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Topographical analysis of immune cell interactions reveals a biomechanical signature for immune cytolysis

Immune cells live intensely physical lifestyles characterized by structural plasticity, mechanosensitivity, and force exertion. Whether specific immune functions require stereotyped patterns of mechanical output, however, is largely unknown. To address this question, we used super-resolution tractio...

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Autores principales: de Jesus, Miguel, Settle, Alexander H., Vorselen, Daan, Gaetjens, Thomas K., Galiano, Michael, Wong, Yung Yu, Fu, Tian-Ming, Santosa, Endi, Winer, Benjamin Y., Tamzalit, Fella, Wang, Mitchell S., Bao, Zhirong, Sun, Joseph C., Shah, Pavak, Theriot, Julie A., Abel, Steven M., Huse, Morgan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Cold Spring Harbor Laboratory 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10153123/
https://www.ncbi.nlm.nih.gov/pubmed/37131635
http://dx.doi.org/10.1101/2023.04.16.537078
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author de Jesus, Miguel
Settle, Alexander H.
Vorselen, Daan
Gaetjens, Thomas K.
Galiano, Michael
Wong, Yung Yu
Fu, Tian-Ming
Santosa, Endi
Winer, Benjamin Y.
Tamzalit, Fella
Wang, Mitchell S.
Bao, Zhirong
Sun, Joseph C.
Shah, Pavak
Theriot, Julie A.
Abel, Steven M.
Huse, Morgan
author_facet de Jesus, Miguel
Settle, Alexander H.
Vorselen, Daan
Gaetjens, Thomas K.
Galiano, Michael
Wong, Yung Yu
Fu, Tian-Ming
Santosa, Endi
Winer, Benjamin Y.
Tamzalit, Fella
Wang, Mitchell S.
Bao, Zhirong
Sun, Joseph C.
Shah, Pavak
Theriot, Julie A.
Abel, Steven M.
Huse, Morgan
author_sort de Jesus, Miguel
collection PubMed
description Immune cells live intensely physical lifestyles characterized by structural plasticity, mechanosensitivity, and force exertion. Whether specific immune functions require stereotyped patterns of mechanical output, however, is largely unknown. To address this question, we used super-resolution traction force microscopy to compare cytotoxic T cell immune synapses with contacts formed by other T cell subsets and macrophages. T cell synapses were globally and locally protrusive, which was fundamentally different from the coupled pinching and pulling of macrophage phagocytosis. By spectrally decomposing the force exertion patterns of each cell type, we associated cytotoxicity with compressive strength, local protrusiveness, and the induction of complex, asymmetric interfacial topographies. These features were further validated as cytotoxic drivers by genetic disruption of cytoskeletal regulators, direct imaging of synaptic secretory events, and in silico analysis of interfacial distortion. We conclude that T cell-mediated killing and, by implication, other effector responses are supported by specialized patterns of efferent force.
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spelling pubmed-101531232023-05-03 Topographical analysis of immune cell interactions reveals a biomechanical signature for immune cytolysis de Jesus, Miguel Settle, Alexander H. Vorselen, Daan Gaetjens, Thomas K. Galiano, Michael Wong, Yung Yu Fu, Tian-Ming Santosa, Endi Winer, Benjamin Y. Tamzalit, Fella Wang, Mitchell S. Bao, Zhirong Sun, Joseph C. Shah, Pavak Theriot, Julie A. Abel, Steven M. Huse, Morgan bioRxiv Article Immune cells live intensely physical lifestyles characterized by structural plasticity, mechanosensitivity, and force exertion. Whether specific immune functions require stereotyped patterns of mechanical output, however, is largely unknown. To address this question, we used super-resolution traction force microscopy to compare cytotoxic T cell immune synapses with contacts formed by other T cell subsets and macrophages. T cell synapses were globally and locally protrusive, which was fundamentally different from the coupled pinching and pulling of macrophage phagocytosis. By spectrally decomposing the force exertion patterns of each cell type, we associated cytotoxicity with compressive strength, local protrusiveness, and the induction of complex, asymmetric interfacial topographies. These features were further validated as cytotoxic drivers by genetic disruption of cytoskeletal regulators, direct imaging of synaptic secretory events, and in silico analysis of interfacial distortion. We conclude that T cell-mediated killing and, by implication, other effector responses are supported by specialized patterns of efferent force. Cold Spring Harbor Laboratory 2023-04-18 /pmc/articles/PMC10153123/ /pubmed/37131635 http://dx.doi.org/10.1101/2023.04.16.537078 Text en https://creativecommons.org/licenses/by-nc-nd/4.0/This work is licensed under a Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International License (https://creativecommons.org/licenses/by-nc-nd/4.0/) , which allows reusers to copy and distribute the material in any medium or format in unadapted form only, for noncommercial purposes only, and only so long as attribution is given to the creator.
spellingShingle Article
de Jesus, Miguel
Settle, Alexander H.
Vorselen, Daan
Gaetjens, Thomas K.
Galiano, Michael
Wong, Yung Yu
Fu, Tian-Ming
Santosa, Endi
Winer, Benjamin Y.
Tamzalit, Fella
Wang, Mitchell S.
Bao, Zhirong
Sun, Joseph C.
Shah, Pavak
Theriot, Julie A.
Abel, Steven M.
Huse, Morgan
Topographical analysis of immune cell interactions reveals a biomechanical signature for immune cytolysis
title Topographical analysis of immune cell interactions reveals a biomechanical signature for immune cytolysis
title_full Topographical analysis of immune cell interactions reveals a biomechanical signature for immune cytolysis
title_fullStr Topographical analysis of immune cell interactions reveals a biomechanical signature for immune cytolysis
title_full_unstemmed Topographical analysis of immune cell interactions reveals a biomechanical signature for immune cytolysis
title_short Topographical analysis of immune cell interactions reveals a biomechanical signature for immune cytolysis
title_sort topographical analysis of immune cell interactions reveals a biomechanical signature for immune cytolysis
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10153123/
https://www.ncbi.nlm.nih.gov/pubmed/37131635
http://dx.doi.org/10.1101/2023.04.16.537078
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