Home LiteratureArticle Details
PMID: 805248 Published · ppublish English Journal Article Research Support, U.S. Gov't, Non-P.H.S. Research Support, U.S. Gov't, P.H.S.

Mechanism of activation of adenylate cyclase by Vibrio cholerae enterotoxin.

The Journal of membrane biology ·Vol. 22 ·No. 1 ·1975-06-03 ·Pages 29-52

Bennett V, Cuatrecasas P

Abstract

The kinetics and properties of the activation of adenylate cyclase by cholera enterotoxin have been examined primarily in toad erythrocytes, but also in avian erythrocytes, rat fat cells and cultured melanoma cells. When cholera toxin is incubated with intact cells it stimulates adenylate cyclase activity, as measured in the subsequently isolated plasma membranes, according to a triphasic time course. This consists of a true lag period of about 30 min, followed by a stage of exponentially increasing adenylate cyclase activity which continues for 110 to 130 min, and finally a period of slow activation which may extend as long as 30 hr in cultured melanoma cells. The progressive activation of adenylate cyclase activity by cholera toxin is interrupted by cell lysis; continued incubation of the isolated membranes under nearly identical conditions does not lead to further activation of the enzyme. The delay in the action of the toxin is not grossly dependent of the number of toxin-receptor (GM1 ganglioside) complexes, and is still seen upon adding a second dose of toxin to partially stimulated cells. Direct measurements indicate negligible intracellular levels of biologically active radioiodinated toxin in either a soluble or a nuclear-bound form. The effects are not prevented by Actinomycin D (20 mug/ml), uromycin (30 mug/ml), cycloheximide (30 mug/ml), sodium fluoride (10 mM) or sodium azide (1 mM); KCN, however, almost completely prevents the action of cholera toxin. The action of the toxin is temperature dependent, occurring at very slow or negligible rates below certain critical temperatures, the values of which depend on the specific animal species. Thetransition for toad erythrocytes occurs at 15 to 17 degrees C, while rat adipocytes and turkey erythrocytes demonstrate a discontinuity at 26 to 30 degrees C. The temperature effects are evident during the lag period as well as during the exponential phase of activation. The rate of decay of the stimulated adenylate cyclase activity of cultured melanoma cells indicates a half-time of about 36 hr. The rate of exponentially increasing activity and extent of enzyme activation are related to the number of bound toxin molecules according to a Langmuir adsorption isotherm and are half-maximal when about 2000 molecules of toxin are bound per cell. It is proposed that initially cholera toxin binds ineffectively, but that it is converted to an active form during the lag phase. This process may involve lateral motion of toxin-GM1 ganglioside complex within the plane of the membrane. The kinetics of adenylate cyclase activation are consistent with the possibility that during the exponential phase a bimolecular association is proceeding between the active form of the cholera toxin and some other membrane component. The possibility is considered that the cholera toxin molecule may bind directly to adenylate cyclase. These considerations may prove useful in understanding the possible interactions of active hormone-receptor complexes with adenylate cyclase in cell membranes.

