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PMID: 21501359 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Mammalian antimicrobial peptide influences control of cutaneous Leishmania infection.

Cellular microbiology ·Vol. 13 ·No. 6 ·2011-06-00 ·Pages 913-23

Kulkarni MM, Barbi J, McMaster WR, Gallo RL, Satoskar AR, McGwire BS

Abstract

Cathelicidin-type antimicrobial peptides (CAMP) are important mediators of innate immunity against microbial pathogens acting through direct interaction with and disruption of microbial membranes and indirectly through modulation of host cell migration and activation. Using a mouse knock-out model in CAMP we studied the role of this host peptide in control of dissemination of cutaneous infection by the parasitic protozoan Leishmania. The presence of pronounced host inflammatory infiltration in lesions and lymph nodes of infected animals was CAMP-dependent. Lack of CAMP expression was associated with higher levels of IL-10 receptor expression in bone marrow, splenic and lymph node macrophages as well as higher anti-inflammatory IL-10 production by bone marrow macrophages and spleen cells but reduced production of the pro-inflammatory cytokines IL-12 and IFN-γ by lymph nodes. Unlike wild-type mice, local lesions were exacerbated and parasites were found largely disseminated in CAMP knockouts. Infection of CAMP knockouts with parasite mutants lacking the surface metalloprotease virulence determinant resulted in more robust disseminated infection than in control animals suggesting that CAMP activity is negatively regulated by parasite surface proteolytic activity. This correlated with the ability of the protease to degrade CAMP in vitro and co-localization of CAMP with parasites within macrophages. Our results highlight the interplay of antimicrobial peptides and Leishmania that influence the host immune response and the outcome of infection.

