Artigo Acesso aberto Revisado por pares

Induction and Fixation of Polarity — Early Steps in Plant Morphogenesis

1992; Wiley; Volume: 34; Issue: 2 Linguagem: Inglês

10.1111/j.1440-169x.1992.tb00001.x

ISSN

1440-169X

Autores

Peter Nick, Masaki Furuya,

Tópico(s)

Photosynthetic Processes and Mechanisms

Resumo

Development, Growth & DifferentiationVolume 34, Issue 2 p. 115-125 Free Access Induction and Fixation of Polarity — Early Steps in Plant Morphogenesis Peter Nick, Peter Nick Frontier Research Program, Riken Institute, Hirosawa 2–1, Wako-shi, Saitama 351–01, Japan Current address: Institut de Biologie Moleculaire des Plantes, CNRS 12, rue du Général Zimmer, 67084 Strasbourg Cedex, FranceSearch for more papers by this authorMasaki Furuya, Corresponding Author Masaki Furuya Frontier Research Program, Riken Institute, Hirosawa 2–1, Wako-shi, Saitama 351–01, Japan Current address: Advanced Research Laboratory, Hitachi Ltd., Hatoyama, Saitama 351–03, JapanTo whom correspondence should be addressed (Tel & Fax: +81-492-96-7511).Search for more papers by this author Peter Nick, Peter Nick Frontier Research Program, Riken Institute, Hirosawa 2–1, Wako-shi, Saitama 351–01, Japan Current address: Institut de Biologie Moleculaire des Plantes, CNRS 12, rue du Général Zimmer, 67084 Strasbourg Cedex, FranceSearch for more papers by this authorMasaki Furuya, Corresponding Author Masaki Furuya Frontier Research Program, Riken Institute, Hirosawa 2–1, Wako-shi, Saitama 351–01, Japan Current address: Advanced Research Laboratory, Hitachi Ltd., Hatoyama, Saitama 351–03, JapanTo whom correspondence should be addressed (Tel & Fax: +81-492-96-7511).Search for more papers by this author First published: April 1992 https://doi.org/10.1111/j.1440-169X.1992.tb00001.xCitations: 12 AboutPDF ToolsRequest permissionExport citationAdd to favoritesTrack citation ShareShare Give accessShare full text accessShare full-text accessPlease review our Terms and Conditions of Use and check box below to share full-text version of article.I have read and accept the Wiley Online Library Terms and Conditions of UseShareable LinkUse the link below to share a full-text version of this article with your friends and colleagues. Learn more.Copy URL Share a linkShare onFacebookTwitterLinkedInRedditWechat References 1 Ambrosio, L., A. P. Mahowald and N. Perrimon, 1989. 1(1)pole hole is required maternally for pattern formation in the terminal regions of the embryo. Development, 106 145– 158. 2 Anderson, K. V. and C. Nüsslein-Volhard, 1984. Genetic Analysis of Dorsal-Ventral Pettern in Drosophila. In Pattern Formation (Eds. G. M. Malacinski and S. V. Bryant), pp. 269– 289. MacMillan, London New York . 3 Ball, E., 1950. Isolation, removal and attempted transplants of the central portion of the shoot apex of Lupinus albus L. Am. J. Botany, 37, 117– 136. 4 Ball, E., 1952. Experimental division of the shoot apex of Lupinus albus L. Growth, 16, 151– 174. 5 Barlow, P., 1989. Experimental Modification of Cell Division Patterns in the Root Meristem of Zea mays. Annals of Botany, 64, 13– 20. 6 Baskin, T. I., M. Iino, P. B. Green and W. R. Briggs, 1985. High-resolution measurements of growth during first positive phototropism in maize. Plant, Cell and Environment, 8 595– 603. 7 Bentrup, F. W. Meyer Zu, 1963. Vergleichende Untersuchungen zur Polaritätsinduktion durch Licht an der Equisetum spore und der Fucus zygote. Planta, 59, 472– 491. 8 Bentrup, F. W. Meyer Zu, T. Sandan and L. F. Jaffe, 1967. Induction of polarity in Fucus eggs by potassium ion gradients. Protoplasma, 65, 25– 35. 9 Bloch, R., 1965. Polarity and gradients in plants: A survey. In Encyclopedia of Plant Physiology, vol. 15 (Ed. W. Ruhland), pp. 234– 274. Springer, Berlin Heidelberg New York . 