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足体formin蛋白FMNL1γ的非经典活性支持免疫细胞迁移。

Non-canonical activity of the podosomal formin FMNL1γ supports immune cell migration.

作者信息

Miller Matthew R, Miller Eric W, Blystone Scott D

机构信息

Department of Cell and Developmental Biology, SUNY Upstate Medical University, 750 East Adams St., Syracuse, NY 13210, USA.

Department of Cell and Developmental Biology, SUNY Upstate Medical University, 750 East Adams St., Syracuse, NY 13210, USA

出版信息

J Cell Sci. 2017 May 15;130(10):1730-1739. doi: 10.1242/jcs.195099. Epub 2017 Mar 27.

Abstract

Having previously located the formin FMNL1 in macrophage podosomes, we developed an model to assess the role of FMNL1 in the migration activities of primary macrophages. Deletion of FMNL1 in mice was genetically lethal; however, targeted deletion in macrophages was achieved by employing macrophage-specific Cre. Unchallenged FMNL1-deficient mice exhibited an unexpected reduction in tissue-resident macrophages despite normal blood monocyte numbers. Upon immune stimulus, the absence of FMNL1 resulted in reduced macrophage recruitment , decreased migration in two-dimensional culture and a decrease in the number of macrophages exhibiting podosomes. Of the three described isoforms of FMNL1 - α, β and γ - only FMNL1γ rescued macrophage migration when expressed exogenously in depleted macrophages. Surprisingly, mutation of residues in the FH2 domain of FMNL1γ that disrupt barbed-end actin binding did not limit rescue of macrophage migration and podosome numbers. These observations suggest that FMNL1 contributes to macrophage migration activity by stabilizing the lifespan of podosomes without interaction of fast-growing actin termini.

摘要

我们之前已在巨噬细胞的足体中定位到formin蛋白FMNL1,在此基础上,我们构建了一个模型来评估FMNL1在原代巨噬细胞迁移活性中的作用。在小鼠中删除FMNL1具有基因致死性;然而,通过使用巨噬细胞特异性Cre实现了在巨噬细胞中的靶向删除。未受刺激的FMNL1缺陷小鼠尽管血液单核细胞数量正常,但组织驻留巨噬细胞却意外减少。受到免疫刺激后,缺乏FMNL1导致巨噬细胞募集减少、二维培养中的迁移能力下降以及显示足体的巨噬细胞数量减少。在FMNL1描述的三种异构体——α、β和γ中,只有FMNL1γ在耗尽的巨噬细胞中外源表达时能挽救巨噬细胞迁移。令人惊讶的是,FMNL1γ的FH2结构域中破坏带刺末端肌动蛋白结合的残基突变并不限制对巨噬细胞迁移和足体数量的挽救。这些观察结果表明,FMNL1通过稳定足体的寿命而不与快速生长的肌动蛋白末端相互作用来促进巨噬细胞迁移活性。

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