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:Modulation of Oncogenic NOTCH Signaling in Highly Aggressive Malignancies by Targeting the γ-Secretase Complex: A Systematic Review.
其中,60项研究对应于癌症类型的临床前研究,9项研究对应于除GC外的癌症类型的临床试验。
背景。NOTCH受体在癌变过程中发挥关键作用。配体结合后,由ADAM蛋白酶和γ-分泌酶复合体介导的一系列蛋白水解切割激活受体,最终释放NOTCH胞内结构域(NICD)。NICD转位至细胞核,在核内调控基因表达。本综述主要旨在评估γ-分泌酶抑制剂(GSIs)作为抗癌药物在临床前和临床环境中的作用,重点关注其阻断肿瘤进展、靶向肿瘤干细胞以及克服标准治疗耐药的能力。方法。按照PRISMA指南,在ISI Web of Science、PubMed和Scopus数据库中进行系统检索。本综述纳入研究GSIs作为单药治疗或与其他治疗联合用于TNBC、转移性黑色素瘤、PDAC、胃癌和NSCLC的临床前体外和体内研究以及临床试验。排除标准包括重复文献、非英文文章、2010年之前发表的研究、非癌症疾病研究、与NOTCH信号无关的研究以及所选癌症类型之外的研究。总体而言,共纳入69篇文章,并将其归入所分析的5种癌症类型(20篇关于NSCLC,22篇关于TNBC,11篇关于转移性黑色素瘤,7篇关于GC,9篇关于PDAC)。其中,60项研究对应于这些癌症类型的临床前研究,9项研究对应于除GC以外的这些癌症类型的临床试验。两位独立作者筛选并提取相关数据,分歧由通讯作者解决。研究结果按所研究的癌症类型进行定性综合。结果。本综述基于纳入的69篇文章,总结了GSIs在由致癌性NOTCH信号驱动的癌症中的治疗进展。临床前研究表明,GSIs与化疗和放疗具有协同作用,尤其是在NSCLC、黑色素瘤和TNBC中,并可阻断EMT、克服治疗耐药并改善预后。常用的GSIs包括DAPT和RO4929097,它们可增强多种药物的疗效,如吉西他滨(PDAC)、紫杉醇、奥希替尼、厄洛替尼和克唑替尼(NSCLC)以及5-FU(胃癌、TNBC)。有前景的策略包括将GSIs与SAHA、ATRA、CB-103及其他NOTCH信号靶向分子联合使用,既可单用,也可与化疗和放疗联合。然而,GSIs的临床试验仍然有限。RO4929097是临床环境中测试最广泛的GSI。将GSIs与吉西他滨联合用于PDAC的试验未显示获益;黑色素瘤试验结果有限;TNBC试验显示对GSIs有部分缓解,但总体疗效低且不良事件显著。讨论与结论。尽管临床前证据令人鼓舞,但GSIs的临床试验表现不佳,很大程度上是由于肿瘤异质性、给药限制以及γ-分泌酶抑制的非选择性。其他NOTCH抑制剂,如DLL4抗体,也导致部分缓解和继发效应。未来策略应优先考虑受体特异性NOTCH抑制剂、基于NOTCH通路激活的患者分层以及优化联合方案。新兴方法包括将免疫治疗与CRISPR、CAR-T细胞和双特异性抗体等先进技术整合,以及靶向递送系统以提高疗效并降低毒性。其他研究方向包括应对肿瘤微环境和EMT驱动的耐药性、阐明免疫逃逸机制以及抑制肿瘤血管生成。最后,利用人工智能和大数据驱动的个性化医疗,包括性别特异性考量,对于改善患者预后至关重要。
Background. NOTCH receptors play a pivotal role in carcinogenesis. Upon ligand binding, a cascade of proteolytic cleavages mediated by ADAM proteases and the -secretase complex activates the receptor, ultimately releasing the NOTCH intracellular domain (NICD). NICD translocates to the nucleus, where it regulates gene expression. This review mainly aims to evaluate -secretase inhibitors (GSIs) as anticancer agents in preclinical and clinical settings, with a focus on their ability to block tumor progression, target cancer stem cells, and overcome resistance to standard therapies. Methods. A systematic search was conducted in the ISI Web of Science, PubMed, and Scopus databases, following PRISMA guidelines. The review included preclinical in vitro and in vivo studies, as well as clinical trials, investigating GSIs, either as monotherapy or in combination with other treatments, in TNBC, metastatic melanoma, PDAC, gastric cancer, and NSCLC. Exclusion criteria included duplicates, non-English articles, studies published before 2010, studies on non-cancer conditions, research unrelated to NOTCH signaling, and studies outside the selected cancer types. Overall, 69 articles were included and categorized into the five types of cancer analyzed (20 on NSCLC, 22 on TNBC, 11 on metastatic melanoma, 7 on GC, and 9 on PDAC). Of these, 60 studies corresponded to preclinical research in the types of cancer, and 9 studies corresponded to clinical trials in the types of cancer except for GC. Two independent authors screened and extracted relevant data, with disagreements resolved by the corresponding author. Findings were synthesized qualitatively across cancer types under study. Results. This review summarizes therapeutic advances involving GSIs in cancers driven by oncogenic NOTCH signaling, based on the 69 articles included. Preclinical studies show that GSIs synergize with chemotherapy and radiotherapy, particularly in NSCLC, melanoma, and TNBC, and block EMT, overcome therapeutic resistance, and improve prognosis. Commonly used GSIs include DAPT and RO4929097, which enhance the efficacy of agents, such as gemcitabine (PDAC), paclitaxel, osimertinib, erlotinib, and crizotinib (NSCLC), and 5-FU (gastric cancer, TNBC). Promising strategies include combining GSIs with SAHA, ATRA, CB-103, and other NOTCH signaling targeting molecules, either alone or with chemo- and radiotherapy. Clinical trials with GSIs, however, remain limited. RO4929097 is the most extensively tested GSI in clinical settings. PDAC trials combining GSIs with gemcitabine showed no benefit; melanoma trials yielded modest outcomes; and TNBC trials demonstrated partial responses to GSIs but overall low efficacy and significant adverse events. Discussion and Conclusions. Despite encouraging preclinical evidence, clinical trials with GSIs have underperformed, largely due to tumor heterogeneity, dosing limitations, and the non-selective nature of -secretase inhibition. Other NOTCH inhibitors, such as DLL4 antibodies, also resulted in partial responses and secondary effects. Future strategies should prioritize receptor-specific NOTCH inhibitors, patient stratification based on NOTCH pathway activation, and optimized combination regimens. Emerging approaches include integrating immunotherapy with advanced technologies such as CRISPR, CAR-T cells, and bispecific antibodies, as well as targeted delivery systems to enhance efficacy and reduce toxicity. Additional research directions include addressing the tumor microenvironment and EMT-driven resistance, elucidating the mechanisms of immune evasion, and inhibiting tumor angiogenesis. Finally, leveraging artificial intelligence and big-data-driven personalized medicine, including sex-specific considerations, will be essential for improving patient outcomes.
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