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Biology subjects

Bhagrath, A.

Publications and source records attributed to Bhagrath, A..

2 recordsLinked to original sources

Cooperative motility emerges in crowds of T cells but not neutrophils

Interacting, self-propelled particles are prone to jamming when crowded. This well-described phenomenon is shared by diverse systems including cars, animal colonies, and pedestrians. T cells, essential effectors of adaptive immunity, seemingly defy this principle: the rapid migration enabling their protective function persists even in tightly packed tissue environments - from the thymus where T cells develop, to lymphoid organs they survey for antigen, to tissues they clear from infection. Here we studied T cell crowds by combining experiments of T cells migrating in microfluidic devices with in silico models. We observed that while single T cells are highly heterogeneous in their motility, in crowds they synchronized their speeds and formed stable, motile trains. Our models showed that the emergence of this flocking-like behavior can be explained by a combination of two interaction mechanisms at the cell-cell interface: adhesion maintains cohesive T cell groups, and force transmission accelerates slower cells. Not all immune cells flock when they are crowded: neutrophils in the same settings slowed down with increasing cell density. Thus, cooperative motion may enable T cells to remain motile in densely packed tissue environments, preventing jams that curtail the motion of other crowded systems.

cell biology↗

DOCK8 regulates a mechanosensitive actin redistribution that maintains immune cell cohesion and protects the nucleus during migration

Immune cells navigate through complex 3-dimensional tissue architectures, utilizing an amoeboid mode of migration, characterized by extensive cellular deformation, low adhesion, and high cell velocities. In the absence of expression of Dedicator of Cytokinesis 8 (Dock8), a gene identified with loss-of-function mutations in immunodeficiency, cells become entangled during migration through dense, confined environments and consequently undergo catastrophic cell rupturing, while migration on 2D surfaces remains entirely intact. Here we investigated the specific cytoskeletal defect of Dock8-deficient activated T cells, showing that even prior to entanglement they display a striking difference in F-actin distribution compared to wild type (WT) cells. We describe a central pool of F-actin in WT murine and human T cells which is absent in Dock8 KO T cells, and determine that the relocalization of F-actin is a mechanoresponsive circuit, emerging only when cells are very confined. Our works shows that the central actin pool is nucleo-protective, reducing nuclear deformation and DNA damage during confined migration. We identify the Hippo-pathway kinase Mst1 as a co-mediator of this mechanosensitive pathway in conjunction with Dock8, allowing for cell cohesion and survival during migration through complex environments.

immunology↗