决定异体 CAR T 细胞排斥与扩增的细胞和分子机制
Cellular and molecular mechanisms determining allogeneic CAR T cell rejection and expansion.
我们评估了11例接受单一批次cemacabtagene ansegedleucel(cema-cel)治疗的大B细胞淋巴瘤患者,cemacabtagene ansegedleucel是一种异体抗CD19 CAR T产品。
英文原题:Targeting oncometabolism to maximize immunotherapy in malignant brain tumors.
脑肿瘤在儿童和成人中均导致显著的发病率和死亡率。
脑肿瘤在儿童和成人中均导致显著的发病率和死亡率。近期数据表明,免疫疗法可能为标准治疗失败后的恶性脑肿瘤提供生存获益。然而,若干晚期临床试验的有限结果强调了需要更精细、更全面的策略,这些策略应整合新的机制和药理学知识。近年来,肿瘤代谢已成为一种辅助手段,用于组合治疗策略,这是由高级别胶质瘤和其他进展性恶性脑肿瘤的侵袭性和难治性所必需的。通过受控靶向致癌通路来操纵构成肿瘤微环境的癌症和免疫细胞中的代谢过程,可用于最大化免疫疗法的疗效并改善患者预后。在此,我们总结了基于肿瘤代谢的治疗方法的临床前和早期临床试验研究,这些方法可能通过利用脑肿瘤的生化和遗传基础来增强免疫疗法。我们还探讨了与靶向肿瘤细胞的免疫细胞相关的代谢通路,称为“肿瘤免疫代谢”。具体而言,我们关注糖酵解和改变的葡萄糖代谢,包括葡萄糖转运体、己糖激酶、丙酮酸脱氢酶和乳酸脱氢酶、谷氨酰胺,并讨论靶向精氨酸酶、腺苷和吲哚胺2,3-双加氧酶以及toll样受体。最后,我们总结了靶向代谢与新兴疗法如溶瘤病毒疗法、疫苗和CAR-T 细胞联合应用的未来方向。
Brain tumors result in significant morbidity and mortality in both children and adults. Recent data indicate that immunotherapies may offer a survival benefit after standard of care has failed for malignant brain tumors. Modest results from several late phase clinical trials, however, underscore the need for more refined, comprehensive strategies that incorporate new mechanistic and pharmacologic knowledge. Recently, oncometabolism has emerged as an adjunct modality for combinatorial treatment approaches necessitated by the aggressive, refractory nature of high-grade glioma and other progressive malignant brain tumors. Manipulation of metabolic processes in cancer and immune cells that comprise the tumor microenvironment through controlled targeting of oncogenic pathways may be utilized to maximize the efficacy of immunotherapy and improve patient outcomes. Herein, we summarize preclinical and early phase clinical trial research of oncometabolism-based therapeutics that may augment immunotherapy by exploiting the biochemical and genetic underpinnings of brain tumors. We also examine metabolic pathways related to immune cells that target tumor cells, termed "tumor immunometabolism". Specifically, we focus on glycolysis and altered glucose metabolism, including glucose transporters, hexokinase, pyruvate dehydrogenase, and lactate dehydrogenase, glutamine, and we discuss targeting arginase, adenosine, and indoleamine 2,3-dioxygenase, and toll-like receptors. Lastly, we summarize future directions targeting metabolism in combination with emerging therapies such as oncolytic virotherapy, vaccines, and chimeric antigen receptor T cells.
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