粒细胞生成晚期的代谢检查点控制失灵导致网状结构发育不良的中性粒细胞减少症。

IF 21 1区 医学 Q1 HEMATOLOGY
Blood Pub Date : 2024-12-26 DOI:10.1182/blood.2024024123
Wenqing Wang, Martin Arreola, Thomas Mathews, Andrew DeVilbiss, Zhiyu Zhao, Misty Martin-Sandoval, Abdulvasey Mohammed, Giorgia Benegiamo, Avni Awani, Ludger Goeminne, Daniel Dever, Yusuke Nakauchi, Matthew H Porteus, Mara Pavel-Dinu, Waleed Al-Herz, Johan Auwerx, Sean J Morrison, Katja G Weinacht
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引用次数: 0

摘要

细胞新陈代谢在造血过程中是高度动态的,但人们对维持分化过程中新陈代谢平衡的调控网络却知之甚少。在这里,我们研究了线粒体腺苷酸激酶2(AK2)功能缺失导致的严重免疫缺陷综合征网状结构发育不良。通过将网状结构发育不良患者样本中的单细胞转录组学与原代人类造血干细胞中该疾病的 CRISPR 模型相结合,我们发现 AK2 缺失对造血系统的影响取决于代谢检查点的有效参与。在造血干细胞和祖细胞(包括早期粒细胞前体)中,AK2缺乏会减少雷帕霉素机械靶标(mTOR)信号传导和合成代谢途径激活。这保护了营养平衡,维持了细胞的存活和增殖。相反,在粒细胞生成的晚期阶段,代谢检查点失效,导致 mTOR 活性和能量消耗合成代谢途径(如核糖核蛋白合成)在 AK2 缺乏的细胞中出现矛盾性上调。这导致核苷酸失衡,包括 AMP 和 IMP 水平的高度升高,以及 NAD+ 和天冬氨酸等必需底物的耗竭,最终导致粒细胞系增殖停滞和消亡。我们的研究结果表明,在代谢检查点的帮助下,即使是严重的代谢缺陷也可以耐受,但在分化细胞中,如果这种检查点失效,就会导致细胞失去平衡。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Failure of metabolic checkpoint control during late-stage granulopoiesis drives neutropenia in reticular dysgenesis.

Abstract: Cellular metabolism is highly dynamic during hematopoiesis, yet the regulatory networks that maintain metabolic homeostasis during differentiation are incompletely understood. Herein, we have studied the grave immunodeficiency syndrome reticular dysgenesis caused by loss of mitochondrial adenylate kinase 2 (AK2) function. By coupling single-cell transcriptomics in samples from patients with reticular dysgenesis with a CRISPR model of this disorder in primary human hematopoietic stem cells, we found that the consequences of AK2 deficiency for the hematopoietic system are contingent on the effective engagement of metabolic checkpoints. In hematopoietic stem and progenitor cells, including early granulocyte precursors, AK2 deficiency reduced mechanistic target of rapamycin (mTOR) signaling and anabolic pathway activation. This conserved nutrient homeostasis and maintained cell survival and proliferation. In contrast, during late-stage granulopoiesis, metabolic checkpoints were ineffective, leading to a paradoxical upregulation of mTOR activity and energy-consuming anabolic pathways such as ribonucleoprotein synthesis in AK2-deficient cells. This caused nucleotide imbalance, including highly elevated adenosine monophosphate and inosine monophosphate levels, the depletion of essential substrates such as NAD+ and aspartate, and ultimately resulted in proliferation arrest and demise of the granulocyte lineage. Our findings suggest that even severe metabolic defects can be tolerated with the help of metabolic checkpoints but that the failure of such checkpoints in differentiated cells results in a catastrophic loss of homeostasis.

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来源期刊
Blood
Blood 医学-血液学
CiteScore
23.60
自引率
3.90%
发文量
955
审稿时长
1 months
期刊介绍: Blood, the official journal of the American Society of Hematology, published online and in print, provides an international forum for the publication of original articles describing basic laboratory, translational, and clinical investigations in hematology. Primary research articles will be published under the following scientific categories: Clinical Trials and Observations; Gene Therapy; Hematopoiesis and Stem Cells; Immunobiology and Immunotherapy scope; Myeloid Neoplasia; Lymphoid Neoplasia; Phagocytes, Granulocytes and Myelopoiesis; Platelets and Thrombopoiesis; Red Cells, Iron and Erythropoiesis; Thrombosis and Hemostasis; Transfusion Medicine; Transplantation; and Vascular Biology. Papers can be listed under more than one category as appropriate.
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