Literature DB >> 27758872

Alveolar macrophage development in mice requires L-plastin for cellular localization in alveoli.

Elizabeth M Todd1, Julie Y Zhou1, Taylor P Szasz1, Lauren E Deady1, June A D'Angelo2, Matthew D Cheung3, Alfred H J Kim3, Sharon Celeste Morley1,2.   

Abstract

Alveolar macrophages are lung-resident sentinel cells that develop perinatally and protect against pulmonary infection. Molecular mechanisms controlling alveolar macrophage generation have not been fully defined. Here, we show that the actin-bundling protein L-plastin (LPL) is required for the perinatal development of alveolar macrophages. Mice expressing a conditional allele of LPL (CD11c.Crepos-LPLfl/fl) exhibited significant reductions in alveolar macrophages and failed to effectively clear pulmonary pneumococcal infection, showing that immunodeficiency results from reduced alveolar macrophage numbers. We next identified the phase of alveolar macrophage development requiring LPL. In mice, fetal monocytes arrive in the lungs during a late fetal stage, maturing to alveolar macrophages through a prealveolar macrophage intermediate. LPL was required for the transition from prealveolar macrophages to mature alveolar macrophages. The transition from prealveolar macrophage to alveolar macrophage requires the upregulation of the transcription factor peroxisome proliferator-activated receptor-γ (PPAR-γ), which is induced by exposure to granulocyte-macrophage colony-stimulating factor (GM-CSF). Despite abundant lung GM-CSF and intact GM-CSF receptor signaling, PPAR-γ was not sufficiently upregulated in developing alveolar macrophages in LPL-/- pups, suggesting that precursor cells were not correctly localized to the alveoli, where GM-CSF is produced. We found that LPL supports 2 actin-based processes essential for correct localization of alveolar macrophage precursors: (1) transmigration into the alveoli, and (2) engraftment in the alveoli. We thus identify a molecular pathway governing neonatal alveolar macrophage development and show that genetic disruption of alveolar macrophage development results in immunodeficiency.
© 2016 by The American Society of Hematology.

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Year:  2016        PMID: 27758872      PMCID: PMC5159703          DOI: 10.1182/blood-2016-03-705962

Source DB:  PubMed          Journal:  Blood        ISSN: 0006-4971            Impact factor:   22.113


  51 in total

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Journal:  Blood       Date:  2015-07-31       Impact factor: 22.113

2.  Local delivery of GM-CSF protects mice from lethal pneumococcal pneumonia.

Authors:  Kathrin Steinwede; Ole Tempelhof; Kristine Bolte; Regina Maus; Jennifer Bohling; Bianca Ueberberg; Florian Länger; John W Christman; James C Paton; Kjetil Ask; Shyam Maharaj; Martin Kolb; Jack Gauldie; Tobias Welte; Ulrich A Maus
Journal:  J Immunol       Date:  2011-10-14       Impact factor: 5.422

3.  The influence of age and gender on the population-based incidence of community-acquired pneumonia caused by different microbial pathogens.

Authors:  Félix Gutiérrez; Mar Masiá; Carlos Mirete; Bernardo Soldán; J Carlos Rodríguez; Sergio Padilla; Ildefonso Hernández; Gloria Royo; Alberto Martin-Hidalgo
Journal:  J Infect       Date:  2006-01-10       Impact factor: 6.072

4.  Fimbrin in podosomes of monocyte-derived osteoclasts.

Authors:  S G Babb; P Matsudaira; M Sato; I Correia; S S Lim
Journal:  Cell Motil Cytoskeleton       Date:  1997

5.  Fate mapping reveals origins and dynamics of monocytes and tissue macrophages under homeostasis.

Authors:  Simon Yona; Ki-Wook Kim; Yochai Wolf; Alexander Mildner; Diana Varol; Michal Breker; Dalit Strauss-Ayali; Sergey Viukov; Martin Guilliams; Alexander Misharin; David A Hume; Harris Perlman; Bernard Malissen; Elazar Zelzer; Steffen Jung
Journal:  Immunity       Date:  2012-12-27       Impact factor: 31.745

6.  Induction of the nuclear receptor PPAR-γ by the cytokine GM-CSF is critical for the differentiation of fetal monocytes into alveolar macrophages.

