不适合移植的大 B 细胞淋巴瘤二线使用 axicabtagene ciloleucel:ALYCANTE 最终分析
Second-line axicabtagene ciloleucel in large B-cell lymphoma ineligible for transplantation: ALYCANTE final analysis.
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Engineering of CD34+ progenitor-derived natural killer cells with higher-affinity CD16a for enhanced antibody-dependent cellular cytotoxicity.
Engineering of CD34+ progenitor-derived natural killer cells with higher-affinity CD16a for enhanced antibody-dependent cellular cytotoxicity.
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这些数据共同表明,通过上调 CD16a 表达并结合使用肿瘤靶向单克隆抗体,过继性 NK 细胞免疫治疗的适用范围可能扩展至 NK 敏感性较低的恶性肿瘤。
自然杀伤(NK)细胞转移是有前景的癌症细胞免疫疗法。我们此前开发了一种稳健方法,可由CD34+造血干/祖细胞(HSPC)生成大量NK细胞,这些细胞具有强抗肿瘤活性。但这些细胞体外表达的Fc受体CD16a水平较低,因而抗体依赖性细胞介导的细胞毒作用(ADCC)有限。为扩大HSPC-NK细胞对NK敏感性较低恶性肿瘤的临床适用范围,我们旨在通过转导CD16a增强ADCC。
使用野生型及高亲和力S197P突变型CD16a逆转录病毒转基因(两者均带V158位点;可分别在刺激后被切割或不可切割),制备CD16a转导的HSPC来源NK细胞。CD34+细胞取自脐带血(UCB)或G-CSF动员后的外周血(MPB)。通过流式细胞术分选富集表达CD16a的NK细胞,随后开展表型分析和功能实验,以研究自然细胞毒性及ADCC活性。
UCB来源和MPB来源HSPC的平均转导效率分别为34%和20%;经流式分选后,两种条件下转基因阳性率均提高至>90%。在整个NK细胞扩增生成过程中,转基因表达保持稳定。转导过程未妨碍HSPC增殖和分化,5周后成功分化为CD56+ NK细胞。HSPC来源NK细胞活化后,内源基因转录的野生型CD16a显著脱落,而转导构建体表达的不可切割突变型CD16a蛋白未发生脱落。诱导ADCC后,富集的不可切割CD16a HSPC-NK细胞中CD107+ IFN+ NK细胞平均增加10倍。与未修饰HSPC-NK细胞相比,加入肿瘤靶向抗体后,CD16a转导NK细胞对肿瘤细胞系、原代B细胞白血病及淋巴瘤细胞的杀伤能力显著增强。
综上,通过提高CD16a表达并联合肿瘤靶向单克隆抗体,可扩大过继NK细胞免疫疗法对NK敏感性较低恶性肿瘤的适用范围。
Using wildtype and S197P mutant greater-affinity (both with V158) CD16a retroviral transgenes (i.e., a cleavable and noncleavable CD16a upon stimulation), we generated CD16a HSPC-transduced NK cells, with CD34 + cells isolated from umbilical cord blood (UCB) or peripheral blood after G-CSF stem cell mobilization (MPB). CD16a expressing NK cells were enriched using flow cytometry-based cell sorting. Subsequently, phenotypic analyses and functional assays were performed to investigate natural cytotoxicity and ADCC activity.
Mean transduction efficiency was 34% for UCB-derived HSPCs and 20% for MPB-derived HSPCs, which was enriched by flow cytometry-based cell sorting to >90% for both conditions. Expression of the transgene remained stable during the entire NK expansion cell generation process. Proliferation and differentiation of HSPCs were not hampered by the transduction process, resulting in effectively differentiated CD56 + NK cells after 5 weeks. Activation of the HSPC-derived NK cells resulted in significant shedding of wildtype CD16a transcribed from the endogenous gene, but not of the noncleavable mutant CD16a protein expressed from the transduced construct. The mean increase of CD107 + IFN + expressing NK cells after inducing ADCC was tenfold in enriched noncleavable CD16a HSPC-NK cells. Killing capacity of CD16a-transduced NK cells was significantly improved after addition of a tumor-targeting antibody in tumor cell lines and primary B-cell leukemia and lymphoma cells compared to unmodified HSPC-NK cells.
Together, these data demonstrate that the applicability of adoptive NK cell immunotherapy may be broadened to less NK-sensitive malignancies by upregulation of CD16a expression in combination with the use of tumor-targeting monoclonal antibodies.
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