Literature DB >> 31101623

Plasmin-mediated fibrinolysis enables macrophage migration in a murine model of inflammation.

Lakmali Munasinghage Silva1,2, Andrew Gary Lum2, Collin Tran1, Molly W Shaw3, Zhen Gao3, Matthew J Flick4,5, Niki M Moutsopoulos2, Thomas H Bugge1, Eric S Mullins3,5.   

Abstract

Efficient migration of macrophages to sites of inflammation requires cell surface-bound plasmin(ogen). Here, we investigated the mechanisms underlying the deficits of plasmin(ogen)-mediated macrophage migration in 2 models: murine thioglycollate-induced peritonitis and in vitro macrophage migration. As previously reported, macrophage migration into the peritoneal cavity of mice in response to thioglycollate was significantly impaired in the absence of plasminogen. Fibrin(ogen) deposition was noted in the peritoneal cavity in response to thioglycollate, with a significant increase in fibrin(ogen) in the plasminogen-deficient mice. Interestingly, macrophage migration was restored in plasminogen-deficient mice by simultaneous imposition of fibrinogen deficiency. Consistent with this in vivo finding, chemotactic migration of cultured macrophages through a fibrin matrix did not occur in the absence of plasminogen. The macrophage requirement for plasmin-mediated fibrinolysis, both in vivo and in vitro, was negated by deletion of the major myeloid integrin αMβ2-binding motif on the γ chain of fibrin(ogen). The study identifies a critical role of fibrinolysis in macrophage migration, presumably through the alleviation of migratory constraints imposed by the interaction of leukocytes with fibrin(ogen) through the integrin αMβ2 receptor.

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Year:  2019        PMID: 31101623      PMCID: PMC6639982          DOI: 10.1182/blood.2018874859

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


  52 in total

1.  Crescentic glomerulonephritis is diminished in fibrinogen-deficient mice.

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2.  Colitis-associated cancer is dependent on the interplay between the hemostatic and inflammatory systems and supported by integrin alpha(M)beta(2) engagement of fibrinogen.

Authors:  Kris A Steinbrecher; Netanel A Horowitz; Elizabeth A Blevins; Kelley A Barney; Maureen A Shaw; Eleana Harmel-Laws; Fred D Finkelman; Matthew J Flick; Malinda D Pinkerton; Kathryn E Talmage; Keith W Kombrinck; David P Witte; Joseph S Palumbo
Journal:  Cancer Res       Date:  2010-03-16       Impact factor: 12.701

3.  Plasminogen promotes macrophage phagocytosis in mice.

Authors:  Riku Das; Swetha Ganapathy; Megan Settle; Edward F Plow
Journal:  Blood       Date:  2014-05-29       Impact factor: 22.113

4.  Neonatal bleeding in transgenic mice expressing urokinase-type plasminogen activator.

Authors:  J L Heckel; E P Sandgren; J L Degen; R D Palmiter; R L Brinster
Journal:  Cell       Date:  1990-08-10       Impact factor: 41.582

5.  Urokinase-generated plasmin activates matrix metalloproteinases during aneurysm formation.

Authors:  P Carmeliet; L Moons; R Lijnen; M Baes; V Lemaître; P Tipping; A Drew; Y Eeckhout; S Shapiro; F Lupu; D Collen
Journal:  Nat Genet       Date:  1997-12       Impact factor: 38.330

6.  Healing of corneal epithelial defects in plasminogen- and fibrinogen-deficient mice.

Authors:  W W Kao; C W Kao; A H Kaufman; K W Kombrinck; R L Converse; W V Good; T H Bugge; J L Degen
Journal:  Invest Ophthalmol Vis Sci       Date:  1998-03       Impact factor: 4.799

7.  Enolase-1 promotes plasminogen-mediated recruitment of monocytes to the acutely inflamed lung.

Authors:  Malgorzata Wygrecka; Leigh M Marsh; Rory E Morty; Ingrid Henneke; Andreas Guenther; Juergen Lohmeyer; Philipp Markart; Klaus T Preissner
Journal:  Blood       Date:  2009-01-30       Impact factor: 22.113

8.  Inflammatory macrophage migration requires MMP-9 activation by plasminogen in mice.

Authors:  Yanqing Gong; Erika Hart; Aleksey Shchurin; Jane Hoover-Plow
Journal:  J Clin Invest       Date:  2008-09       Impact factor: 14.808

9.  Fibrin deposition accelerates neurovascular damage and neuroinflammation in mouse models of Alzheimer's disease.

Authors:  Justin Paul; Sidney Strickland; Jerry P Melchor
Journal:  J Exp Med       Date:  2007-07-30       Impact factor: 14.307

10.  CD11c/CD18 Dominates Adhesion of Human Monocytes, Macrophages and Dendritic Cells over CD11b/CD18.

Authors:  Noémi Sándor; Szilvia Lukácsi; Rita Ungai-Salánki; Norbert Orgován; Bálint Szabó; Róbert Horváth; Anna Erdei; Zsuzsa Bajtay
Journal:  PLoS One       Date:  2016-09-22       Impact factor: 3.240

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2.  Fibrin polymer on the surface of biomaterial implants drives the foreign body reaction.

Authors:  Arnat Balabiyev; Nataly P Podolnikova; Jacquelyn A Kilbourne; D Page Baluch; David Lowry; Azadeh Zare; Robert Ros; Matthew J Flick; Tatiana P Ugarova
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3.  Suppression of fibrin(ogen)-driven pathologies in disease models through controlled knockdown by lipid nanoparticle delivery of siRNA.

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Review 4.  Plasminogen Receptors and Fibrinolysis.

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Review 5.  Fibrinolysis: A Primordial System Linked to the Immune Response.

Authors:  Robert L Medcalf; Charithani B Keragala
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Review 6.  Inflammation, Infection and Venous Thromboembolism.

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Review 7.  How the PhoP/PhoQ System Controls Virulence and Mg2+ Homeostasis: Lessons in Signal Transduction, Pathogenesis, Physiology, and Evolution.

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Review 8.  Regulation of macrophage activation in the liver after acute injury: Role of the fibrinolytic system.

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9.  A critical role for plasminogen in inflammation.

Authors:  Sarah K Baker; Sidney Strickland
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Review 10.  Plasminogen activation in the musculoskeletal acute phase response: Injury, repair, and disease.

Authors:  Breanne H Y Gibson; Matthew T Duvernay; Stephanie N Moore-Lotridge; Matthew J Flick; Jonathan G Schoenecker
Journal:  Res Pract Thromb Haemost       Date:  2020-06-14
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