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:Single-cell profiling reveals reprogrammed hierarchy and disrupted immune-stromal ecosystem in TP53-mutated AML.
Single-cell profiling reveals reprogrammed hierarchy and disrupted immune-stromal ecosystem in TP53-mutated AML.
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本研究首次提供了 de novo TP53 突变型 AML 的单细胞图谱,揭示了其重编程的白血病层级和紊乱的免疫-基质生态系统,并为这一高危亚型提供了机制性见解和潜在治疗靶点。
TP53突变的急性髓系白血病(AML)是AML中预后最差的亚型之一,但其耐药和复发的机制仍不明确。
我们对30例初诊AML患者(11例TP53突变,19例TP53野生型)的骨髓样本进行了单细胞RNA测序,并系统分析了白血病细胞、免疫细胞和基质细胞组分,以描绘分化轨迹、转录异质性和微环境重塑。我们还进行了体外实验,以验证单细胞数据所提示的铁死亡抵抗、白血病-T细胞功能障碍和基质重塑。
TP53突变型AML表现出向粒细胞-单核细胞和晚期髓系祖细胞的分化偏向,而非停滞于干细胞阶段,并伴有增强的抗凋亡和炎症程序,以及一种在转录和功能上均得到支持的铁死亡抵抗表型,作为与不良预后相关的新标志。在功能上,CD8⁺ T细胞主要处于耗竭状态,功能失调亚群富集,同时NK细胞减少。B细胞活化受损,浆细胞组成偏斜,髓系细胞获得免疫抑制特征。在基质区室中,间充质细胞丧失造血和免疫支持功能,向成骨程序转变,进一步强化白血病细胞存活。我们还建立了一个整合生态系统评分,该评分与TP53突变负荷及单打击与多打击状态相结合,可捕捉预后异质性并实现临床分层。
TP53-mutated acute myeloid leukemia (AML) represents one of the most adverse-risk subtypes of AML, yet the mechanisms underlying its resistance and relapse remain poorly defined.
We performed single-cell RNA sequencing on bone marrow samples from 30 de novo AML patients (11 TP53-mutated, 19 TP53-wild-type) and systematically analyzed leukemic, immune, and stromal compartments to delineate differentiation trajectories, transcriptional heterogeneity, and microenvironmental remodeling. We also performed in vitro assays to validate ferroptosis resistance, leukemia-T cell dysfunction, and stromal remodeling suggested by the single-cell data.
TP53-mutated AML exhibited a differentiation bias toward granulocyte-monocyte and late myeloid progenitors rather than arrest at the stem cell stage, with enhanced anti-apoptotic and inflammatory programs and a transcriptionally and functionally supported ferroptosis resistance phenotype as a novel hallmark linked to poor prognosis. Functionally, CD8⁺ T cells were predominantly exhausted with an enrichment of dysfunctional subsets and a concomitant reduction of NK cells. B cells showed impaired activation with skewed plasma cell composition, and myeloid cells acquired immunosuppressive features. In the stromal compartment, mesenchymal cells lost hematopoietic and immune-supportive functions and shifted toward osteogenic programs, further reinforcing leukemic survival. We also established an integrated ecosystem score that, together with TP53 mutation burden and mono- versus multi-hit status, captured prognostic heterogeneity and enabled clinical stratification.
This study provides the first single-cell landscape of de novo TP53-mutated AML, highlighting its reprogrammed leukemic hierarchy and disrupted immune-stromal ecosystem, and offering mechanistic insights and potential therapeutic targets for this high-risk subtype.
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