MeSH Terms
Adenylyl Cyclases/metabolism Adipose Tissue/enzymology Animals Anti-Bacterial Agents/pharmacology Bufo marinus Cell Membrane/enzymology Cyanides/pharmacology Dose-Response Relationship, Drug Enterotoxins/pharmacology Enzyme Activation Epinephrine/pharmacology Erythrocytes/enzymology Fluorides/pharmacology Kinetics Protein Binding Rats Temperature Time Factors Turkeys Vibrio cholerae
Chemicals
Anti-Bacterial Agents Cyanides Enterotoxins Adenylyl Cyclases Fluorides Epinephrine
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Bennett V
Cuatrecasas P
References (49)
49 references, click to expand
  1. Localization of cholera toxin in vivo.
    J Infect Dis. 1972 Dec;126(6):617-28 PMID: 4577423
  2. Fluidity of the surface of cultured muscle fibers. Rapid lateral diffusion of marked surface antigens.
    J Cell Biol. 1973 Apr;57(1):27-37 PMID: 4570791
  3. Gangliosides and membrane receptors for cholera toxin.
    Biochemistry. 1973 Aug 28;12(18):3558-66 PMID: 4731192
  4. Mechanism of action of Vibrio cholerae enterotoxin. Effects on adenylate cyclase of toad and rat erythrocyte plasma membranes.
    J Membr Biol. 1975 Jun 3;22(1):1-28 PMID: 805247
  5. Cholera toxin: interaction of subunits with ganglioside GM1.
    Science. 1974 Feb 15;183(4125):656-7 PMID: 4810267
  6. Vibrio cholerae choleragenoid. Mechanism of inhibition of cholera toxin action.
    Biochemistry. 1973 Aug 28;12(18):3577-81 PMID: 4731194
  7. Stimulation of glycerol production in fat cells by cholera toxin.
    Nature. 1970 May 16;226(5246):658-9 PMID: 4315553
  8. Effects of prostaglandins, theophylline, and cholera exotoxin upon transmucosal water and electrolyte movement in the canine jejunum.
    Gastroenterology. 1971 Jan;60(1):22-32 PMID: 5544090
  9. A new simple method for separation of adenosine 3',5'-cyclic monophosphate from other nucleotides and its use in the assay of adenyl cyclase.
    Anal Biochem. 1971 Sep;43(1):227-39 PMID: 4331761
  10. The fluid mosaic model of the structure of cell membranes.
    Science. 1972 Feb 18;175(4023):720-31 PMID: 4333397
  11. Deactivation of cholera toxin by a sialidase-resistant monosialosylganglioside.
    J Infect Dis. 1973 Jun;127(6):639-47 PMID: 4707310
  12. Stimulation of intestinal mucosal adenyl cyclase by cholera enterotoxin and prostaglandins.
    J Clin Invest. 1971 Jun;50(6):1218-30 PMID: 4325309
  13. Studies on the mode of action of diphtheria toxin. VII. Toxin-stimulated hydrolysis of nicotinamide adenine dinucleotide in mammalian cell extracts.
    J Exp Med. 1969 Jan 1;129(1):1-21 PMID: 4304436
  14. Cholera toxin-fat cell interaction and the mechanism of activation of the lipolytic response.
    Biochemistry. 1973 Aug 28;12(18):3567-77 PMID: 4731193
  15. Separation of cyclic 3',5'-nucleoside monophosphates from other nucleotides on aluminum oxide columns. Application to the assay of adenyl cyclase and guanyl cyclase.
    Anal Biochem. 1971 Jun;41(2):372-96 PMID: 4326444
  16. Affinity chromatography and structural analysis of Vibrio cholerae enterotoxin-ganglioside agarose and the biological effects of ganglioside-containing soluble polymers.
    Biochemistry. 1973 Oct 9;12(21):4253-64 PMID: 4745671
  17. Vibrio cholerae enterotoxin and its mode of action.
    Bacteriol Rev. 1971 Mar;35(1):1-13 PMID: 4324714
  18. Lateral diffusion of rhodopsin in the photoreceptor membrane.
    Nature. 1974 Feb 15;247(5441):438-41 PMID: 4818543
  19. Insulin--receptor interactions in adipose tissue cells: direct measurement and properties.
    Proc Natl Acad Sci U S A. 1971 Jun;68(6):1264-8 PMID: 5288373
  20. Stimulation of steroid secretion in adrenal tumor cells by choleragen.
    Proc Natl Acad Sci U S A. 1973 Oct;70(10):2741-4 PMID: 4355364
  21. Membrane receptors as general markers for plasma membrane isolation procedures. The use of 125-I-labeled wheat germ agglutinin, insulin, and cholera toxin.
    J Biol Chem. 1975 Jan 25;250(2):488-500 PMID: 163229
  22. Preparation of iodine-131 labelled human growth hormone of high specific activity.
    Nature. 1962 May 5;194:495-6 PMID: 14450081
  23. Site and characteristics of electrolyte loss and effect of intraluminal glucose in experimental canine cholera.
