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

海报缩略图:病毒样颗粒的功能化以改进体内免疫细胞工程
编号 269 展板 12 时间 4/19 02:00–05:00 区域 Section 12 主讲 Frances Maureen Rocamora, PhD
分会场 Gene and Vector-Based Therapy
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作者与单位 Authors & Affiliations

Frances Rocamora1, Matthew S. Kim1, Barbara S. Perez2, Vivian Le1, Trinidad Kellemen1, Enaaya Mahmood1, Dan Kaufman1

1UC San Diego School of Medicine, La Jolla, CA,2UC San Francisco, San Francisco, CA

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.

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