MeSH Terms
Animals Antimicrobial Cationic Peptides Cathelicidins/deficiency,immunology Cytokines/metabolism Inflammation/immunology,pathology Leishmania/immunology Leishmaniasis, Cutaneous/immunology,pathology Lymph Nodes/immunology Macrophages/immunology Mice Mice, Inbred BALB C Mice, Knockout Models, Biological Spleen/immunology
Chemicals
Antimicrobial Cationic Peptides Cathelicidins Cytokines ropocamptide
Authors & Affiliations
6 authors, click to expand affiliations / ORCID
Kulkarni Manjusha M
Center for Microbial Interface Biology, The Ohio State University Medical Center, Columbus, OH, USA.
Barbi Joseph
McMaster W Robert
Gallo Richard L
Satoskar Abhay R
McGwire Bradford S
References (50)
50 references, click to expand
  1. Processing site and gene structure for the murine antimicrobial peptide CRAMP.
    Peptides. 2001 Oct;22(10):1643-50 PMID: 11587792
  2. Increased serine protease activity and cathelicidin promotes skin inflammation in rosacea.
    Nat Med. 2007 Aug;13(8):975-80 PMID: 17676051
  3. Interaction of human defensins with Escherichia coli. Mechanism of bactericidal activity.
    J Clin Invest. 1989 Aug;84(2):553-61 PMID: 2668334
  4. Differing effects of exogenous or endogenous cathelicidin on macrophage toll-like receptor signaling.
    Immunol Cell Biol. 2009 Aug-Sep;87(6):496-500 PMID: 19350049
  5. Activation of the MAPK, ERK, following Leishmania amazonensis infection of macrophages.
    J Immunol. 2007 Jan 15;178(2):1077-85 PMID: 17202371
  6. Human cathelicidin peptide LL-37 modulates the effects of IFN-gamma on APCs.
    J Immunol. 2009 Nov 1;183(9):5788-98 PMID: 19812202
  7. Degradation of human antimicrobial peptide LL-37 by Staphylococcus aureus-derived proteinases.
    Antimicrob Agents Chemother. 2004 Dec;48(12):4673-9 PMID: 15561843
  8. Innate antimicrobial peptide protects the skin from invasive bacterial infection.
    Nature. 2001 Nov 22;414(6862):454-7 PMID: 11719807
  9. Targeted gene deletion in Leishmania major identifies leishmanolysin (GP63) as a virulence factor.
    Mol Biochem Parasitol. 2002 Mar;120(1):33-40 PMID: 11849703
  10. Expression of lipophosphoglycan, high-molecular weight phosphoglycan and glycoprotein 63 in promastigotes and amastigotes of Leishmania mexicana.
    Mol Biochem Parasitol. 1993 Mar;58(1):107-21 PMID: 8459823
  11. A sensitive flow cytometric methodology for studying the binding of L. chagasi to canine peritoneal macrophages.
    BMC Infect Dis. 2005 May 24;5:39 PMID: 15913461
  12. Anti-microbial peptides: from invertebrates to vertebrates.
    Immunol Rev. 2004 Apr;198:169-84 PMID: 15199962
  13. Antimicrobial peptide-induced apoptotic death of leishmania results from calcium-de pend ent, caspase-independent mitochondrial toxicity.
    J Biol Chem. 2009 Jun 5;284(23):15496-504 PMID: 19357081
  14. Leishmanolysin: surface metalloproteinase of Leishmania.
    Methods Enzymol. 1995;248:614-33 PMID: 7674949
  15. The increase in risk factors for leishmaniasis worldwide.
    Trans R Soc Trop Med Hyg. 2001 May-Jun;95(3):239-43 PMID: 11490989
  16. Host defense peptide LL-37, in synergy with inflammatory mediator IL-1beta, augments immune responses by multiple pathways.
    J Immunol. 2007 Dec 1;179(11):7684-91 PMID: 18025214
  17. Role of the Leishmania surface protease gp63 in complement fixation, cell adhesion, and resistance to complement-mediated lysis.
    J Immunol. 1995 Sep 15;155(6):3102-11 PMID: 7673725
  18. Cathelicidins and innate defense against invasive bacterial infection.
    Scand J Infect Dis. 2003;35(9):670-6 PMID: 14620153
  19. Antimicrobial peptides and the skin.
    Expert Opin Biol Ther. 2004 Apr;4(4):543-9 PMID: 15102603
  20. Identification of CRAMP, a cathelin-related antimicrobial peptide expressed in the embryonic and adult mouse.
    J Biol Chem. 1997 May 16;272(20):13088-93 PMID: 9148921
  21. TH1 and TH2 cell antigen receptors in experimental leishmaniasis.
    Science. 1993 Mar 5;259(5100):1457-60 PMID: 8451641
  22. Fibronectin binding and proteolytic degradation by Leishmania and effects on macrophage activation.
    Infect Immun. 2008 Apr;76(4):1738-47 PMID: 18212076
  23. Identification of a fibronectin-like molecule on the surface of Leishmania amastigotes.
    Vet Parasitol. 1996 Nov 1;66(1-2):13-8 PMID: 8988552
  24. Postsecretory processing generates multiple cathelicidins for enhanced topical antimicrobial defense.
    J Immunol. 2004 Mar 1;172(5):3070-7 PMID: 14978112
  25. Developmental changes in the expression of Leishmania chagasi gp63 and heat shock protein in a human macrophage cell line.
    Infect Immun. 1996 May;64(5):1810-8 PMID: 8613395
  26. The role of IL-10 in promoting disease progression in leishmaniasis.
