Home LiteratureArticle Details
PMID: 11826310 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't Research Support, U.S. Gov't, P.H.S.

Reevaluation of the effects of brefeldin A on plant cells using tobacco Bright Yellow 2 cells expressing Golgi-targeted green fluorescent protein and COPI antisera.

The Plant cell ·Vol. 14 ·No. 1 ·2002-01-00 ·Pages 237-61

Ritzenthaler C, Nebenführ A, Movafeghi A, Stussi-Garaud C, Behnia L, Pimpl P, Staehelin LA, Robinson DG

Abstract

Brefeldin A (BFA) causes a block in the secretory system of eukaryotic cells by inhibiting vesicle formation at the Golgi apparatus. Although this toxin has been used in many studies, its effects on plant cells are still shrouded in controversy. We have reinvestigated the early responses of plant cells to BFA with novel tools, namely, tobacco Bright Yellow 2 (BY-2) suspension-cultured cells expressing an in vivo green fluorescent protein-Golgi marker, electron microscopy of high-pressure frozen/freeze-substituted cells, and antisera against Atgamma-COP, a component of COPI coats, and AtArf1, the GTPase necessary for COPI coat assembly. The first effect of 10 microg/mL BFA on BY-2 cells was to induce in <5 min the complete loss of vesicle-forming Atgamma-COP from Golgi cisternae. During the subsequent 15 to 20 min, this block in Golgi-based vesicle formation led to a series of sequential changes in Golgi architecture, the loss of distinct Golgi stacks, and the formation of an endoplasmic reticulum (ER)-Golgi hybrid compartment with stacked domains. These secondary effects appear to depend in part on stabilizing intercisternal filaments and include the continued maturation of cis- and medial cisternae into trans-Golgi cisternae, as predicted by the cisternal progression model, the shedding of trans-Golgi network cisternae, the fusion of individual Golgi cisternae with the ER, and the formation of large ER-Golgi hybrid stacks. Prolonged exposure of the BY-2 cells to BFA led to the transformation of the ER-Golgi hybrid compartment into a sponge-like structure that does not resemble normal ER. Thus, although the initial effects of BFA on plant cells are the same as those described for mammalian cells, the secondary and tertiary effects have drastically different morphological manifestations. These results indicate that, despite a number of similarities in the trafficking machinery with other eukaryotes, there are fundamental differences in the functional architecture and properties of the plant Golgi apparatus that are the cause for the unique responses of the plant secretory pathway to BFA.

Keywords
Non-programmatic
MeSH Terms
ADP-Ribosylation Factor 1/immunology Biomarkers Brefeldin A/pharmacology Carrier Proteins/immunology Cell Compartmentation/drug effects Cells, Cultured Coat Protein Complex I/immunology,metabolism Coatomer Protein Endoplasmic Reticulum/drug effects,metabolism,ultrastructure Fluorescent Antibody Technique GTP Phosphohydrolases/metabolism Golgi Apparatus/drug effects,metabolism,ultrastructure Green Fluorescent Proteins Intracellular Membranes/drug effects Luminescent Proteins/genetics,metabolism Mannosidases/metabolism Microscopy, Confocal Microscopy, Electron Tobacco/cytology,drug effects,genetics alpha-Mannosidase
Chemicals
Biomarkers Carrier Proteins Coat Protein Complex I Coatomer Protein Luminescent Proteins Green Fluorescent Proteins Brefeldin A Mannosidases alpha-Mannosidase GTP Phosphohydrolases ADP-Ribosylation Factor 1
Authors & Affiliations
8 authors, click to expand affiliations / ORCID
Ritzenthaler Christophe
Institut de Biologie Moléculaire des Plantes, 67084 Strasbourg Cedex, France. christophe.ritzenthaler@ibmp-ulp.u.strasbg.fr
Nebenführ Andreas
Movafeghi Ali
Stussi-Garaud Christiane
Behnia Leila
Pimpl Peter
Staehelin L Andrew
Robinson David G
References (81)
