Home LiteratureArticle Details
PMID: 12746536 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Nod factor and elicitors activate different phospholipid signaling pathways in suspension-cultured alfalfa cells.

Plant physiology ·Vol. 132 ·No. 1 ·2003-05-00 ·Pages 311-7

den Hartog M, Verhoef N, Munnik T

Abstract

Lipo-chitooligosaccharides (Nod factors) are produced by symbiotic Rhizobium sp. bacteria to elicit Nod responses on their legume hosts. One of the earliest responses is the formation of phosphatidic acid (PA), a novel second messenger in plant cells. Remarkably, pathogens have also been reported to trigger the formation of PA in nonlegume plants. To investigate how host plants can distinguish between symbionts and pathogens, the effects of Nod factor and elicitors (chitotetraose and xylanase) on the formation of PA were investigated in suspension-cultured alfalfa (Medicago sativa) cells. Theoretically, PA can be synthesized via two signaling pathways, i.e. via phospholipase D (PLD) and via phospholipase C in combination with diacylglycerol (DAG) kinase. Therefore, a strategy involving differential radiolabeling with [(32)P]orthophosphate was used to determine the contribution of each pathway to PA formation. In support, PLD activity was specifically measured by using the ability of the enzyme to transfer the phosphatidyl group of its substrate to a primary alcohol. In practice, Nod factor, chitotetraose, and xylanase induced the formation of PA and its phosphorylated product DAG pyrophosphate within 2 min of treatment. However, whereas phospholipase C and DAG kinase were activated during treatment with all three different compounds, PLD was only activated by Nod factor. No evidence was obtained for the activation of phospholipase A(2).