Authors:  Christoph Schneider; Samuel P Nobs; Michael Kurrer; Hubert Rehrauer; Christoph Thiele; Manfred Kopf
Journal:  Nat Immunol       Date:  2014-09-28       Impact factor: 25.606

7.  Single-cell phenotyping within transparent intact tissue through whole-body clearing.

Authors:  Bin Yang; Jennifer B Treweek; Rajan P Kulkarni; Benjamin E Deverman; Chun-Kan Chen; Eric Lubeck; Sheel Shah; Long Cai; Viviana Gradinaru
Journal:  Cell       Date:  2014-07-31       Impact factor: 41.582

8.  Alveolar macrophages are essential for protection from respiratory failure and associated morbidity following influenza virus infection.

Authors:  Christoph Schneider; Samuel P Nobs; Alex K Heer; Michael Kurrer; Glynis Klinke; Nico van Rooijen; Johannes Vogel; Manfred Kopf
Journal:  PLoS Pathog       Date:  2014-04-03       Impact factor: 6.823

9.  L-plastin nanobodies perturb matrix degradation, podosome formation, stability and lifetime in THP-1 macrophages.

Authors:  Sarah De Clercq; Ciska Boucherie; Joël Vandekerckhove; Jan Gettemans; Aude Guillabert
Journal:  PLoS One       Date:  2013-11-13       Impact factor: 3.240

10.  Sessile alveolar macrophages communicate with alveolar epithelium to modulate immunity.

Authors:  Kristin Westphalen; Galina A Gusarova; Mohammad N Islam; Manikandan Subramanian; Taylor S Cohen; Alice S Prince; Jahar Bhattacharya
Journal:  Nature       Date:  2014-01-19       Impact factor: 49.962

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  22 in total

1.  L-Plastin deficiency produces increased trabecular bone due to attenuation of sealing ring formation and osteoclast dysfunction.

Authors:  Meenakshi A Chellaiah; Megan C Moorer; Sunipa Majumdar; Hanan Aljohani; Sharon C Morley; Vanessa Yingling; Joseph P Stains
Journal:  Bone Res       Date:  2020-01-22       Impact factor: 13.567

2.  Identification of regulatory elements recapitulating early expression of L-plastin in the zebrafish enveloping layer and embryonic periderm.

Authors:  Emily A Baumgartner; Zachary J Compton; Spencer Evans; Jacek Topczewski; Elizabeth E LeClair
Journal:  Gene Expr Patterns       Date:  2019-03-30       Impact factor: 1.224

Review 3.  Location, function, and ontogeny of pulmonary macrophages during the steady state.

Authors:  Natalio Garbi; Bart N Lambrecht
Journal:  Pflugers Arch       Date:  2017-03-13       Impact factor: 3.657

4.  PPAR-γ in Macrophages Limits Pulmonary Inflammation and Promotes Host Recovery following Respiratory Viral Infection.

Authors:  Su Huang; Bibo Zhu; In Su Cheon; Nick P Goplen; Li Jiang; Ruixuan Zhang; R Stokes Peebles; Matthias Mack; Mark H Kaplan; Andrew H Limper; Jie Sun
Journal:  J Virol       Date:  2019-04-17       Impact factor: 5.103

Review 5.  Biology of lung macrophages in health and disease.

Authors:  Helena Aegerter; Bart N Lambrecht; Claudia V Jakubzick
Journal:  Immunity       Date:  2022-09-13       Impact factor: 43.474

Review 6.  Mucosal immune responses to infection and vaccination in the respiratory tract.

Authors:  Robert C Mettelman; E Kaitlynn Allen; Paul G Thomas
Journal:  Immunity       Date:  2022-05-10       Impact factor: 43.474

Review 7.  Origin and ontogeny of lung macrophages: from mice to humans.

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Journal:  Immunology       Date:  2019-12-04       Impact factor: 7.397

8.  Novel Mouse Model Reveals That Serine Phosphorylation of L-Plastin Is Essential for Effective Splenic Clearance of Pneumococcus.

Authors:  Edgar P Anaya; Xue Lin; Elizabeth M Todd; Taylor P Szasz; S Celeste Morley
Journal:  J Immunol       Date:  2021-04-15       Impact factor: 5.422

9.  Targeted deletion of the zebrafish actin-bundling protein L-plastin (lcp1).

Authors:  Margaret J Kell; Rachel E Riccio; Emily A Baumgartner; Zachary J Compton; Paul J Pecorin; Taylor A Mitchell; Jacek Topczewski; Elizabeth E LeClair
Journal:  PLoS One       Date:  2018-01-02       Impact factor: 3.240

10.  Perinatal development of innate immune topology.

Authors:  Philipp Henneke; Katrin Kierdorf; Lindsey J Hall; Markus Sperandio; Mathias Hornef
Journal:  Elife       Date:  2021-05-25       Impact factor: 8.140

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