81 references, click to expand
  1. Molecular analysis of the Arabidopsis pattern formation of gene GNOM: gene structure and intragenic complementation.
    Mol Gen Genet. 1996 Apr 10;250(6):681-91 PMID: 8628228
  2. Saturation of the endoplasmic reticulum retention machinery reveals anterograde bulk flow
    Plant Cell. 1999 Nov;11(11):2233-48 PMID: 10559446
  3. Organization of the Golgi apparatus.
    Curr Opin Cell Biol. 2000 Aug;12(4):450-6 PMID: 10873826
  4. What do proteins need to reach different vacuoles?
    Trends Plant Sci. 1999 Apr;4(4):149-155 PMID: 10322549
  5. Purification and cloning of a brefeldin A-inhibited guanine nucleotide-exchange protein for ADP-ribosylation factors.
    J Biol Chem. 1999 Apr 30;274(18):12308-15 PMID: 10212200
  6. Inhibition by brefeldin A of a Golgi membrane enzyme that catalyses exchange of guanine nucleotide bound to ARF.
    Nature. 1992 Nov 26;360(6402):352-4 PMID: 1448152
  7. ADP-ribosylation factor is a subunit of the coat of Golgi-derived COP-coated vesicles: a novel role for a GTP-binding protein.
    Cell. 1991 Oct 18;67(2):239-53 PMID: 1680566
  8. Coat proteins regulating membrane traffic.
    Int Rev Cytol. 2000;195:67-144 PMID: 10603575
  9. Golgi tubule traffic and the effects of brefeldin A visualized in living cells.
    J Cell Biol. 1997 Dec 1;139(5):1137-55 PMID: 9382862
  10. Arabidopsis Sec21p and Sec23p homologs. Probable coat proteins of plant COP-coated vesicles.
    Plant Physiol. 1999 Apr;119(4):1437-46 PMID: 10198103
  11. Molecules in the ARF orbit.
    J Biol Chem. 1998 Aug 21;273(34):21431-4 PMID: 9705267
  12. Brefeldin A: insights into the control of membrane traffic and organelle structure.
    J Cell Biol. 1992 Mar;116(5):1071-80 PMID: 1740466
  13. Brefeldin A Effects in Plants (Are Different Golgi Responses Caused by Different Sites of Action?).
    Plant Physiol. 1997 Jun;114(2):401-403 PMID: 12223714
  14. Procollagen traverses the Golgi stack without leaving the lumen of cisternae: evidence for cisternal maturation.
    Cell. 1998 Dec 23;95(7):993-1003 PMID: 9875853
  15. Cryopreparation provides new insight into the effects of brefeldin A on the structure of the HepG2 Golgi apparatus.
    J Struct Biol. 2000 May;130(1):63-72 PMID: 10806092
  16. Lipids of the Golgi membrane.
    Trends Cell Biol. 1998 Jan;8(1):29-33 PMID: 9695805
  17. Tonoplast and Soluble Vacuolar Proteins Are Targeted by Different Mechanisms.
    Plant Cell. 1993 Sep;5(9):1113-1124 PMID: 12271099
  18. A rab1 GTPase is required for transport between the endoplasmic reticulum and golgi apparatus and for normal golgi movement in plants.
    Plant Cell. 2000 Nov;12(11):2201-18 PMID: 11090219
  19. Recruitment of coat proteins onto Golgi membranes in intact and permeabilized cells: effects of brefeldin A and G protein activators.
    Cell. 1992 Apr 3;69(1):129-38 PMID: 1555237
  20. Gut thoughts on the Golgi complex.
    Traffic. 2000 Sep;1(9):738-45 PMID: 11208161
  21. Dissociation of coatomer from membranes is required for brefeldin A-induced transfer of Golgi enzymes to the endoplasmic reticulum.
    J Cell Biol. 1997 Apr 21;137(2):319-33 PMID: 9128245
  22. Trafficking of phosphatidylinositol 3-phosphate from the trans-Golgi network to the lumen of the central vacuole in plant cells.
