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AIF 缺失会使造血功能失调,并揭示骨髓细胞和胸腺细胞中不同的适应性代谢反应。

AIF loss deregulates hematopoiesis and reveals different adaptive metabolic responses in bone marrow cells and thymocytes.

机构信息

Cell Death and Drug Resistance in Lymphoproliferative Disorders Team, Centre de Recherche des Cordeliers, INSERM UMRS 1138, Paris, France.

Sorbonne Universités, Université Pierre et Marie Curie, Paris, France.

出版信息

Cell Death Differ. 2018 May;25(5):983-1001. doi: 10.1038/s41418-017-0035-x. Epub 2018 Jan 11.

Abstract

Mitochondrial metabolism is a tightly regulated process that plays a central role throughout the lifespan of hematopoietic cells. Herein, we analyze the consequences of the mitochondrial oxidative phosphorylation (OXPHOS)/metabolism disorder associated with the cell-specific hematopoietic ablation of apoptosis-inducing factor (AIF). AIF-null (AIF ) mice developed pancytopenia that was associated with hypocellular bone marrow (BM) and thymus atrophy. Although myeloid cells were relatively spared, the B-cell and erythroid lineages were altered with increased frequencies of precursor B cells, pro-erythroblasts I, and basophilic erythroblasts II. T-cell populations were dramatically reduced with a thymopoiesis blockade at a double negative (DN) immature state, with DN1 accumulation and delayed DN2/DN3 and DN3/DN4 transitions. In BM cells, the OXPHOS/metabolism dysfunction provoked by the loss of AIF was counterbalanced by the augmentation of the mitochondrial biogenesis and a shift towards anaerobic glycolysis. Nevertheless, in a caspase-independent process, the resulting excess of reactive oxygen species compromised the viability of the hematopoietic stem cells (HSC) and progenitors. This led to the progressive exhaustion of the HSC pool, a reduced capacity of the BM progenitors to differentiate into colonies in methylcellulose assays, and the absence of cell-autonomous HSC repopulating potential in vivo. In contrast to BM cells, AIF thymocytes compensated for the OXPHOS breakdown by enhancing fatty acid β-oxidation. By over-expressing CPT1, ACADL and PDK4, three key enzymes facilitating fatty acid β-oxidation (e.g., palmitic acid assimilation), the AIF thymocytes retrieved the ATP levels of the AIF cells. As a consequence, it was possible to significantly reestablish AIF thymopoiesis in vivo by feeding the animals with a high-fat diet complemented with an antioxidant. Overall, our data reveal that the mitochondrial signals regulated by AIF are critical to hematopoietic decision-making. Emerging as a link between mitochondrial metabolism and hematopoietic cell fate, AIF-mediated OXPHOS regulation represents a target for the development of new immunomodulatory therapeutics.

摘要

线粒体代谢是一个受到严格调控的过程,在造血细胞的整个生命周期中起着核心作用。在此,我们分析了与凋亡诱导因子(AIF)细胞特异性造血缺失相关的线粒体氧化磷酸化(OXPHOS)/代谢障碍的后果。AIF 敲除(AIF -/-)小鼠发生全血细胞减少症,伴有骨髓(BM)和胸腺细胞数量减少。虽然髓系细胞相对不受影响,但 B 细胞和红细胞谱系发生改变,前体 B 细胞、原红细胞 I 和嗜碱性红细胞 II 的频率增加。T 细胞群显著减少,胸腺发生在双阴性(DN)未成熟状态被阻断,DN1 积累,DN2/DN3 和 DN3/DN4 过渡延迟。在 BM 细胞中,AIF 缺失引起的 OXPHOS/代谢功能障碍被线粒体生物发生的增强和向无氧糖酵解的转变所平衡。然而,在一种 caspase 非依赖性过程中,由此产生的过量活性氧会损害造血干细胞(HSC)和祖细胞的活力。这导致 HSC 池的逐渐耗尽,甲基纤维素测定中 BM 祖细胞分化为集落的能力降低,以及体内细胞自主 HSC 再生能力的丧失。与 BM 细胞不同,AIF 胸腺细胞通过增强脂肪酸 β-氧化来补偿 OXPHOS 分解。通过过表达 CPT1、ACADL 和 PDK4,三种促进脂肪酸 β-氧化的关键酶(例如,棕榈酸同化),AIF 胸腺细胞恢复了 AIF -/-细胞的 ATP 水平。因此,通过用高脂肪饮食喂养动物并补充抗氧化剂,可以显著在体内重新建立 AIF 胸腺发生。总的来说,我们的数据表明,AIF 调节的线粒体信号对造血决策至关重要。作为线粒体代谢和造血细胞命运之间的联系,AIF 介导的 OXPHOS 调节代表了开发新的免疫调节治疗方法的目标。

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