,以验证这种体内工程和抗肿瘤疗效。
查看英文原文 English abstract
To address the limitations of conventional chimeric antigen receptor (CAR) T cell manufacturing, we developed a novel in vivo CAR engineering platform based on functionalized virus-like particles (VLPs) that self-assemble with a minimal viral genome to efficiently package and deliver mRNA payloads. Our initial studies compared the level and stability of transgene (GFP) expression in primary human T cells transduced with VSV-G pseudotyped lentivirus (LV) with those transduced with our mRNA-delivering VLPs and circular DNA-forming non-integrating LV (NILV). In these studies, our VLPs transduce over 20% more cells at an equivalent titer than both LV and NILV. As expected, GFP expression from VLP-treated and NILV-treated T cells declined 72 hours after VLP removal, consistent with transient transgene expression. To further improve the platform, we modified the VLP envelope in two ways. First, we added an anti-CD3-targeting single-chain variable fragment (scFv) fused to a low-density lipid (LDL) receptor-blind mutant of the VSV-G fusogen protein (VSVg mut). This construct promotes T cell-specific targeting without non-specific cell binding. In a co-culture model of T cells and Raji B cells, we demonstrated that our scFv-coated VLPs can transduce up to 15% of T cells while less than 1% of B cells are transduced. Because the targeting molecule is derived from blinatumomab, anti-CD3 scFv-coated VLPs also induced upregulation of activation markers CD69 and CD25 in primary human T cells relative to a non-functionalized VLP control. Second, we engineered our VLPs to express an immune-enhancing molecule to both improve mRNA delivery and augment the cytotoxic activity of engineered T cells. While scFv-coated VLPs delivering an anti-CD19 CAR transduced less than 5% of rested primary T cells, enhancer-coated VLPs transduced about 35% of cells and dual-functionalized VLPs (scFv + enhancer) transduced approximately 24% of cells. Next, we used in vitro live cell imaging assays (Incucyte) to quantify killing of CD19+ Nalm6 cells with functionalized VLP-treated rested T cells over 72 hours. While the cells treated with only anti-CD3 scFv-coated VLPs did not elicit a significant anti-tumor activity (demonstrated by continued growth of the tumor cells), targeting T cells using just the enhancer-coated VLPs lead to ~75% decrease in tumor cells compared to control targeted T cells. Notably, T cells treated with dual functionalized VLPs (anti-CD3 scFv plus enhancer) led to almost complete tumor cell killing (>95%). In conclusion, our novel VLP system with using dual immune cell targeting via anti-CD3 and functionalized envelope enhances mRNA delivery and anti-CD19 CAR-T cell-mediated cytotoxicity in vitro . In vivo studies using humanized mouse models are underway to validate this in vivo engineering and anti-tumor efficacy.
利益披露 Disclosure
F. Rocamora, None..
M. S. Kim, None..
B. S. Perez, None..
V. Le, None..
T. Kellemen, None..
E. Mahmood, None.