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钙网蛋白突变骨髓增殖性肿瘤中疾病起始造血干细胞的表征

Characterization of disease-initiating hematopoietic stem cells in calreticulin-mutated myeloproliferative neoplasms

Blood · 2025 年 9 月 25 日 · Camélia Benlabiod, Laetitia Borderon, Gurvan Hermange 等 22 人

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发现钙网蛋白突变骨髓增殖性肿瘤由Vwf阳性造血干细胞扩增起始,PERK/eIF2a通路是其弱点。

骨髓增殖性肿瘤(MPN)起源于造血干细胞(血液系统的“种子细胞”)获得驱动突变。钙网蛋白(CALR)突变是该病第二大常见驱动突变,但哪种干细胞真正“启动”疾病一直不清楚。研究者用携带两种CALR突变的小鼠,通过绿色荧光标记区分干细胞亚群,发现疾病主要来自偏向生成血小板的Vwf阳性干细胞扩增。CALRdel52亚型扩增更强,与血小板生成素受体信号增强和内质网应激引发的PERK/eIF2a通路激活有关;患者细胞中该通路也上调。用药抑制PERK可显著减少小鼠突变干细胞增殖、削弱患者细胞的巨核细胞分化,同时不伤害健康供者细胞,提示这一通路是可攻击的治疗靶点。

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摘要Abstract

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Myeloproliferative neoplasms (MPNs) arise following the acquisition of a mutation in a hematopoietic stem cell (HSC) that causes oncogenic cytokine receptor signaling. Mutations in the calreticulin (CALR) gene are the second most common key driver mutations in MPNs, yet the identity of the disease-initiating HSCs and the mechanisms underlying their clonal expansion remain elusive. Knock-in mice bearing CALRdel52 and CALRins5 mutations recapitulate disease phenotypes, with a greater HSC amplification in CALRdel52 mice. Here, we crossed these strains with transgenic reporter mice expressing GFP under the control of the Von willebrand factor (Vwf) promoter, enabling discrimination between different HSC subsets. We show that CALR-mutated MPNs are mainly initiated from the expansion of platelet-biased, Vwf-positive HSCs, without substantially altering their lineage bias. Notably, the selective amplification of Vwf-positive CALRdel52 compared to CALRins5 HSCs is associated with increased signaling of the thrombopoietin receptor MPL and activation of the integrated stress response as evidenced by eIF2a phosphorylation downstream of PERK kinase triggered by endoplasmic reticulum stress. This pathway is also transcriptionally upregulated in CALRdel52-like compared with CALRins5-like patient hematopoietic stem and progenitor cells (HSPCs), as supported by reanalysis of a previous dataset, and is associated with increased phosphorylation of eIF2a. Pharmacological inhibition of PERK markedly reduces the proliferation of mouse CALRdel52 HSCs and impairs the megakaryocytic differentiation of CALRdel52-like HSPCs from patients while sparing cells from healthy donors. These findings identify the PERK/eIF2a pathway as a mechanistic vulnerability in the MPN cell-of-origin and offer a rationale for exploring new treatment approaches.

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