Drosophila Pkaap regulates Rab4/Rab11-dependent traffic and Rab11 exocytosis of innate immune cargo.

Alexandra Sorvina, Tetyana Shandala, Douglas A Brooks
Author Information
  1. Alexandra Sorvina: Sansom Institute for Health Research, University of South Australia, Adelaide, South Australia 5001, Australia.
  2. Tetyana Shandala: Sansom Institute for Health Research, University of South Australia, Adelaide, South Australia 5001, Australia.
  3. Douglas A Brooks: Sansom Institute for Health Research, University of South Australia, Adelaide, South Australia 5001, Australia Doug.Brooks@unisa.edu.au.

Abstract

The secretion of immune-mediators is a critical step in the host innate immune response to pathogen invasion, and Rab GTPases have an important role in the regulation of this process. Rab4/Rab11 recycling endosomes are involved in the sorting of immune-mediators into specialist Rab11 vesicles that can traffic this cargo to the plasma membrane; however, how this sequential delivery process is regulated has yet to be fully defined. Here, we report that Drosophila Pkaap, an orthologue of the human dual-specific A-kinase-anchoring protein 2 or D-AKAP2 (also called AKAP10), appeared to have a nucleotide-dependent localisation to Rab4 and Rab11 endosomes. RNAi silencing of pkaap altered Rab4/Rab11 recycling endosome morphology, suggesting that Pkaap functions in cargo sorting and delivery in the secretory pathway. The depletion of pkaap also had a direct effect on Rab11 vesicle exocytosis and the secretion of the antimicrobial peptide Drosomycin at the plasma membrane. We propose that Pkaap has a dual role in antimicrobial peptide traffic and exocytosis, making it an essential component for the secretion of inflammatory mediators and the defence of the host against pathogens.

