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:Antibody-targeted T cells and natural killer cells for cancer immunotherapy.
Antibody-targeted T cells and natural killer cells for cancer immunotherapy.
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本研究表明,将非遗传学方法用于重定向细胞毒性免疫细胞,作为肿瘤靶向细胞免疫治疗的一种可行且有效的方法具有潜力。
过继性细胞癌症治疗旨在重新改造患者的免疫细胞,以发起抗肿瘤反应。CAR-T 细胞和NK 细胞已被改造,并证明在治疗某些癌症方面取得成功;然而,用于改造的遗传方法繁琐、昂贵且效率低下,并且当它们过度增殖时可能导致严重的毒性。
我们研究了是否可以通过将抗体锚定在活化的T细胞和NK细胞表面,将其杀伤能力靶向癌细胞。利用代谢糖工程将叠氮基团引入细胞表面,我们通过应变促进的炔-叠氮环加成反应,共价连接了一种二苯并环辛炔修饰的抗体,从而构建了抗体偶联的T细胞和NK细胞。我们使用14F7hT抗体将免疫细胞靶向具有异种抗原N-羟乙酰神经氨酸GM3神经节苷脂的肿瘤。这些活化的T细胞和NK细胞被“武装”以具备肿瘤归巢能力,能够特异性裂解抗原阳性癌细胞,且无脱靶毒性。此外,当暴露于靶细胞时,未预先活化的14F7hT偶联T细胞表现出穿孔素、颗粒酶、CD69和CD25表达增加以及特异性细胞杀伤。
Adoptive cell cancer therapies aim to re-engineer a patient's immune cells to mount an anti-cancer response. Chimeric antigen receptor T and natural killer cells have been engineered and proved successful in treating some cancers; however, the genetic methods for engineering are laborious, expensive, and inefficient and can cause severe toxicities when they over-proliferate.
We examined whether the cell-killing capacity of activated T and NK cells could be targeted to cancer cells by anchoring antibodies to their cell surface. Using metabolic glycoengineering to introduce azide moieties to the cellular surface, we covalently attached a dibenzocyclooctyne-modified antibody using the strain-promoted alkyne azide cycloaddition reaction, creating antibody-conjugated T and NK cells. We targeted the immune cells to tumors possessing the xenoantigen, N-glycolyl neuraminic acid GM3 ganglioside, using the 14F7hT antibody. These activated T and NK cells are "armed" with tumour-homing capabilities that specifically lyses antigen-positive cancer cells without off-target toxicities. Moreover, when exposed to target cells, 14F7hT-conjugated T cells that are not preactivated exhibit increased perforin, granzyme, CD69, and CD25 expression and specific cell killing.
This research shows the potential for a non-genetic method for redirecting cytotoxic immune cells as a feasible and effective approach for tumor-targeted cell immunotherapy.
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