    J Immunol. 2001 Jan 15;166(2):1141-7 PMID: 11145695
  27. Genetic rescue of surface metalloproteinase (gp63)-deficiency in Leishmania amazonensis variants increases their infection of macrophages at the early phase.
    Mol Biochem Parasitol. 1994 Aug;66(2):345-7 PMID: 7808483
  28. Killing of African trypanosomes by antimicrobial peptides.
    J Infect Dis. 2003 Jul 1;188(1):146-52 PMID: 12825184
  29. Does the Leishmania major paradigm of pathogenesis and protection hold for New World cutaneous leishmaniases or the visceral disease?
    Immunol Rev. 2004 Oct;201:206-24 PMID: 15361243
  30. Interplay between antibacterial effectors: a macrophage antimicrobial peptide impairs intracellular Salmonella replication.
    Proc Natl Acad Sci U S A. 2004 Feb 24;101(8):2422-7 PMID: 14983025
  31. Structure-function relationships among human cathelicidin peptides: dissociation of antimicrobial properties from host immunostimulatory activities.
    J Immunol. 2005 Apr 1;174(7):4271-8 PMID: 15778390
  32. A modified colorimetric assay of macrophage activation for intracellular cytotoxicity against Leishmania parasites.
    J Immunol Methods. 1990 Feb 20;127(1):11-8 PMID: 2108218
  33. The major surface-metalloprotease of the parasitic protozoan, Leishmania, protects against antimicrobial peptide-induced apoptotic killing.
    Mol Microbiol. 2006 Dec;62(5):1484-97 PMID: 17074074
  34. The major surface protease (MSP or GP63) in the intracellular amastigote stage of Leishmania chagasi.
    Mol Biochem Parasitol. 2008 Feb;157(2):148-59 PMID: 18067978
  35. The regulation of immunity to Leishmania major.
    Annu Rev Immunol. 1995;13:151-77 PMID: 7612219
  36. The role of interleukin-10 in susceptibility of BALB/c mice to infection with Leishmania mexicana and Leishmania amazonensis.
    J Immunol. 2003 Oct 1;171(7):3705-10 PMID: 14500669
  37. Keratinocyte production of cathelicidin provides direct activity against bacterial skin pathogens.
    Infect Immun. 2005 Oct;73(10):6771-81 PMID: 16177355
  38. Posttranslational regulation of a Leishmania HEXXH metalloprotease (gp63). The effects of site-specific mutagenesis of catalytic, zinc binding, N-glycosylation, and glycosyl phosphatidylinositol addition sites on N-terminal end cleavage, intracellular stability, and extracellular exit.
    J Biol Chem. 1996 Apr 5;271(14):7903-9 PMID: 8626468
  39. An angiogenic role for the human peptide antibiotic LL-37/hCAP-18.
    J Clin Invest. 2003 Jun;111(11):1665-72 PMID: 12782669
  40. The relationship between peptide structure and antibacterial activity.
    Peptides. 2003 Nov;24(11):1681-91 PMID: 15019199
  41. The lysosomal gp63-related protein in Leishmania mexicana amastigotes is a soluble metalloproteinase with an acidic pH optimum.
    FEBS Lett. 1993 Jul 19;327(1):103-7 PMID: 8335086
  42. Immunomodulatory activities of small host defense peptides.
    Antimicrob Agents Chemother. 2005 May;49(5):1727-32 PMID: 15855488
  43. Proteolytic inactivation of LL-37 by karilysin, a novel virulence mechanism of Tannerella forsythia.
    J Innate Immun. 2010;2(3):288-93 PMID: 20375548
  44. Expression of an additional cathelicidin antimicrobial peptide protects against bacterial skin infection.
    Proc Natl Acad Sci U S A. 2005 Mar 8;102(10):3750-5 PMID: 15728389
  45. Cationic host defense (antimicrobial) peptides.
    Curr Opin Immunol. 2006 Feb;18(1):24-30 PMID: 16337365
  46. Targeted gene deletion of Leishmania major genes encoding developmental stage-specific leishmanolysin (GP63).
    Mol Microbiol. 1998 Feb;27(3):519-30 PMID: 9489664
  47. Leishmania surface protein gp63 binds directly to human natural killer cells and inhibits proliferation.
    Clin Exp Immunol. 2008 Aug;153(2):221-30 PMID: 18713141
  48. Modulation of the TLR-mediated inflammatory response by the endogenous human host defense peptide LL-37.
    J Immunol. 2006 Feb 15;176(4):2455-64 PMID: 16456005
  49. Genetic background influences immune responses and disease outcome of cutaneous L. mexicana infection in mice.
    Int Immunol. 2005 Oct;17(10):1347-57 PMID: 16141242
  50. Interactions of antimicrobial peptides with Leishmania and trypanosomes and their functional role in host parasitism.
    Exp Parasitol. 2010 Nov;126(3):397-405 PMID: 20159013
Article Info
Journal
Cellular microbiology
Abbr.
Cell Microbiol
ISSN
1462-5822
Published
2011-06-00
Epub
2011-00-28
Pages
913-23
Language
English
Region
England
NLM ID
100883691
PMCID
PMC3121678
Subset
IM
Grants
NIAID NIH HHS · R01 AI052453 · United States
NIAID NIH HHS · R01 AI052453-10 · United States
NIAID NIH HHS · R37 AI052453 · United States
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