RNF43 p.G659fs 通过 PI3K/AKT/mTOR 信号通路和 HLA-E 上调导致 MSI-high 结直肠癌中 NK 细胞功能障碍
RNF43 p.G659fs leads to natural killer cell dysfunction in MSI-high colorectal cancer through PI3K/AKT/mTOR signaling and HLA-E up-regulation.
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:FLT3: A 35-Year Voyage from Discovery to the Next Generation of Targeted Therapy in AML.
FLT3: A 35-Year Voyage from Discovery to the Next Generation of Targeted Therapy in AML.
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FMS样酪氨酸激酶3(FLT3)是正常造血的关键调控因子,在造血干细胞和祖细胞中高表达。除了在干细胞存活和增殖中的作用外,FLT3信号对免疫调节也至关重要,尤其是树突状细胞分化和NK细胞扩增。在急性髓系白血病(AML)中,FLT3突变——最常见的是内部串联重复(FLT3-ITD)和酪氨酸激酶结构域(FLT3-TKD)替换——是最常见的遗传学改变之一,驱动增殖和抗凋亡通路的组成性激活,并导致不良预后。FLT3抑制剂的临床开发历经数十年努力。早期多激酶药物确立了概念验证,但受限于脱靶效应和不完全的疗效。随后一代强效和选择性抑制剂改变了治疗结局,最终促成了midostaurin、quizartinib和gilteritinib获得FDA批准。这些药物与异基因移植一起,重塑了FLT3突变AML的治疗范式,将历史上高危的亚组转变为具有现实长期生存前景的亚组。尽管取得了这些进展,挑战依然存在。耐药通过细胞内在机制出现,如获得继发性TKD或RAS通路突变、代谢重编程和抗凋亡转变,以及由骨髓微环境介导的细胞外在机制,包括细胞因子支持、基质CYP3A4代谢和维甲酸失活。这些通路维持可测量残留病(MRD),而MRD是复发的主要预测因素。
因此,合理的联合策略和以MRD为导向的方法对于充分发挥FLT3抑制的治愈潜力至关重要。
FMS-like tyrosine kinase 3 (FLT3) is a crucial regulator of normal hematopoiesis, with high expression in hematopoietic stem and progenitor cells. Beyond its role in stem cell survival and proliferation, FLT3 signaling is essential for immune regulation, particularly dendritic cell differentiation and NK cell expansion. In acute myeloid leukemia (AML), FLT3 mutations-most commonly internal tandem duplications (FLT3-ITD) and tyrosine kinase domain (FLT3-TKD) substitutions-are among the most frequent genetic alterations, driving constitutive activation of proliferative and antiapoptotic pathways and conferring adverse prognosis.
The clinical development of FLT3 inhibitors has been a decades-long endeavor. Early multikinase agents established proof-of-concept but were hampered by off-target effects and incomplete efficacy. The subsequent generation of potent and selective inhibitors has transformed outcomes, culminating in FDA approvals of midostaurin, quizartinib, and gilteritinib.
Together with allogeneic transplantation, these agents have reshaped the treatment paradigm for FLT3-mutant AML, converting a historically high-risk subset into one with realistic prospects for long-term survival. Despite these advances, challenges remain.
Resistance emerges through cell-intrinsic mechanisms such as acquisition of secondary TKD or RAS pathway mutations, metabolic reprogramming, and antiapoptotic shifts, as well as cell-extrinsic mechanisms mediated by the bone marrow microenvironment, including cytokine support, stromal CYP3A4 metabolism, and retinoid inactivation.
These pathways sustain measurable residual disease (MRD), the key predictor of relapse. Rational combination strategies and MRD-directed approaches are therefore essential to fully realize the curative potential of FLT3 inhibition.
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