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TIRF imaging of Fc gamma receptor microclusters dynamics and signaling on macrophages during frustrated phagocytosis

机译:FCγ受体微肠杆菌动力学和信令对巨噬细胞的动力学和信号传导的TIRF成像

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Background Recent evidence indicates that in addition to the T-cell receptor, microclustering is an important mechanism for the activation of the B-cell receptor and the mast cell Fcε-receptor. In macrophages and neutrophils, particles opsonized with immunoglobulin G (IgG) antibodies activate the phagocytic Fcγ-receptor (FcγR) leading to rearrangements of the actin cytoskeleton. The purpose of this study was to establish a system for high-resolution imaging of FcγR microclustering dynamics and the recruitment of the downstream signaling machinery to these microclusters. Methods We developed a supported lipid bilayer platform with incorporated antibodies on its surface to study the formation and maturation of FcγR signaling complexes in macrophages. Time-lapse multicolor total internal reflection microscopy was used to capture the formation of FcγR-IgG microclusters and their assembly into signaling complexes on the plasma membrane of murine bone marrow derived macrophages. Results Upon antibody binding, macrophages formed FcγR-IgG complexes at the leading edge of advancing pseudopods. These complexes then moved toward the center of the cell to form a structure reminiscent of the supramolecular complex observed in the T-cell/antigen presenting cell immune synapse. Colocalization of signaling protein Syk with nascent clusters of antibodies indicated that phosphorylated receptor complexes underwent maturation as they trafficked toward the center of the cell. Additionally, imaging of fluorescent BtkPH domains indicated that 3′-phosphoinositides propagated laterally away from the FcγR microclusters. Conclusion We demonstrate that surface-associated but mobile IgG induces the formation of FcγR microclusters at the pseudopod leading edge. These clusters recruit Syk and drive the production of diffusing PI(3,4,5)P3 that is coordinated with lamellar actin polymerization. Upon reaching maximal extension, FcγR microclusters depart from the leading edge and are transported to the center of the cellular contact region to form a synapse-like structure, analogous to the process observed for T-cell receptors.
机译:背景技术最近的证据表明,除了T细胞受体之外,微平弹素是激活B细胞受体和肥大细胞Fcε受体的重要机制。在巨噬细胞和嗜中性粒细胞中,用免疫球蛋白G(IgG)抗体的粒子化激活吞噬细胞Fcγ-受体(FcγR),其导致肌动蛋白细胞骨架的重排。本研究的目的是建立一个用于FCγR微集群动力学的高分辨率成像的系统,以及向这些小调集进行下游信号机械的招募。方法我们开发了一种支持的脂质双层平台,其表面掺入抗体,以研究巨噬细胞中FCγR信号配合物的形成和成熟。时间流逝多色全内反射显微镜用于捕获FCγR-IgG微冲击器的形成及其组装在鼠骨髓衍生巨噬细胞的血浆膜上的信号配合物中。结果在抗体结合时,巨噬细胞在推进假孔的前缘形成FcγR-IgG复合物。然后这些配合物朝向细胞的中心移动,形成在呈现细胞免疫突触的T细胞/抗原中观察到的超分子复合物的结构。信号传导蛋白Syk与新生抗体簇的分致化表明,磷酸化受体复合物在被朝向细胞的中心被贩运时经历成熟。另外,荧光BTKPH结构域的成像表明3'-磷酸亚膦酰横向远离FCγR微生物蛋白繁殖。结论我们证明了表面相关但是移动IgG在伪透视前沿诱导FCγR小组的形成。这些集群招募Syk并驱动了与层状肌动蛋白聚合协调的扩散pi(3,4,5)p 3 的产生。在达到最大延伸时,FCγR微冲击仪从前缘脱离并被输送到蜂窝接触区域的中心以形成类似于对T细胞受体观察到的过程的突触状结构。

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