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Biology subjects

Griffiths, G. M.

Publications and source records attributed to Griffiths, G. M..

2 recordsLinked to original sources

MYO1F interactome reveals the SH3-domain linked CASS complex at podosomes and the phagocytic cup

MYO1F, a long-tailed myosin of class I, is selectively expressed in immune cells and upregulated in microglia associated with neurodegenerative pathogenesis. The intracellular functions of myosin motors involve adaptor proteins, which regulate cargo attachment and intracellular motor recruitment. To define the MYO1F interactome, we performed an in situ proximity labelling-based proteomic analysis in human myeloid U937 cells. We identified a distinct SH3-domain-dependent adaptor module comprising CD2AP, ASAP1, SH3BP2, and SH3KBP1 (CASS complex), which localizes with MYO1F in podosomes and phagocytic cups. Structural modelling and mutagenesis confirmed multivalent proline-rich motif interactions of the CASS complex with the MYO1F SH3 domain. Further deletions revealed a second group of membrane-associated adaptor proteins that bind to the MYO1F pleckstrin homology (PH) domain. Immunofluorescence in macrophages and microglia confirmed the conserved localization of MYO1F and its adaptors at actin-rich podosomes and phagocytic cups. Functional assays demonstrated that MYO1F recruitment to the phagocytic cup requires motor activity and intact PH and SH3 domains. This study provides the first comparative interactome of MYO1F and its paralogue MYO1E and supports a role for MYO1F in podosomes and during phagocytosis in both peripheral and brain-resident myeloid cells.

cell biology↗

Actin conformation dynamics precede force generation in cytotoxic T lymphocytes

Cytotoxic T lymphocytes (CTLs) are cells of the adaptive immune system that are able to recognise and kill cancerous or virally infected target cells. The biochemical basis of CTL-mediated killing has been examined in great detail. Recent work has underscored the importance of physical forces in T cell function too, but how CTLs sense and exert force during migration and killing is not fully understood. Here, by expressing actin conformation probes based on the CH domain of utrophin, we directly visualize regions of altered F-actin conformation in primary CTLs during migration and killing. By combining these probes with traction force microscopy, we correlate external force with the internal cytoskeleton. We show that actin conformation is regulated upstream of force production, and that force exertion at the cytotoxic immune synapse temporally follows actin conformation dynamics. Our work offers novel insight into the relationship between cellular force production and F-actin conformation in important primary immune cells.

cell biology↗