PO.IM01.07 · 免疫学
生成可规模化的现货型iNKT疗法
Generation of scalable off-the-shelf iNKT therapies
作者与单位 Authors & Affiliations
摘要 Abstract
中文摘要
恒定型自然杀伤T细胞(iNKT)是一类罕见的T淋巴细胞,正作为一种现货型平台用于治疗血液和实体肿瘤、严重病毒感染以及移植物抗宿主病。这些特性有望改善全球对先进细胞免疫疗法的公平可及性。然而,供体来源的iNKT产品可规模化程度和持久性有限,阻碍了其在全球范围内的影响力。我们着手建立能够在体内长期持续存在的大规模iNKT现货型产品,包括经嵌合抗原受体工程化改造的增强型肿瘤重定向iNKT(CAR-iNKT)。
方法:为了研究临床相关的方法以扩增大规模现货型产品,我们测试了:1)包被alphaCD3/alphaCD28抗体的活化磁珠;2)负载α-半乳糖神经酰胺(alphaGC)的人工抗原呈递细胞(aAPC),通过工程化改造K562细胞使其表达CD80/CD83/CD86/41BBL并携带iNKT特异性抗原CD1d而生成;以及3)细胞来源纳米颗粒(CDNP,Synecta T1),这是一种无饲养细胞平台,经工程化改造以可规模化的封闭系统形式展示膜结合OKT3、共刺激配体和IL-7/IL-15细胞因子,在不使用活细胞系的情况下提供关键的类aAPC刺激信号。为了确定所产生的治疗潜力,我们通过体外4小时杀伤和细胞因子实验以及体内NSG异种移植评估了iNKT的纯度、产量、记忆/耗竭表型和抗肿瘤疗效。
结果:所有活化系统均产生了纯度高的iNKT产品。正如抗原特异性CD1d-alphaGC刺激所预期的那样,aAPC诱导了最高的iNKT产量。在反复刺激后维持增殖方面,CDNP与alphaCD3/alphaCD28磁珠同样有效。在表型上,aAPC诱导了最高的CD62L水平(一种已知的持久性预测指标),而CDNP表现出最有利的效应表型,包括最低的LAG-3和TIM-3表达。CDNP在体外对肿瘤靶标也表现出最强的细胞毒性,杀伤率高达60%,相比之下aAPC为25%、alphaCD3/alphaCD28磁珠为35%。在体内,aAPC制备的CAR-iNKT在单次输注后于荷骨肉瘤的NSG异种移植中持续存在90天——这是该类模型中报道的最长持久性——并与完全且持久的肿瘤根除相关。磁珠扩增的CAR-iNKT根除了肿瘤,但在相当的晚期时间点未被检测到。
结论:我们建立了可临床规模化的iNKT/CAR-iNKT制造工作流程,产出高纯度细胞。所有产品均表现出强效的抗肿瘤活性,但aAPC扩增的CAR-iNKT在体内实现了卓越的持久性,优于磁珠扩增的细胞。CDNP平台提供了一种可临床转化的无饲养细胞活化剂,实现了卓越的功能效力、降低的耗竭和监管就绪性(FDA审阅的DMF),使可规模化的现货型iNKT/CAR-iNKT疗法能够应用于广泛的适应症。
查看英文原文 English abstract
Invariant natural killer T cells (iNKTs) are rare T lymphocytes, emerging as an off-the-shelf platform for the treatment of blood and solid tumors, severe viral infections, and graft-versus-host disease. These features hold promise for improving global and equitable access to advanced cellular immunotherapies. However, limited scalability and persistence of donor-derived iNKT products hinder worldwide impact. We set out to establish large-scale iNKT off-the-shelf products capable of extended in vivo persistence, including enhanced tumor-redirected iNKTs engineered with chimeric antigen receptors (CAR-iNKT).
Methods. To investigate clinically relevant methods to expand large-scale off-the-shelf products, we tested: 1) activating beads coated with alphaCD3/alphaCD28 antibodies; 2) alpha-galactosylceramide (alphaGC)-loaded artificial antigen-presenting cells (aAPCs), generated by engineering K562 cells expressing CD80/CD83/CD86/41BBL with the iNKT-specific antigen CD1d; and 3) cell-derived nanoparticles (CDNPs, Synecta T1), a feeder-free platform engineered to display membrane-bound OKT3, co-stimulatory ligands, and IL-7/IL-15 cytokines in a scalable, closed-system format, providing key aAPC-like stimulation cues without using live cell lines. To determine the resulting therapeutic potential, we assessed iNKT purity, yield, memory/exhaustion phenotype, and anti-tumor efficacy via in vitro 4h killing and cytokine assays and in vivo NSG xenografts.
Results. All activation systems produced pure iNKT products. aAPCs induced the highest iNKT yield, as expected from antigen-specific CD1d-alphaGC stimulation. CDNPs were as effective as alphaCD3/alphaCD28 beads in sustaining proliferation after repeated stimulations. Phenotypically, aAPCs induced the highest CD62L levels, a known predictor of persistence, whereas CDNPs exhibited the most favorable effector profile, including the lowest LAG-3 and TIM-3 expression. CDNPs also showed the strongest in vitro cytotoxicity against tumor targets, with up to 60% killing as compared to aAPCs 25% and alphaCD3/alphaCD28 beads 35%. In vivo , aAPC-manufactured CAR-iNKTs persisted in osteosarcoma-bearing NSG xenografts for 90 days after a single infusion - the longest persistence reported in such a model - associated with complete and durable tumor eradication. Bead-expanded CAR-iNKTs eradicated tumors but were not detected at comparable late time points.
Conclusions. We established clinically scalable iNKT/CAR-iNKT manufacturing workflows yielding high-purity cells. All products exhibited potent anti-tumor activity, but aAPC-expanded CAR-iNKTs resulted in exceptional persistence in vivo , superior to bead-expanded cells. The CDNP platform provides a clinically translatable, feeder-free activator that achieves superior functional potency, reduced exhaustion, and regulatory readiness (FDA-reviewed DMF), enabling scalable off-the-shelf iNKT/CAR-iNKT therapy for a broad range of applications.
利益披露 Disclosure
J. J. Swain, None..
E. C. Whelan, None.
C. Hanindya,
BluWhale Bio Employment.
P. Keller,
BlueWhale Bio Employment, CEO.
A. Rotolo, None.