    Plant Cell. 2001 Feb;13(2):287-301 PMID: 11226186
  23. Activation of ADP-ribosylation factor by Golgi membranes. Evidence for a brefeldin A- and protease-sensitive activating factor on Golgi membranes.
    J Biol Chem. 1993 May 5;268(13):9555-63 PMID: 8486645
  24. The molecular characterization of transport vesicles.
    Plant Mol Biol. 1998 Sep;38(1-2):49-76 PMID: 9738960
  25. Evidence for segregation of sphingomyelin and cholesterol during formation of COPI-coated vesicles.
    J Cell Biol. 2000 Oct 30;151(3):507-18 PMID: 11062253
  26. Biosynthesis and immunolocalization of Lewis a-containing N-glycans in the plant cell.
    Plant Physiol. 1999 Oct;121(2):333-44 PMID: 10517824
  27. The Arabidopsis genome. An abundance of soluble N-ethylmaleimide-sensitive factor adaptor protein receptors.
    Plant Physiol. 2000 Dec;124(4):1558-69 PMID: 11115874
  28. Characterization of brefeldin A induced vesicular structures containing cycling proteins of the intermediate compartment/cis-Golgi network.
    FEBS Lett. 1997 Mar 3;404(1):75-81 PMID: 9074641
  29. The secretory pathway of protists: spatial and functional organization and evolution.
    Microbiol Rev. 1996 Dec;60(4):697-721 PMID: 8987360
  30. Brefeldin A inhibits Golgi membrane-catalysed exchange of guanine nucleotide onto ARF protein.
    Nature. 1992 Nov 26;360(6402):350-2 PMID: 1448151
  31. Binding site of brefeldin A at the interface between the small G protein ADP-ribosylation factor 1 (ARF1) and the nucleotide-exchange factor Sec7 domain.
    Proc Natl Acad Sci U S A. 2000 Aug 29;97(18):9913-8 PMID: 10954741
  32. ADP-ribosylation factor is functionally and physically associated with the Golgi complex.
    Proc Natl Acad Sci U S A. 1990 Feb;87(3):1238-42 PMID: 2105501
  33. Identification of a 200-kD, brefeldin-sensitive protein on Golgi membranes.
    J Cell Biol. 1992 Apr;117(1):27-38 PMID: 1556155
  34. Anterograde flow of cargo across the golgi stack potentially mediated via bidirectional "percolating" COPI vesicles.
    Proc Natl Acad Sci U S A. 2000 Sep 12;97(19):10400-5 PMID: 10962035
  35. In situ localization and in vitro induction of plant COPI-coated vesicles.
    Plant Cell. 2000 Nov;12(11):2219-36 PMID: 11090220
  36. Functional compartmentation of the Golgi apparatus of plant cells : immunocytochemical analysis of high-pressure frozen- and freeze-substituted sycamore maple suspension culture cells.
    Plant Physiol. 1992 Jul;99(3):1070-83 PMID: 16668973
  37. Secretory protein trafficking and organelle dynamics in living cells.
    Annu Rev Cell Dev Biol. 2000;16:557-89 PMID: 11031247
  38. Diffusional mobility of Golgi proteins in membranes of living cells.
    Science. 1996 Aug 9;273(5276):797-801 PMID: 8670420
  39. Proaleurain vacuolar targeting is mediated by short contiguous peptide interactions.
    Plant Cell. 1992 Mar;4(3):307-18 PMID: 1498598
  40. Exclusion of golgi residents from transport vesicles budding from Golgi cisternae in intact cells.
    J Cell Biol. 2000 Sep 18;150(6):1263-70 PMID: 10995433
  41. The protein cofactor necessary for ADP-ribosylation of Gs by cholera toxin is itself a GTP binding protein.
    J Biol Chem. 1986 Jun 15;261(17):7906-11 PMID: 3086320
  42. Brefeldin A effects in plant and fungal cells: something new about vesicle trafficking?
    J Microsc. 1996 Feb;181(Pt 2):162-77 PMID: 8919983
  43. Megavesicles implicated in the rapid transport of intracisternal aggregates across the Golgi stack.
    Cell. 2000 Aug 4;102(3):335-48 PMID: 10975524
  44. Overexpression of wild-type and mutant ARF1 and ARF6: distinct perturbations of nonoverlapping membrane compartments.