MeSH Terms
Cells, Cultured Diacylglycerol Kinase/metabolism Diphosphates/metabolism Glycerol/analogs & derivatives,metabolism Glycerophospholipids/biosynthesis Lipopolysaccharides/metabolism,pharmacology Medicago sativa/cytology,drug effects,metabolism Oligosaccharides/pharmacology Phosphatidic Acids/biosynthesis Phospholipase D/metabolism Phospholipids/biosynthesis Signal Transduction Type C Phospholipases/metabolism Xylan Endo-1,3-beta-Xylosidase Xylosidases/pharmacology
Chemicals
Diphosphates Glycerophospholipids Lipopolysaccharides Nod factor, Rhizobium leguminosarum Oligosaccharides Phosphatidic Acids Phospholipids diacylglycerol pyrophosphate phosphatidylbutanol chitotetrose Diacylglycerol Kinase Type C Phospholipases Phospholipase D Xylosidases Xylan Endo-1,3-beta-Xylosidase Glycerol
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
den Hartog Martine
Swammerdam Institute for Life Sciences, Department of Plant Physiology, University of Amsterdam, Kruislaan 318, The Netherlands.
Verhoef Nathalie
Munnik Teun
References (37)
37 references, click to expand
  1. Molecular diversity of phospholipase D in angiosperms.
    BMC Genomics. 2002;3:2 PMID: 11876823
  2. PLANT PHOSPHOLIPASES.
    Annu Rev Plant Physiol Plant Mol Biol. 2001 Jun;52:211-231 PMID: 11337397
  3. Alfalfa and tobacco cells react differently to chitin oligosaccharides and sinorhizobium meliloti nodulation factors
    Planta. 1999 Nov;210(1):157-64 PMID: 10592044
  4. Characterization of five tomato phospholipase D cDNAs: rapid and specific expression of LePLDbeta1 on elicitation with xylanase.
    Plant J. 2001 May;26(3):237-47 PMID: 11446372
  5. Phosphatidic acid: an emerging plant lipid second messenger.
    Trends Plant Sci. 2001 May;6(5):227-33 PMID: 11335176
  6. Pharmacological analysis of nod factor-induced calcium spiking in Medicago truncatula. Evidence for the requirement of type IIA calcium pumps and phosphoinositide signaling.
    Plant Physiol. 2002 Apr;128(4):1390-401 PMID: 11950987
  7. Depolarization of alfalfa root hair membrane potential by Rhizobium meliloti Nod factors.
    Science. 1992 May 15;256(5059):998-1000 PMID: 10744524
  8. Identification of diacylglycerol pyrophosphate as a novel metabolic product of phosphatidic acid during G-protein activation in plants.
    J Biol Chem. 1996 Jun 28;271(26):15708-15 PMID: 8663116
  9. Elicitation of suspension-cultured tomato cells triggers the formation of phosphatidic acid and diacylglycerol pyrophosphate.
    Plant Physiol. 2000 Aug;123(4):1507-16 PMID: 10938366
  10. Rhizobium nod factor signaling. Evidence for a g protein-mediated transduction mechanism
    Plant Cell. 1998 May;10(5):659-72 PMID: 9596628
  11. Phospholipid signaling in plants: holding on to phospholipase D.
    Sci STKE. 2001 Dec 4;2001(111):pe42 PMID: 11734658
  12. A lipochito-oligosaccharide, Nod factor, induces transient calcium influx in soybean suspension-cultured cells.
    Plant J. 2000 Apr;22(1):71-8 PMID: 10792822
  13. Plants have a sensitive perception system for the most conserved domain of bacterial flagellin.
    Plant J. 1999 May;18(3):265-76 PMID: 10377992
  14. Phospholipid signalling in plant defence.
    Curr Opin Plant Biol. 2002 Aug;5(4):332-8 PMID: 12179967
  15. The Arabidopsis phospholipase D family. Characterization of a calcium-independent and phosphatidylcholine-selective PLD zeta 1 with distinct regulatory domains.
    Plant Physiol. 2002 Mar;128(3):1057-68 PMID: 11891260
  16. Rhizobium nod factors induce increases in intracellular free calcium and extracellular calcium influxes in bean root hairs
    Plant J. 1999 Aug;19(3):347-52 PMID: 10476081
  17. Phospholipid-based signaling in plants.
    Annu Rev Plant Biol. 2003;54:265-306 PMID: 14502992
  18. Hyperosmotic stress rapidly generates lyso-phosphatidic acid in Chlamydomonas.
    Plant J. 2001 Mar;25(5):541-8 PMID: 11309144
  19. Phosphatidate Kinase, a Novel Enzyme in Phospholipid Metabolism (Purification, Subcellular Localization, and Occurrence in the Plant Kingdom).
    Plant Physiol. 1993 Aug;102(4):1243-1249 PMID: 12231900
  20. Nod factor-induced phosphatidic acid and diacylglycerol pyrophosphate formation: a role for phospholipase C and D in root hair deformation.
    Plant J. 2001 Jan;25(1):55-65 PMID: 11169182
  21. Calcium and phospholipid activation of a recombinant calcium-dependent protein kinase (DcCPK1) from carrot (Daucus carota L.).
    Biochim Biophys Acta. 1999 Sep 14;1434(1):6-17 PMID: 10556555
  22. Phosphatidic acid activates a wound-activated MAPK in Glycine max.
    Plant J. 2001 Jun;26(5):479-86 PMID: 11439134
  23. Hyperosmotic stress stimulates phospholipase D activity and elevates the levels of phosphatidic acid and diacylglycerol pyrophosphate.
    Plant J. 2000 Apr;22(2):147-54 PMID: 10792830
  24. Rhizobium nod factor perception and signalling.
    Plant Cell. 2002;14 Suppl:S239-49 PMID: 12045280
  25. Osmotic stress activates distinct lipid and MAPK signalling pathways in plants.
    FEBS Lett. 2001 Jun 8;498(2-3):172-8 PMID: 11412851
  26. Oligosaccharins: structures and signal transduction.
    Plant Mol Biol. 1994 Dec;26(5):1379-411 PMID: 7858196
  27. Water deficit triggers phospholipase D activity in the resurrection plant Craterostigma plantagineum.
    Plant Cell. 2000 Jan;12(1):111-24 PMID: 10634911
  28. Perception of lipo-chitooligosaccharidic Nod factors in legumes.
    Trends Plant Sci. 2001 Jan;6(1):24-30 PMID: 11164374
  29. Phospholipid signalling in plants.
    Biochim Biophys Acta. 1998 Jan 23;1389(3):222-72 PMID: 9512651
  30. Substrate preference of stress-activated phospholipase D in Chlamydomonas and its contribution to PA formation.
    Plant J. 2003 Jun;34(5):595-604 PMID: 12787242
  31. G Protein Activation Stimulates Phospholipase D Signaling in Plants.
    Plant Cell. 1995 Dec;7(12):2197-2210 PMID: 12242371
  32. Diacylglycerol and phosphatidate generated by phospholipases C and D, respectively, have distinct fatty acid compositions and functions. Phospholipase D-derived diacylglycerol does not activate protein kinase C in porcine aortic endothelial cells.
    J Biol Chem. 1997 Jul 11;272(28):17354-9 PMID: 9211874
  33. Polar glycerolipids of Chlamydomonas moewusii.
    Phytochemistry. 2000 Jan;53(2):265-70 PMID: 10680181
  34. KCl activates phospholipase D at two different concentration ranges: distinguishing between hyperosmotic stress and membrane depolarization.
    Plant J. 2002 Jul;31(1):51-9 PMID: 12100482
  35. Early events in host-pathogen interactions.
    Curr Opin Plant Biol. 1999 Aug;2(4):312-9 PMID: 10458998
  36. Lipid membranes shape up.
    Nature. 1999 Sep 9;401(6749):123-4 PMID: 10490016
  37. Elevation of the cytosolic free [Ca2+] is indispensable for the transduction of the Nod factor signal in alfalfa.
    Plant Physiol. 1999 Sep;121(1):273-80 PMID: 10482683
Article Info
Journal
Plant physiology
Abbr.
Plant Physiol
ISSN
0032-0889
Published
2003-05-00
Pages
311-7
Language
English
Region
United States
NLM ID
0401224
PMCID
PMC166976
Subset
IM
Analysis Services
Analysis Services

Contact

No. 2 Wenbo Road, Zhangqiu District, Jinan, Shandong

Qilu Normal University · Genelibs Bioinformatics Lab

750 Shunhua Rd, Jinan

2F, Bldg F, University Science Park

Tel: 0531-88819269

WeChat Official Account

Follow our WeChat subscription account for real-time updates and the latest in medical and biological research.


Business Email

E-mail: product@genelibs.com