HMGA2 促进骨髓增生异常综合征中血小板-中性粒细胞复合物的形成和肺组织损伤

Natsumi Matsunuma , Yoshihiro Hayashi , Marina Fukuda , Kanako Yuki , Yasushige Kamimura-Aoyagi , Hiroki Kobayashi , Naoki Shingai , Yuka Harada , Hironori Harada
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引用次数: 0

摘要

摘要高迁移率基团AT-钩2(HMGA2)是一种结构转录因子,在多种癌症中发挥着癌基因的作用。尽管有报道称HMGA2在几种髓系恶性肿瘤中过度表达,但它在不同疾病中的作用却大不相同。在这里,我们发现了 HMGA2 在骨髓增生异常综合征(MDS)中作为非感染性肺炎介质的独特作用。HMGA2在CD34+造血干细胞和祖细胞(HSC/Ps)中的表达水平与非感染性肺炎的发病率显著相关,非感染性肺炎是MDS患者常见的全身性并发症。与这一临床研究相一致,HMGA2在MDS相关突变小鼠模型中的过表达导致了致命性非感染性肺炎的发生。从机理上讲,HMGA2 的过表达使造血干细胞/血小板具有巨核细胞系倾向,并导致 MDS 小鼠的血小板活化。P-选择素阳性的活化血小板与MDS克隆衍生的中性粒细胞相互作用,后者对细胞死亡的敏感性增加,并形成血小板-中性粒细胞复合物(PNCs)。在过表达 HMGA2 的 MDS 小鼠中,肺微环境中 PNCs 的频率和中性粒细胞的死亡均有所增加。基因抑制P-选择素可以减轻MDS小鼠的肺组织损伤。这些研究结果表明,PNCs 可能是治疗 MDS 患者非感染性肺炎的新靶点,并为了解 MDS 全身并发症的机理基础提供了新的视角。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
HMGA2 promotes platelet-neutrophil complex formation and pulmonary tissue damage in myelodysplastic syndromes

Abstract

High mobility group AT-hook 2 (HMGA2) is an architectural transcription factor that functions as an oncogene in various cancers. Although overexpression of HMGA2 has been reported in several myeloid malignancies, its role varies considerably in different disease contexts. Here, we identified a distinct role of HMGA2 as a mediator of noninfectious pneumonia in myelodysplastic syndrome (MDS). The expression level of HMGA2 in CD34+ hematopoietic stem cells and progenitors (HSC/Ps) was significantly associated with the incidence of noninfectious pneumonia, a common systemic complication in patients with MDS. Consistent with this clinical investigation, HMGA2 overexpression in a mouse model of an MDS-associated mutation led to the development of lethal noninfectious pneumonia. Mechanistically, HMGA2 overexpression conferred a megakaryocytic lineage bias to HSC/Ps and contributed to platelet activation in MDS mice. P-selectin–positive activated platelets interacted with MDS clone–derived neutrophils that exhibit increased susceptibility to cell death and formed platelet-neutrophil complexes (PNCs). Both the frequency of PNCs and neutrophil cell death within the lung microenvironment increased in MDS mice overexpressing HMGA2. Genetic inhibition of P-selectin attenuated pulmonary tissue damage in MDS mice. These findings indicate that PNCs could be a new therapeutic target for noninfectious pneumonia in patients with MDS and provide new insights into the mechanistic basis of the systemic complications of MDS.

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