    J Cell Biol. 1995 Mar;128(6):1003-17 PMID: 7896867
  45. ADP-ribosylation factor and coatomer couple fusion to vesicle budding.
    J Cell Biol. 1994 Feb;124(4):415-24 PMID: 8106543
  46. Golgi membranes are absorbed into and reemerge from the ER during mitosis.
    Cell. 1999 Dec 10;99(6):589-601 PMID: 10612395
  47. The endoplasmic reticulum-gateway of the secretory pathway
    Plant Cell. 1999 Apr;11(4):615-28 PMID: 10213782
  48. Dual-color visualization of trans-Golgi network to plasma membrane traffic along microtubules in living cells.
    J Cell Sci. 1999 Jan;112 ( Pt 1):21-33 PMID: 9841901
  49. Peroxisomal membrane ascorbate peroxidase is sorted to a membranous network that resembles a subdomain of the endoplasmic reticulum.
    Plant Cell. 1999 Nov;11(11):2167-85 PMID: 10559442
  50. Brefeldin A causes disassembly of the Golgi complex and accumulation of secretory proteins in the endoplasmic reticulum.
    J Biol Chem. 1988 Dec 5;263(34):18545-52 PMID: 3192548
  51. The role of ARF and Rab GTPases in membrane transport.
    Curr Opin Cell Biol. 1999 Aug;11(4):466-75 PMID: 10449335
  52. Redistribution of Golgi stacks and other organelles during mitosis and cytokinesis in plant cells.
    Plant Physiol. 2000 Sep;124(1):135-51 PMID: 10982429
  53. Biochemical dissection of AP-1 recruitment onto Golgi membranes.
    J Cell Biol. 1993 Nov;123(3):561-73 PMID: 8227126
  54. Mobile factories: Golgi dynamics in plant cells.
    Trends Plant Sci. 2001 Apr;6(4):160-7 PMID: 11286921
  55. Yeast beta- and beta'-coat proteins (COP). Two coatomer subunits essential for endoplasmic reticulum-to-Golgi protein traffic.
    J Biol Chem. 1994 Sep 30;269(39):24486-95 PMID: 7929113
  56. Matrix proteins can generate the higher order architecture of the Golgi apparatus.
    Nature. 2000 Oct 26;407(6807):1022-6 PMID: 11069184
  57. The debate about transport in the Golgi--two sides of the same coin?
    Cell. 2000 Sep 15;102(6):713-9 PMID: 11030615
  58. Macromolecular differentiation of Golgi stacks in root tips of Arabidopsis and Nicotiana seedlings as visualized in high pressure frozen and freeze-substituted samples.
    Protoplasma. 1990;157(1-3):75-91 PMID: 11537090
  59. Plant cells are not just green yeast.
    Plant Physiol. 2000 Apr;122(4):999-1001 PMID: 10759495
  60. The role of microtubule-based motor proteins in maintaining the structure and function of the Golgi complex.
    Biochim Biophys Acta. 1998 Aug 14;1404(1-2):113-26 PMID: 9714769
  61. The plant vacuolar sorting receptor AtELP is involved in transport of NH(2)-terminal propeptide-containing vacuolar proteins in Arabidopsis thaliana.
    J Cell Biol. 2000 Jun 26;149(7):1335-44 PMID: 10871276
  62. Effects of brefeldin A on the formation of the cell plate in tobacco BY-2 cells.
    Eur J Cell Biol. 1995 Mar;66(3):274-81 PMID: 7539746
  63. 7-Dehydrobrefeldin A, a naturally occurring brefeldin A derivative, inhibits secretion and causes a cis-to-trans breakdown of Golgi stacks in plant cells.
