Literature DB >> 34708690

Phagocytic 'teeth' and myosin-II 'jaw' power target constriction during phagocytosis.

Daan Vorselen1, Sarah R Barger2, Yifan Wang3, Wei Cai3, Julie A Theriot1, Nils C Gauthier4, Mira Krendel2.   

Abstract

Phagocytosis requires rapid actin reorganization and spatially controlled force generation to ingest targets ranging from pathogens to apoptotic cells. How actomyosin activity directs membrane extensions to engulf such diverse targets remains unclear. Here, we combine lattice light-sheet microscopy (LLSM) with microparticle traction force microscopy (MP-TFM) to quantify actin dynamics and subcellular forces during macrophage phagocytosis. We show that spatially localized forces leading to target constriction are prominent during phagocytosis of antibody-opsonized targets. This constriction is largely driven by Arp2/3-mediated assembly of discrete actin protrusions containing myosin 1e and 1f ('teeth') that appear to be interconnected in a ring-like organization. Contractile myosin-II activity contributes to late-stage phagocytic force generation and progression, supporting a specific role in phagocytic cup closure. Observations of partial target eating attempts and sudden target release via a popping mechanism suggest that constriction may be critical for resolving complex in vivo target encounters. Overall, our findings present a phagocytic cup shaping mechanism that is distinct from cytoskeletal remodeling in 2D cell motility and may contribute to mechanosensing and phagocytic plasticity.
© 2021, Vorselen et al.

Entities:  

Keywords:  actin; cell biology; cytoskeleton; mouse; myosin; phagocytosis; physics of living systems

Mesh:

Substances:

Year:  2021        PMID: 34708690      PMCID: PMC8585483          DOI: 10.7554/eLife.68627

Source DB:  PubMed          Journal:  Elife        ISSN: 2050-084X            Impact factor:   8.140


  75 in total

1.  Involvement of the Arp2/3 complex in phagocytosis mediated by FcgammaR or CR3.

Authors:  R C May; E Caron; A Hall; L M Machesky
Journal:  Nat Cell Biol       Date:  2000-04       Impact factor: 28.824

2.  On the role of myosin-II in cytokinesis: division of Dictyostelium cells under adhesive and nonadhesive conditions.

Authors:  J H Zang; G Cavet; J H Sabry; P Wagner; S L Moores; J A Spudich
Journal:  Mol Biol Cell       Date:  1997-12       Impact factor: 4.138

3.  The podosome cap: past, present, perspective.

Authors:  Stefan Linder; Pasquale Cervero
Journal:  Eur J Cell Biol       Date:  2020-05-25       Impact factor: 4.492

4.  Cooperative epithelial phagocytosis enables error correction in the early embryo.

Authors:  Esteban Hoijman; Hanna-Maria Häkkinen; Queralt Tolosa-Ramon; Senda Jiménez-Delgado; Chris Wyatt; Marta Miret-Cuesta; Manuel Irimia; Andrew Callan-Jones; Stefan Wieser; Verena Ruprecht
Journal:  Nature       Date:  2021-02-10       Impact factor: 49.962

5.  Frustrated Phagocytic Spreading of J774A-1 Macrophages Ends in Myosin II-Dependent Contraction.

Authors:  Daniel T Kovari; Wenbin Wei; Patrick Chang; Jan-Simon Toro; Ruth Fogg Beach; Dwight Chambers; Karen Porter; Doyeon Koo; Jennifer E Curtis
Journal:  Biophys J       Date:  2016-12-20       Impact factor: 4.033

Review 6.  A mechanical perspective on phagocytic cup formation.

Authors:  Daan Vorselen; Ramon Lorenzo D Labitigan; Julie A Theriot
Journal:  Curr Opin Cell Biol       Date:  2020-07-19       Impact factor: 8.382

Review 7.  Controlled One-on-One Encounters between Immune Cells and Microbes Reveal Mechanisms of Phagocytosis.

Authors:  Volkmar Heinrich
Journal:  Biophys J       Date:  2015-08-04       Impact factor: 4.033

8.  Fc-receptor-mediated phagocytosis is regulated by mechanical properties of the target.

Authors:  Karen A Beningo; Yu-li Wang
Journal:  J Cell Sci       Date:  2002-02-15       Impact factor: 5.285

Review 9.  Physical Constraints and Forces Involved in Phagocytosis.

Authors:  Valentin Jaumouillé; Clare M Waterman
Journal:  Front Immunol       Date:  2020-06-12       Impact factor: 7.561

10.  Quantifying compressive forces between living cell layers and within tissues using elastic round microgels.

Authors:  Erfan Mohagheghian; Junyu Luo; Junjian Chen; Gaurav Chaudhary; Junwei Chen; Jian Sun; Randy H Ewoldt; Ning Wang
Journal:  Nat Commun       Date:  2018-05-14       Impact factor: 14.919

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  6 in total

1.  CPEB1 regulates the inflammatory immune response, phagocytosis, and alternative polyadenylation in microglia.

Authors:  Maria P Ivshina; Heleen M van 't Spijker; Suna Jung; Sithara Raju Ponny; Dorothy P Schafer; Joel D Richter
Journal:  Glia       Date:  2022-05-30       Impact factor: 8.073

2.  Distinct timing of neutrophil spreading and stiffening during phagocytosis.

Authors:  Alexandra Zak; Sophie Dupré-Crochet; Elodie Hudik; Avin Babataheri; Abdul I Barakat; Oliver Nüsse; Julien Husson
Journal:  Biophys J       Date:  2022-03-19       Impact factor: 3.699

Review 3.  Biophysical Tools and Concepts Enable Understanding of Asexual Blood Stage Malaria.

Authors:  Viola Introini; Matt A Govendir; Julian C Rayner; Pietro Cicuta; Maria Bernabeu
Journal:  Front Cell Infect Microbiol       Date:  2022-05-31       Impact factor: 6.073

Review 4.  May the force be with your (immune) cells: an introduction to traction force microscopy in Immunology.

Authors:  Farah Mustapha; Kheya Sengupta; Pierre-Henri Puech
Journal:  Front Immunol       Date:  2022-07-28       Impact factor: 8.786

5.  Actin nano-architecture of phagocytic podosomes.

Authors:  J Cody Herron; Shiqiong Hu; Takashi Watanabe; Ana T Nogueira; Bei Liu; Megan E Kern; Jesse Aaron; Aaron Taylor; Michael Pablo; Teng-Leong Chew; Timothy C Elston; Klaus M Hahn
Journal:  Nat Commun       Date:  2022-07-27       Impact factor: 17.694

6.  Spatial models of pattern formation during phagocytosis.

Authors:  John Cody Herron; Shiqiong Hu; Bei Liu; Takashi Watanabe; Klaus M Hahn; Timothy C Elston
Journal:  PLoS Comput Biol       Date:  2022-10-03       Impact factor: 4.779

  6 in total

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