DHPS公司
细胞生物学
巨噬细胞
传出细胞增多
生物
单核细胞
细胞
细胞粘附
细胞分化
平衡
电池类型
化学
巨噬细胞集落刺激因子
细胞迁移
信号转导
吞噬作用
肿瘤坏死因子α
蛋白质组学
作者
Gustavo Carrizo,Pianpian Lin,Seung Hyun Lee,Kevin Shenderov,Camille Blériot,Minsun Cha,Lena Schimmelpfennig,Zhen Shen,Nikki van Teijlingen Bakker,Katarzyna M. Grzes,Beth Kelly,Niloufar Safinia,Kate L. Schole,Yaarub Musa,Gerhard Mittler,Yoh Zen,Edward J. Pearce,Florent Ginhoux,David E. Sanin,Daniel J. Puleston
出处
期刊:Nature
[Nature Portfolio]
日期:2026-01-21
卷期号:651 (8106): 763-774
被引量:1
标识
DOI:10.1038/s41586-025-09972-2
摘要
Abstract Tissue-resident macrophages (RTMs) form during embryogenesis, self-renew locally, and regulate tissue homeostasis by clearing dead cells and debris 1–6 . During tissue damage, however, bone-marrow-derived monocytes enter tissues and differentiate into RTMs, repairing the tissue and replenishing macrophages in the niche 1 . The universal cell-intrinsic mechanisms that control the monocyte-to-RTM transition and the maintenance of mature RTMs across tissues remain elusive 3 . Here we show that deoxyhypusine synthase (DHPS), an enzyme that mediates spermidine-dependent hypusine modification of translation factor eIF5A 5,7 , is required for RTM differentiation and maintenance. Mice with myeloid cell lack of DHPS ( Dhps -ΔM mice) had a global defect in RTMs across tissues, resulting in persistent but ultimately futile monocyte influx. Transcriptional analyses of DHPS-deficient macrophages indicated a block in their ability to differentiate into mature RTMs, whereas proteomics revealed defects in cell adhesion and signalling pathways. Sequencing of ribosome-engaged transcripts identified a subset of mRNAs involved in cell adhesion and signalling that rely on DHPS for efficient translation. Imaging of DHPS-deficient macrophages in tissues showed differences in morphology and tissue interactions, which were correlated with their failed RTM differentiation. DHPS-deficient macrophages were also defective in critical homeostatic RTM functions including efferocytosis and tissue maintenance. Together, our results demonstrate a cell-intrinsic, tissue-agnostic pathway that drives differentiation of monocyte-derived macrophages into RTMs.
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