鞘脂调节激活蛋白平衡程序控制人类造血干细胞自我更新

Cell stem cell Pub Date : 2019-11-07 Epub Date: 2019-10-17 DOI:10.1016/j.stem.2019.09.008
Stephanie Z Xie, Laura Garcia-Prat, Veronique Voisin, Robin Ferrari, Olga I Gan, Elvin Wagenblast, Kerstin B Kaufmann, Andy G X Zeng, Shin-Ichiro Takayanagi, Ishita Patel, Esther K Lee, Joseph Jargstorf, Gareth Holmes, Guy Romm, Kristele Pan, Michelle Shoong, Aditi Vedi, Chiara Luberto, Mark D Minden, Gary D Bader, Elisa Laurenti, John E Dick
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引用次数: 0

摘要

细胞应激反应是维持或淘汰造血干细胞(hsc)终身造血的关键决策点。尽管强应激源会剔除HSC,但应激程序与人类HSC维持的自我更新特性之间的联系仍不清楚,特别是在静止退出时,HSC也必须动态改变代谢状态。在这里,我们展示了神经鞘脂组在人类造血层次中的独特连接,并发现神经鞘脂酶DEGS1的遗传或药理学调节调节谱系分化。N-(4-羟基苯基)视黄酰胺在造血干细胞和祖细胞从静止到细胞激活的过渡过程中抑制DEGS1激活协调应激途径,这些应激途径结合内质网应激和自噬程序,以维持免疫表型和功能造血干细胞。因此,我们的工作确定了鞘脂代谢、蛋白抑制质量控制系统和HSC自我更新之间的联系,并为改进基于HSC的细胞治疗提供了治疗靶点。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Sphingolipid Modulation Activates Proteostasis Programs to Govern Human Hematopoietic Stem Cell Self-Renewal.

Cellular stress responses serve as crucial decision points balancing persistence or culling of hematopoietic stem cells (HSCs) for lifelong blood production. Although strong stressors cull HSCs, the linkage between stress programs and self-renewal properties that underlie human HSC maintenance remains unknown, particularly at quiescence exit when HSCs must also dynamically shift metabolic state. Here, we demonstrate distinct wiring of the sphingolipidome across the human hematopoietic hierarchy and find that genetic or pharmacologic modulation of the sphingolipid enzyme DEGS1 regulates lineage differentiation. Inhibition of DEGS1 in hematopoietic stem and progenitor cells during the transition from quiescence to cellular activation with N-(4-hydroxyphenyl) retinamide activates coordinated stress pathways that coalesce on endoplasmic reticulum stress and autophagy programs to maintain immunophenotypic and functional HSCs. Thus, our work identifies a linkage between sphingolipid metabolism, proteostatic quality control systems, and HSC self-renewal and provides therapeutic targets for improving HSC-based cellular therapeutics.

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