3,365
Views
70
CrossRef citations to date
0
Altmetric
Research Paper

Active movements in plants

Mechanism of trap closure by Dionaea muscipula Ellis

, &
Pages 778-783 | Received 22 Jan 2008, Accepted 04 Apr 2008, Published online: 24 Apr 2008

References

  • Jacobson SL. The effect of ionic environment on the response of the sensory hair of Venus's flytrap. Can J Bot 1974; 52:1293 - 1302
  • Volkov AG, Adesina T, Markin VS, Jovanov E. Kinetics and mechanism of Dionaea muscipula trap closing. Plant Physiol 2008; 146:694 - 702
  • Burdon-Sanderson J. Note on the electrical phenomena, which accompany stimulation of the leaf of Dionaea muscipula Ellis. Phil Proc R Soc Lond 1873; 21:495 - 496
  • Volkov AG, Adesina T, Jovanov E. Closing of Venus flytrap by electrical stimulation of motor cells. Plant Signal Behavior 2007; 2:139 - 145
  • Sibaoka T. Physiology of rapid movements in higher plants. Annu Rev Plant Physiol 1969; 20:165 - 184
  • Hodick D, Sievers A. The action potential of Dionaea muscipula Ellis. Planta 1988; 174:8 - 18
  • Hodick D, Sievers A. The influence of Ca2+ on the action potential in mesophyll cells of Dionaea muscipula Ellis. Protoplasma 1989; 133:83 - 84
  • Stuhlman O, Darden E. The action potential obtained from Venus's flytrap. Science 1950; 111:491 - 492
  • Brown WH. The mechanism of movement and the duration of the effect of stimulation in the leaves of Dionaea. Amer J Bot 1916; 3:68 - 90
  • Benolken RM, Jacobson SL. Response properties of a sensory hair excised from Venus's flytrap. J Gen Physiol 1970; 56:64 - 82
  • DiPalma JR, McMichael R, DiPalma M. Touch receptor of Venus flytrap, Dionaea muscipula. Science 1966; 152:539 - 540
  • Darwin C. Insectivorous Plants 1875; London Murray
  • Lloyd FE. The Carnivorous Plants 1942; New York Ronald
  • Jacobson SL. Receptor response in Venus's flytrap. J General Physiol 1965; 49:117 - 129
  • Krol E, Dziubinska H, Stolarz M, Trebacz K. Effects of ion channel inhibitors on cold- and electrically-induced action potentials in Dionaea muscipula. Biol. Plantarum 2006; 50:411 - 416
  • Jaffe MJ. The role of ATP in mechanically stimulated rapid closure of the Venus's flytrap. Plant Physiol 1973; 51:17 - 18
  • Rea PA. The dynamics of H+ efflux from the trap lobes of Dionaea muscipula Ellis (Venus's flytrap). Plant Cell Environm 1983; 6:125 - 134
  • Williams SE, Bennet AB. Leaf closure in the Venus flytrap: an acid growth response. Science 1982; 218:1120 - 1121
  • Forterre Y, Skothelm JM, Dumals J, Mahadevan L. How the Venus flytrap snaps. Nature 2005; 433:421 - 425
  • Hill BS, Findlay GP. The power of movement in plants: the role of osmotic machines. Q Rev Biophys 1981; 14:173 - 222
  • Nelson DL, Cox MM. Lehninger principles of biochemistry 2005; 4th Edition New York Freeman 58 - 59
  • Bobji MS. Springing the trap. J Biosci 2005; 30:143 - 146
  • Fagerberg WR, Allain D. A quantitative study of tissue dynamics during closure in the traps of Venus's flytrap Dionaea muscipula Ellis. Amer J Bot 1991; 78:647 - 657
  • Fagerberg WR, Howe DG. A quantitative study of tissue dynamics in Venus's flytrap Dionaea muscipula (Droseraceae) II. Trap reopening. Amer J Bot 1996; 83:836 - 842
  • Mozingo HN, Klein P, Zeevi Y, Lewis ER. Venus's flytrap observations by scanning electron microscopy. Amer J Bot 1970; 57:593 - 598
  • Beilby MJ, Bisson MA, Shepherd VA. Volkov AG. Electrophysiology of turgor regulation in charophyte cells. Plant electrophysiology—theory & methods 2006; Berlin Springer 375 - 406
  • Shimmen T. Volkov AG. Electrophysiology in mechanosensing and wounding response. Plant electrophysiology—theory & methods 2006; Berlin Springer 319 - 339
  • Zonia L, Munnik T. Life under pressure: hydrostatic pressure in cell growth and function. Trends Plant Sci 2007; 12:90 - 97
  • De Candolle CP. Sur la structure et les mouvements des feuilles du Dionaea muscipula. Arch Sci Phys Nat 1876; 55:400 - 431
  • Munk H. Die electrischen und Bewegungserscheinungen am Blatte der Dionaeae muscipula. Arch Anat Physiol Wiss Med 1876; 203 - 230
  • Sheetz MP, Singer SJ. Biological membranes as bilayer couples. A molecular mechanism of drug-erythrocyte interactions. Proc Natl Acad Sci USA 1974; 71:4457 - 4461
  • Lim HWG, Wortis M, Mukhopadhyay R. Stomatocyte-discocyte-echinocyte sequence of the human red blood cell: Evidence for the bilayer-couple hypothesis from membrane mechanics. Proc Natl Acad Sci USA 2002; 99:16766 - 16769
  • Qi Z, Chi S, Su X, Naruse K, Sokabe M. Activation of a mechanosensitive BK channel by membrane stress created with amphipaths. Molecular Membrane Biol 2005; 22:519 - 527
  • Markin VS, Albanesi JP. Membrane fusion: stalk model revisited. Biophys J 2002; 82:693 - 712
  • Volkov AG, Deamer DW, Tanelian DL, Markin VS. Liquid interfaces in chemistry and biology 1998; New York Wiley
  • Tamiya T, Miyazaki T, Ishikawa H, Iriguchi N, Maki T, Matsumoto JJ, Tsuchiya T. Movement of water in conjunction with plant movement visualized by NMR imaging. J Biochem 1988; 104:5 - 8
  • Detmers FJM, De Groot BL, Mueller EM, Hinton A, Konings IBM, Sze M, Flitsch SL, Grubmueller H, Deen PMT. Quaternary ammonium compounds as water channel blockers: specificity, potency, and site of action. J Biol Chem 2006; 281:14207 - 14214
  • Ksenzhek OS, Volkov AG. Plant Energetics 1998; San Diego Academic Press
  • Volkov AG. Green plants: Electrochemical interfaces. J Electroanal Chem 2000; 483:150 - 156

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.