运动性
细胞生物学
限制
收缩性
流式细胞术
炎症
趋化性
功能(生物学)
生物
微循环
化学
细胞
生物物理学
细胞迁移
活体显微镜检查
免疫学
活体细胞成像
蠕动
势垒函数
肌球蛋白
斑马鱼
血流
粒细胞
作者
Mathieu Deygas,Mathilde Bernard,Pierre Nivoit,Henry De Belly,Alexandre Deslys,Theresa Jakuszeit,Damien Cuvelier,Moira García-Gómez,Lucie Barbier,Li Wang,Mathieu Maurin,Emmanuel Tejerina,Oumaima Baaziz,Emmanuel Terriac,Rafaële Attia,Anna Kniazeva,Serge Garbay,Marina Ortega-Zapero,Ángela Saéz,Raquel Gómez-Bris
出处
期刊:Science immunology
[American Association for the Advancement of Science]
日期:2026-09-04
卷期号:11 (123): eaea1426-eaea1426
标识
DOI:10.1126/sciimmunol.aea1426
摘要
To reach inflamed tissues, neutrophils must traverse capillaries as narrow as 2 micrometers. However, how they do so without compromising blood flow or capillary function has remained unclear. By combining intravital live-cell imaging with biomimetic microdevices, we show that neutrophils maintain migration speed in capillaries across increasing levels of confinement. This behavior was not shared by other leukocytes and was independent of nuclear properties. Instead, confinement rapidly engaged Rho-dependent actomyosin contractility at the cell rear, thereby offsetting the increased mechanical resistance imposed by confinement. Disrupting this adaptive response caused neutrophil jamming and eventual occlusion of confined capillary-like networks. These findings identify a neutrophil-intrinsic mechanism that couples capillary confinement to rapid migratory adaptation, helping preserve vascular patency and potentially limiting tissue dysfunction during inflammation.
科研通智能强力驱动
Strongly Powered by AbleSci AI