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D'Amico, A. E.

Publications and source records attributed to D'Amico, A. E..

2 recordsLinked to original sources

The amoeboid migration of monocytes in confining channels requires the local remodeling of the cortical actin cytoskeleton by cofilin-1

Within the bloodstream, monocytes must traverse the microvasculature to prevent leukostasis, which is the entrapment of monocytes within the confines of the microvasculature. Using the model cell line, THP-1, and VCAM-1 coated channels to simulate the microvasculature surface, we demonstrate that monocytes predominantly adopt an amoeboid phenotype, which is characterized by the formation of blebs. As opposed to cortical actin flow in leader blebs, cell movement is correlated with myosin contraction at the cell rear. It was previously documented that cofilin-1 promotes cortical actin turnover at leader bleb necks in melanoma cells. In monocytes, our data suggest that cofilin-1 promotes the local upregulation of myosin contractility through actin cytoskeleton remodeling. In support of this concept, cofilin-1 is found to localize to a single cell edge. Moreover, the widespread upregulation of myosin contractility was found to inhibit migration. Thus, monocytes within the microvasculature may avoid entrapment by adopting an amoeboid mode of migration. Summary StatementIn confining channels, monocytes largely adopt an amoeboid migrating phenotype, which is found to depend on the upregulation of myosin contractility at the cell rear and cortical actin remodeling by cofilin-1.

cell biology↗

PKC-ε Regulates Vesicle Delivery and Focal Exocytosis for Efficient IgG-mediated Phagocytosis

PKC-{varepsilon} is required for membrane addition during IgG-mediated phagocytosis; its role in this process is ill-defined. High resolution imaging revealed that PKC-{varepsilon} exits the Golgi and enters phagosomes on vesicles that then fuse. TNF- and PKC- colocalize at the Golgi and on vesicles that enter the phagosome. Loss of PKC-{varepsilon} and TNF- delivery upon nocodazole treatment confirmed vesicular transport on microtubules. That TNF-+ vesicles are not delivered in macrophages from PKC-{varepsilon} null mice, or upon dissociation of the Golgi-associated pool of PKC-{varepsilon}, implicates Golgi-tethered PKC-{varepsilon} as a driver of Golgi-to-phagosome trafficking. Finally, we established that PKC-{varepsilon}s regulatory domain is sufficient for delivery of TNF-+ vesicles to the phagosome. These studies reveal a novel role for PKC-{varepsilon} in focal exocytosis: its regulatory domain drives Golgi-derived vesicles to the phagosome while catalytic activity is required for their fusion. This is one of the first examples of a PKC requirement for vesicular trafficking and describes a novel function for a PKC regulatory domain. SummaryGolgi-tethered PKC-{varepsilon} regulates vesicle trafficking along phagosomally-directed microtubules and vesicle fusion into forming phagosomes. Unexpectedly, the regulatory domain is sufficient for vesicle delivery. Graphical AbstractPKC-{varepsilon} is required for Golgi-to-phagosome trafficking. Golgi-tethered PKC-{varepsilon}+ vesicles carry TNF- to IgG phagosomes. Dissociation of PKC-{varepsilon} from the Golgi with PIK93 or expression of hSac1-K2A prevents vesicle delivery. The regulatory domain of PKC-{varepsilon} ({varepsilon}RD) is sufficient for vesicle delivery, but not fusion. Created with BioRender.com O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=113 SRC="FIGDIR/small/443102v1_ufig1.gif" ALT="Figure 1"> View larger version (32K): org.highwire.dtl.DTLVardef@197962org.highwire.dtl.DTLVardef@7037f6org.highwire.dtl.DTLVardef@16a0610org.highwire.dtl.DTLVardef@1b40a4a_HPS_FORMAT_FIGEXP M_FIG C_FIG

immunology↗