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炎症性骨髓微环境。

Inflammatory bone marrow microenvironment.

机构信息

Department of Hematology, Erasmus MC Cancer Institute, Rotterdam, The Netherlands.

出版信息

Hematology Am Soc Hematol Educ Program. 2019 Dec 6;2019(1):294-302. doi: 10.1182/hematology.2019000045.

Abstract

Self-renewing hematopoietic stem cells and their progeny, lineage-specific downstream progenitors, maintain steady-state hematopoiesis in the bone marrow (BM). Accumulating evidence over the last few years indicates that not only primitive hematopoietic stem and progenitor cells (HSPCs), but also cells defining the microenvironment of the BM (BM niche), sense hematopoietic stress signals. They respond by directing and orchestrating hematopoiesis via not only cell-intrinsic but also cell-extrinsic mechanisms. Inflammation has many beneficial roles by activating the immune system in tissue repair and as a defense mechanism. However, chronic inflammation can have detrimental effects by stressing HSPCs, leading to cell (DNA) damage resulting in BM failure or even to leukemia. Emerging data have demonstrated that the BM microenvironment plays a significant role in the pathogenesis of hematopoietic malignancies, in particular, through disrupted inflammatory signaling, specifically in niche (microenvironmental) cells. Clonal selection in the context of microenvironmental alterations can occur in the context of toxic insults (eg, chemotherapy), not only aging but also inflammation. In this review, we summarize mechanisms that lead to an inflammatory BM microenvironment and discuss how this affects normal hematopoiesis. We pay particular attention to the process of aging, which is known to involve low-grade inflammation and is also associated with age-related clonal hematopoiesis and potentially malignant transformation.

摘要

自我更新的造血干细胞及其后代、谱系特异性下游祖细胞,在骨髓 (BM) 中维持稳态造血。过去几年的大量证据表明,不仅原始造血干细胞和祖细胞 (HSPCs),而且定义 BM 微环境 (BM 龛) 的细胞也能感知造血应激信号。它们通过不仅内在细胞机制,而且还通过外在细胞机制来指导和协调造血。炎症通过激活免疫系统进行组织修复和作为防御机制具有许多有益的作用。然而,慢性炎症会通过对 HSPCs 造成压力而产生不利影响,导致细胞 (DNA) 损伤,从而导致 BM 衰竭甚至白血病。新出现的数据表明,BM 微环境在造血恶性肿瘤的发病机制中起着重要作用,特别是通过破坏炎症信号,特别是在龛 (微环境) 细胞中。在微环境改变的情况下,在毒性损伤(例如化疗)、不仅是衰老而且是炎症的情况下,可能会发生克隆选择。在这篇综述中,我们总结了导致炎症性 BM 微环境的机制,并讨论了这如何影响正常造血。我们特别关注已知涉及低度炎症的衰老过程,并且还与年龄相关的克隆性造血和潜在的恶性转化相关。

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