    Plant Physiol. 1997 Feb;113(2):487-92 PMID: 9046595
  64. Brefeldin A effects on tobacco pollen tubes.
    Eur J Cell Biol. 1993 Aug;61(2):247-55 PMID: 8223715
  65. 'Coatomer': a cytosolic protein complex containing subunits of non-clathrin-coated Golgi transport vesicles.
    Nature. 1991 Jan 17;349(6306):248-51 PMID: 1898986
  66. p200 ARF-GEP1: a Golgi-localized guanine nucleotide exchange protein whose Sec7 domain is targeted by the drug brefeldin A.
    Proc Natl Acad Sci U S A. 1999 Jul 6;96(14):7968-73 PMID: 10393931
  67. Immunocytochemical localization of beta-COP to the ER-Golgi boundary and the TGN.
    J Cell Sci. 1995 Aug;108 ( Pt 8):2839-56 PMID: 7593324
  68. Rapid redistribution of Golgi proteins into the ER in cells treated with brefeldin A: evidence for membrane cycling from Golgi to ER.
    Cell. 1989 Mar 10;56(5):801-13 PMID: 2647301
  69. Cytokinesis in tobacco BY-2 and root tip cells: a new model of cell plate formation in higher plants.
    J Cell Biol. 1995 Sep;130(6):1345-57 PMID: 7559757
  70. A family of ADP-ribosylation factor effectors that can alter membrane transport through the trans-Golgi.
    Mol Biol Cell. 2000 Apr;11(4):1241-55 PMID: 10749927
  71. Plant vacuoles
    Plant Cell. 1999 Apr;11(4):587-600 PMID: 10213780
  72. Stop-and-go movements of plant Golgi stacks are mediated by the acto-myosin system.
    Plant Physiol. 1999 Dec;121(4):1127-42 PMID: 10594100
  73. Beta-COP localizes mainly to the cis-Golgi side in exocrine pancreas.
    J Cell Biol. 1993 Apr;121(1):49-59 PMID: 8458872
  74. Stacks on tracks: the plant Golgi apparatus traffics on an actin/ER network.
    Plant J. 1998 Aug;15(3):441-7 PMID: 9750355
  75. Dissociation of a 110-kD peripheral membrane protein from the Golgi apparatus is an early event in brefeldin A action.
    J Cell Biol. 1990 Dec;111(6 Pt 1):2295-306 PMID: 2277061
  76. The plant Golgi apparatus: a factory for complex polysaccharides and glycoproteins.
    Trends Biochem Sci. 1993 Jun;18(6):210-4 PMID: 8346556
  77. Vesicular tubular clusters between the ER and Golgi mediate concentration of soluble secretory proteins by exclusion from COPI-coated vesicles.
    Cell. 1999 Jul 9;98(1):81-90 PMID: 10412983
  78. Protein recycling from the Golgi apparatus to the endoplasmic reticulum in plants and its minor contribution to calreticulin retention.
    Plant Cell. 2000 May;12(5):739-56 PMID: 10810147
  79. A method for the quantitative recovery of protein in dilute solution in the presence of detergents and lipids.
    Anal Biochem. 1984 Apr;138(1):141-3 PMID: 6731838
  80. Vacuolar storage proteins are sorted in the cis-cisternae of the pea cotyledon Golgi apparatus.
    J Cell Biol. 2001 Jan 8;152(1):41-50 PMID: 11149919
  81. Brefeldin A: the advantage of being uncompetitive.
    Cell. 1999 Apr 16;97(2):153-5 PMID: 10219235
Article Info
Journal
The Plant cell
Abbr.
Plant Cell
ISSN
1040-4651
Published
2002-01-00
Pages
237-61
Language
English
Region
England
NLM ID
9208688
PMCID
PMC150562
Subset
IM
Grants
NIGMS NIH HHS · F32 GM018639 · United States
NIGMS NIH HHS · GM 18639 · United States
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