Keywords

References

  1. Sci Signal. 2009 Jun 16;2(75):ra28 [PMID: 19531803]
  2. J Biol Chem. 2002 Mar 22;277(12):10474-81 [PMID: 11790789]
  3. Biochem Biophys Res Commun. 2005 Sep 16;335(1):154-61 [PMID: 16055087]
  4. Mol Cell Proteomics. 2008 Jun;7(6):1031-42 [PMID: 18256213]
  5. Nat Rev Immunol. 2006 Jul;6(7):508-19 [PMID: 16778830]
  6. Development. 1993 Jun;118(2):401-15 [PMID: 8223268]
  7. Nat Rev Immunol. 2009 Aug;9(8):535-42 [PMID: 19556980]
  8. Biochem Biophys Res Commun. 2008 May 2;369(2):327-32 [PMID: 18291096]
  9. EMBO J. 2004 Jul 21;23 (14 ):2811-20 [PMID: 15229649]
  10. J Leukoc Biol. 2012 Dec;92(6):1227-39 [PMID: 23012430]
  11. Genetics. 2003 Jan;163(1):203-15 [PMID: 12586708]
  12. Traffic. 2004 Oct;5(10 ):785-97 [PMID: 15355514]
  13. FEBS J. 2011 Oct;278(20):3942-51 [PMID: 21848912]
  14. PLoS Biol. 2012;10 (12 ):e1001438 [PMID: 23226104]
  15. Science. 2005 Dec 2;310(5753):1492-5 [PMID: 16282525]
  16. Nature. 2008 Jul 24;454(7203):428-35 [PMID: 18650913]
  17. N Engl J Med. 2006 Feb 9;354(6):610-21 [PMID: 16467548]
  18. Mol Biol Cell. 1998 Nov;9(11):3241-57 [PMID: 9802909]
  19. PLoS One. 2014 Aug 07;9(8):e102568 [PMID: 25102059]
  20. EMBO J. 1999 Jun 15;18(12):3380-91 [PMID: 10369678]
  21. J Biol Chem. 2007 Nov 30;282(48):35308-17 [PMID: 17878165]
  22. Nat Rev Immunol. 2004 Jul;4(7):521-7 [PMID: 15229471]
  23. Lancet. 2002 Apr 6;359(9313):1221-31 [PMID: 11955556]
  24. J Cell Sci. 2011 Jul 1;124(Pt 13):2165-74 [PMID: 21670199]
  25. Clin Microbiol Rev. 2006 Jul;19(3):491-511 [PMID: 16847082]
  26. Nature. 2006 Dec 14;444(7121):860-7 [PMID: 17167474]
  27. J Immunol. 2002 Jun 1;168(11):5392-6 [PMID: 12023330]
  28. Curr Opin Immunol. 2005 Feb;17(1):11-7 [PMID: 15653304]
  29. J Biol Chem. 2009 Nov 20;284(47):32869-80 [PMID: 19797056]
  30. J Biol Chem. 2001 Nov 23;276(47):44247-57 [PMID: 11546812]
  31. Proc Natl Acad Sci U S A. 2010 May 25;107(21):9596-601 [PMID: 20457940]
  32. J Cell Biol. 2012 Jul 9;198(1):57-67 [PMID: 22778279]
  33. Development. 2005 Apr;132(7):1487-97 [PMID: 15728675]
  34. J Biomed Opt. 2008 May-Jun;13(3):031206 [PMID: 18601530]
  35. Cell. 2007 Jun 1;129(5):865-77 [PMID: 17540168]
  36. Cell Mol Life Sci. 2005 Dec;62(24):3014-38 [PMID: 16314935]
  37. Cytokine Growth Factor Rev. 2013 Jun;24(3):227-39 [PMID: 23647915]
  38. J Cell Biol. 2004 Nov 8;167(3):531-43 [PMID: 15534004]
  39. J Cell Biol. 2003 May 12;161(3):609-24 [PMID: 12743108]
  40. Cell. 2004 Jan 23;116(2):153-66 [PMID: 14744428]
  41. Trends Immunol. 2009 Mar;30(3):131-41 [PMID: 19217824]
  42. J Biol Chem. 2011 Mar 18;286(11):8875-83 [PMID: 21247892]
  43. Immunity. 2007 Oct;27(4):541-4 [PMID: 17967407]
  44. Acta Clin Belg. 2006 Sep-Oct;61(5):264-9 [PMID: 17240743]
  45. Genetics. 2007 Jun;176(2):1307-22 [PMID: 17409086]
  46. Nature. 2007 Jul 12;448(7150):151-6 [PMID: 17625558]
  47. Oncogene. 2007 Apr 26;26(19):2804-8 [PMID: 17099728]
  48. Nat Rev Immunol. 2007 Jun;7(6):429-42 [PMID: 17525752]
  49. Mol Cell Endocrinol. 2012 Apr 28;353(1-2):10-20 [PMID: 22108439]
  50. J Immunol. 2010 May 1;184(9):4852-62 [PMID: 20368273]
  51. Cell. 2000 Dec 8;103(6):981-91 [PMID: 11136982]
  52. J Cell Biol. 2007 Jun 18;177(6):1133-43 [PMID: 17562788]
  53. Nat Rev Immunol. 2007 Nov;7(11):862-74 [PMID: 17948019]
  54. Curr Protein Pept Sci. 2005 Jun;6(3):255-64 [PMID: 15974951]

Word Cloud

Created with Highcharts 10.0.0Rab11PkaapsecretiontrafficcargoDrosophilaexocytosispeptideimmune-mediatorshostinnateimmuneroleprocessRab4/Rab11recyclingendosomessortingplasmamembranedeliveryalsoRab4pkaapantimicrobialDrosomycincriticalstepresponsepathogeninvasionRabGTPasesimportantregulationinvolvedspecialistvesiclescanhoweversequentialregulatedyetfullydefinedreportorthologuehumandual-specificA-kinase-anchoringprotein2D-AKAP2calledAKAP10appearednucleotide-dependentlocalisationRNAisilencingalteredendosomemorphologysuggestingfunctionssecretorypathwaydepletiondirecteffectvesicleproposedualmakingessentialcomponentinflammatorymediatorsdefencepathogensregulatesRab4/Rab11-dependentAntimicrobialEndosomesInnateimmunity

Similar Articles

Cited By