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:PM21-particle stimulation augmented with cytokines enhances NK cell expansion and confers memory-like characteristics with enhanced survival.
PM21-particle stimulation augmented with cytokines enhances NK cell expansion and confers memory-like characteristics with enhanced survival.
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NK 细胞疗法作为潜在癌症治疗方式已受到广泛关注。为发挥治疗作用,NK 细胞需要活化并扩增,以获得足够数量和强效功能,满足有效剂量要求。通常需在体外用细胞因子刺激以增强功能,或扩增 10–14 天以同时增加活性和数量。人们非常希望建立可靠方法,以制备高剂量、高效力的现货型 NK 细胞产品。既往研究显示,IL-12、IL-15 和 IL-18 联合刺激可使 NK 细胞获得记忆样特性、增强抗肿瘤活性并提高持久性。尽管该方法产生了具备良好临床特性的 NK 细胞,早期血液肿瘤治疗结果也令人鼓舞,但其规模化能力有限、起始剂量存在差异,且必须个体化制备,阻碍了更广泛应用。
本研究将源自 K562-41BBL-mbIL21 细胞的 PM21 颗粒刺激,与 IL-12、IL-15 和 IL-18 细胞因子诱导记忆样特性的方案结合,制备抗肿瘤功能增强的 NK 细胞。细胞因子联合颗粒(CAP)显著促进 NK 细胞扩增,14 天内达到 8,200 倍。
机制上,与单用 PM21 颗粒扩增相比的显著改善,源于关键刺激配体受体(4-1BBL 和 IL-2 受体)上调并形成协同作用,促进 NK 细胞大量生长,显示其治疗应用潜力。CAP-NK 细胞在体外和体内均表现出代谢适应性、持久性及抗肿瘤功能增强。
最后,CAP-NK 可适配现有治疗性 NK 产品开发技术,包括利用 CRISPR/Cas9 实现三基因敲除或基因敲入。总体而言,在已有效的 PM21 颗粒体外制备方法中加入细胞因子,可进一步增强 NK 细胞扩增,产生更利于生产和治疗应用的优质 NK 细胞产品。
NK cell therapeutics have gained significant attention as a potential cancer treatment. Towards therapeutic use, NK cells need to be activated and expanded to attain high potency and large quantities for an effective dosage. This is typically done by ex vivo stimulation with cytokines to enhance functionality or expansion for 10-14 days to increase both their activity and quantity. Attaining a robust methodology to produce large doses of potent NK cells for an off-the-shelf product is highly desirable.
Notably, past reports have shown that stimulating NK cells with IL-12, IL-15, and IL-18 endows them with memory-like properties, better anti-tumor activity, and persistence. While this approach produces NK cells with clinically favorable characteristics supported by encouraging early results for the treatment of hematological malignancies, its limited scalability, variability in initial doses, and the necessity for patient-specific production hinder its broader application.
In this study, stimulation of NK cells with PM21-particles derived from K562-41BBL-mbIL21 cells was combined with memory-like induction using cytokines IL-12, IL-15, and IL-18 to produce NK cells with enhanced anti-tumor function. The use of cytokines combined with PM21-particles (cytokine and particle, CAP) significantly enhanced NK cell expansion, achieving a remarkable 8,200-fold in 14 days.
Mechanistically, this significant improvement over expansion with PM21-particles alone was due to the upregulation of receptors for key stimulating ligands (4-1BBL and IL-2), resulting in a synergy that drives substantial NK cell growth, showcasing the potential for more effective therapeutic applications. The therapeutic potential of CAP-NK cells was demonstrated by the enhanced metabolic fitness, persistence, and anti-tumor function both in vitro and in vivo .
Finally, CAP-NK cells were amenable to current technologies used in developing therapeutic NK cell products, including CRISPR/Cas9-based techniques to generate a triple-gene knockout or a gene knock-in. Taken together, these data demonstrate that the addition of cytokines enhanced the already effective method of ex vivo generation of therapeutic NK cells with PM21-particles, yielding a superior NK cell product for manufacturing efficiency and potential therapeutic applications.
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