Zhou Julie Y, Szasz Taylor P, Stewart-Hutchinson Phillip J, Sivapalan Janardan, Todd Elizabeth M, Deady Lauren E, Cooper John A, Onken Michael D, Morley S Celeste
Department of Pediatrics, Division of Infectious Diseases, Washington University School of Medicine, St. Louis, MO, 63110, United States.
Department of Biochemistry and Molecular Biophysics, Washington University School of Medicine, St. Louis, MO, 63110, United States.
Mol Immunol. 2016 Oct;78:79-88. doi: 10.1016/j.molimm.2016.08.012. Epub 2016 Sep 7.
Elucidating the molecular regulation of macrophage migration is essential for understanding the pathophysiology of multiple human diseases, including host responses to infection and autoimmune disorders. Macrophage migration is supported by dynamic rearrangements of the actin cytoskeleton, with formation of actin-based structures such as podosomes and lamellipodia. Here we provide novel insights into the function of the actin-bundling protein l-plastin (LPL) in primary macrophages. We found that podosome stability is disrupted in primary resident peritoneal macrophages from LPL mice. Live-cell imaging of F-actin using resident peritoneal macrophages from LifeACT-RFP mice demonstrated that loss of LPL led to decreased longevity of podosomes, without reducing the number of podosomes initiated. Additionally, macrophages from LPL mice failed to elongate in response to chemotactic stimulation. These deficiencies in podosome stabilization and in macrophage elongation correlated with impaired macrophage transmigration in culture and decreased monocyte migration into murine peritoneum. Thus, we have identified a role for LPL in stabilizing long-lived podosomes and in enabling macrophage motility.
阐明巨噬细胞迁移的分子调控对于理解多种人类疾病的病理生理学至关重要,这些疾病包括宿主对感染的反应和自身免疫性疾病。巨噬细胞的迁移由肌动蛋白细胞骨架的动态重排所支持,形成基于肌动蛋白的结构,如足体和片状伪足。在这里,我们对肌动蛋白捆绑蛋白l- plastin(LPL)在原代巨噬细胞中的功能提供了新的见解。我们发现,来自LPL小鼠的原代驻留腹膜巨噬细胞中足体稳定性受到破坏。使用来自LifeACT-RFP小鼠的驻留腹膜巨噬细胞对F-肌动蛋白进行活细胞成像显示,LPL的缺失导致足体寿命缩短,但并未减少起始足体的数量。此外,来自LPL小鼠的巨噬细胞在趋化刺激下未能伸长。足体稳定和巨噬细胞伸长方面的这些缺陷与培养中巨噬细胞迁移受损以及单核细胞向小鼠腹膜的迁移减少相关。因此,我们确定了LPL在稳定长寿足体和促进巨噬细胞运动方面的作用。