    J Clin Invest. 1968 May;47(5):1210-20 PMID: 5645863
  24. Cholera toxin and cell growth: role of membrane gangliosides.
    Proc Natl Acad Sci U S A. 1974 Oct;71(10):4224-8 PMID: 4530298
  25. Modified procedure for the synthesis of 32P-labelled ribonucleoside 5'-monophosphates of high specific activity.
    Biochim Biophys Acta. 1968 Feb 26;155(2):609-10 PMID: 5637074
  26. Chemical and physical properties of cholera exo-enterotoxin (choleragen) and its spontaneously formed toxoid (choleragenoid).
    Biochim Biophys Acta. 1972 Jan 26;257(1):158-66 PMID: 5009826
  27. Adenosine triphosphate-dependent inhibition of insulin-stimulated glucose transport in fat cells. Possible role of membrane phosphorylation.
    J Biol Chem. 1974 May 25;249(10):3170-80 PMID: 4830240
  28. Effect of colicin E3 upon the 30S ribosomal subunit of Escherichia coli.
    Proc Natl Acad Sci U S A. 1971 May;68(5):959-63 PMID: 4930243
  29. Adenylate cyclase activity in Neurospora crassa. I. General properties.
    J Biol Chem. 1972 Nov 10;247(21):6873-9 PMID: 4343160
  30. Induction of steroidogenesis in tissue culture by cholera enterotoxin.
    Nat New Biol. 1973 Jun 20;243(129):246-7 PMID: 4351987
  31. Effects of cycloheximide on the response of intestinal mucosa to cholera enterotoxin.
    J Clin Invest. 1973 Jun;52(6):1376-83 PMID: 4349948
  32. Intestinal adenyl-cyclase activity in canine cholera: correlation with fluid accumulation.
    J Infect Dis. 1972 Apr;125(4):377-81 PMID: 5018378
  33. Commentary. Insulin receptors, cell membranes and hormone action.
    Biochem Pharmacol. 1974 Sep 1;23(17):2353-61 PMID: 4373002
  34. Membrane receptors.
    Annu Rev Biochem. 1974;43(0):169-214 PMID: 4368906
  35. Inactivation of ribosomes in vitro by colicin E 3 .
    Proc Natl Acad Sci U S A. 1971 Oct;68(10):2421-5 PMID: 4944624
  36. The rapid intermixing of cell surface antigens after formation of mouse-human heterokaryons.
    J Cell Sci. 1970 Sep;7(2):319-35 PMID: 4098863
  37. Hormone-sensitive adenylyl cyclases. Useful models for studying hormone receptor functions in cell-free systems.
    Biochim Biophys Acta. 1973 Sep 10;300(2):129-58 PMID: 4356127
  38. Adenosine diphosphate ribosylation of aminoacyl transferase II and inhibition of protein synthesis by diphtheria toxin.
    J Biol Chem. 1971 Jul 10;246(13):4251-60 PMID: 4326212
  39. Action of cholera toxin on fluid and electrolyte movement in the small intestine.
    Annu Rev Med. 1973;24:19-23 PMID: 4268017
  40. Production of highly purified choleragen and choleragenoid.
    J Infect Dis. 1970 May;121:Suppl 121:63+ PMID: 4987011
  41. Mechanism of action of cholera toxin and the mobile receptor theory of hormone receptor-adenylate cyclase interactions.
    Proc Natl Acad Sci U S A. 1975 Jan;72(1):33-7 PMID: 164020
  42. Response of the canine duodenum to intraluminal challenge with cholera exotoxin.
    J Clin Invest. 1968 Dec;47(12):2600-7 PMID: 5725277
  43. Protein measurement with the Folin phenol reagent.
    J Biol Chem. 1951 Nov;193(1):265-75 PMID: 14907713
  44. [Biosynthesis of a colicin and its mode of action].
    Ann Inst Pasteur (Paris). 1952 Sep;83(3):295-315 PMID: 13017127
  45. Interaction of Vibrio cholerae enterotoxin with cell membranes.
    Biochemistry. 1973 Aug 28;12(18):3547-58 PMID: 4731191
  46. Tissue receptor for cholera exotoxin: postulated structure from studies with GM1 ganglioside and related glycolipids.
    Infect Immun. 1973 Aug;8(2):208-14 PMID: 4125267
  47. Evidence for interdependent action of glucagon and nucleotides on the hepatic adenylate cyclase system.
    J Biol Chem. 1974 Jan 10;249(1):59-65 PMID: 4358641
  48. Cholera toxin mimics melanocyte stimulating hormone in inducing differentiation in melanoma cells.
    Proc Natl Acad Sci U S A. 1974 Jun;71(6):2500-4 PMID: 4366771
  49. METABOLISM OF ISOLATED FAT CELLS. I. EFFECTS OF HORMONES ON GLUCOSE METABOLISM AND LIPOLYSIS.
    J Biol Chem. 1964 Feb;239:375-80 PMID: 14169133
Article Info
Journal
The Journal of membrane biology
Abbr.
J Membr Biol
ISSN
0022-2631
Published
1975-06-03
Pages
29-52
Language
English
Region
United States
NLM ID
0211301
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