Single-cell topographical profiling of the immune synapse reveals a biomechanical signature of cytotoxicity.

免疫突触的单细胞拓扑结构分析揭示了细胞毒性的生物力学特征

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作者:de Jesus Miguel, Settle Alexander H, Vorselen Daan, Gaetjens Thomas K, Galiano Michael, Romin Yevgeniy, Lee Esther, Wong Yung Yu, Fu Tian-Ming, Santosa Endi, Winer Benjamin Y, Tamzalit Fella, Wang Mitchell S, Santella Anthony, Bao Zhirong, Sun Joseph C, Shah Pavak, Theriot Julie A, Abel Steven M, Huse Morgan
Immune cells have intensely physical lifestyles characterized by structural plasticity and force exertion. To investigate whether specific immune functions require stereotyped mechanical outputs, we used super-resolution traction force microscopy to compare the immune synapses formed by cytotoxic T cells with contacts formed by other T cell subsets and by macrophages. T cell synapses were globally compressive, which was fundamentally different from the pulling and pinching associated with macrophage phagocytosis. Spectral decomposition of force exertion patterns from each cell type linked cytotoxicity to compressive strength, local protrusiveness, and the induction of complex, asymmetric topography. These features were validated as cytotoxic drivers by genetic disruption of cytoskeletal regulators, live imaging of synaptic secretion, and in silico analysis of interfacial distortion. Synapse architecture and force exertion were sensitive to target stiffness and size, suggesting that the mechanical potentiation of killing is biophysically adaptive. We conclude that cellular cytotoxicity and, by implication, other effector responses are supported by specialized patterns of efferent force.

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