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.
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Molecularly Targeted Therapies in Oncology: Mechanisms, Resistance, and Combination Strategies.
Molecularly Targeted Therapies in Oncology: Mechanisms, Resistance, and Combination Strategies.
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靶向治疗正在重塑肿瘤学,使治疗选择能够基于可操作的分子改变,提高精准性并减少不必要的毒性。本综述提供了当前靶向治疗模式及支持其发现和优化的药物化学原理的最新概述。
我们综合了关于小分子和生物制剂策略的证据,涵盖受体和非受体激酶及其主要信号轴(PI3K-AKT-mTOR 和 RAS-RAF-MEK-ERK)、凋亡调控(BCL-2 家族)、通过聚(ADP-核糖)聚合酶(PARP)抑制实现的 DNA 修复,以及表观遗传或代谢靶点,包括组蛋白去乙酰化酶(HDAC)、溴结构域和超末端蛋白(BET)以及突变型异柠檬酸脱氢酶(IDH1/2)。在这些领域中,我们总结了反复出现的耐药机制以及联合或序贯方法的依据。生物靶向治疗并行讨论,包括免疫检查点阻断、抗体-药物偶联物、双特异性抗体(BsAb)以及CAR-T 细胞等细胞疗法,重点强调生物标志物指导的患者分层。
最后,我们概述了超越经典节点的新兴方向,包括 p53-MDM2/MDM4 轴的调控、通过 AIFM2/FSP1 控制的铁死亡,以及 CD47-SIRPa 和干扰素基因刺激因子(STING)等先天免疫通路。
总体而言,该领域正从单靶点抑制转向整合策略,将精准分子靶向与对信号网络动力学、耐药演化和治疗脆弱性的理解相结合。
Targeted therapies are reshaping oncology by enabling treatment selection based on actionable molecular alterations, improving precision, and reducing unnecessary toxicity. This review provides an up-to-date overview of current targeted treatment modalities and the medicinal chemistry principles that support their discovery and optimization.
We synthesize evidence on small-molecule and biologic strategies spanning receptor and non-receptor kinases and their major signaling axes (PI3K-AKT-mTOR and RAS-RAF-MEK-ERK), apoptosis regulation (BCL-2 family), DNA repair via poly(ADP-ribose) polymerase (PARP) inhibition, and epigenetic or metabolic targets including histone deacetylases (HDACs), bromodomain and extra-terminal proteins (BET), and mutant isocitrate dehydrogenases (IDH1/2).
Across these areas, we summarize recurrent resistance mechanisms and the rationale for combination or sequential approaches. Biologic targeted therapy is discussed in parallel, including immune checkpoint blockade, antibody-drug conjugates, bispecific antibodies (BsAb), and cell therapies such as chimeric antigen receptor T cells, with emphasis on biomarker-guided patient stratification.
Finally, we outline emerging directions beyond canonical nodes, including modulation of the p53-MDM2/MDM4 axis, ferroptosis control through AIFM2/FSP1, and innate immune pathways such as CD47-SIRPa and the stimulator of interferon genes (STING).
Overall, the field is shifting from single-target inhibition toward integrated strategies that combine precise molecular targeting with an understanding of signaling network dynamics, resistance evolution, and therapeutic vulnerabilities.
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