10 Bode, P. M. and H. R. Bode, 1984. Patterning in Hydra. In Pattern Formation (Eds. G. M. Malacinski and S. V. Bryant), pp. 213– 241. MacMillan, London New York . 11 Boveri, Th., 1901. Über die Polarität des Seeigeleies. Verh. physik. med. Ges. Würzburg, 34 145– 175. 12 Brauner, F. and A. Hager, 1957. Über die geotropische Mneme". Naturwissenschaften, 44 429– 430. 13 Brawley, S. H. and D. M. Roberts, 1989. Calmodulin-Binding Proteins are developmentally regulated in Gametes and Embryos of Fucoid Algae. Developmental Biol., 131, 313– 320. 14 Briggs, W. R. and T. J. Baskin, 1988. Phototropism in Higher Plants — Controversies and Caveats. Bot. Acta, 101 133– 139. 15 Buder, J., 1920. Neue phototropische Fundamental-versuche. Ber. Dtsch. Bot. Ges., 28 10– 19. 16 Bünning, E., 1952. Morphogenesis in plants. Surv. Biol. Proger. 2 105– 140. 17 Champer, R.A., Dingwall, A. and L. Shapiro, 1987. Cascade Regulation of Caulobacter Flagellar and Chemotaxis Genes. J. Mol. Biol., 194, 71– 80. 18 Child, C. M., 1941. Patterns and Problems of Development. University of Chicago Press, Chicago . 19 Cholodny, N., 1927. Wuchshormone und Tropismen bei Pflanzen. Biol. Zentralblatt, 47 604– 626. 20 Czapek, F., 1895. Untersuchungen über Geotropismus. Jb. wiss. Bot., 27 243. 21 Dennison, D. S., 1979. Phototropism. In Encyclopedia of plant physiology, N. S., vol. 7, Physiology of movements. (Eds. W. Haupt and M. E. Feinleib), pp. 506– 566. Springer, Berlin Heidelberg New York . 22 Driesch, H., 1893. Entwicklungsmechanische Studien. X. Über einige allgemeine entwicklungsmechanische Ergebnisse. Mitt. zool. Stat. Neapel, 11 221– 253. 23 Driesch, H., 1909. Philosophie des Organischen. Engelmann, Leipzig . 24 Elinson, R. P. and B. Rowning, 1988. Transient Array of Parallel Microtubules in Frog Eggs: Potential Tracks for a Cytoplsmic Rotation That Specifies the Dorso-Ventral Axis. Develop. Biol., 128 185– 197. 25 French, V., 1988. Gradients and insect segmentation. Development, 104, (Suppl.), 3– 16. 26 Frohnhöfer, H. G. and C. Nüsslein-Volhard, 1986. Organization of anterior pattern in the Drosophila embryo by the maternal gene bicoid. Nature, 324, 120– 125. 27 Fukshansky, L. and A. Steinhart, 1987. Spatial Factors in Phycomyces Photoropism: Analysis of Balanced Responses. J. theor. Biol., 129, 301– 323. 28 Furuya, M., 1984. Cell division patterns in multicellular plants. Ann. Rev. Plant Physiol., 35 349– 373. 29 Gerhart, J., G. Ubbeles, S. Black, K. Hara and M. Kirschner, 1981. A reinvestigation of the role of the grey crescent in axis formation in Xenopus laevis. Nature, 292, 511– 516. 30 Gierer, A., 1981. Generation of biological patterns and form: some physical, mathematical, and logical aspects. Progr. Biophys. Mol. Biol., 37 1– 47. 31 Gierer, A., S. Berking, H. Bode, C. N. David, U. Flick, G. Hansmann, H. G. Schaller and E. Trenkner, 1972. Regeneration of Hydra from reaggregated cells. Nature, 239, 98– 101. 32 Goebel, K., 1908. Einleitung in die experimentelle Morphologie der Plflanzen, pp. 218– 251. Teubner, Leipzig Berlin . 33 Goerttler, K., 1925. Die Formbildung der Medullaranlage bei Urodelen im Rahmen der Verschiebungsvorgänge von Keimbezirken während der Gastrulation und als entwicklung-sphysiologisches Problem. Roux' Arch., 106 503– 541. 34 Goethe, J. W., 1804. In West-östlicher Diwan. Frankfurt, p 69. 35 Hanstein, J., 1860. Versuche über die Leitung des Saftes durch die Rinde. Jahrbuch f. wiss. Bot., 2 392. 36 Harrison, L. G., 1987. What is the status of the reaction-diffusion theory thirty-four years after Turing. J. theor, Biol., 125 369– 384. 37 Hartmann, E., 1984. Influence of light on phototropic bending of moss protonemata of Ceratodon purpureus (Hedw.) Brid. J. Hattori Bot. Lab., 55, 87– 98. 38 Hartmann, E. and H. Pfaffmann, 1989. Involvement of phosphatidyl inositol phospholipases in phytochrome-mediated signal transduction in mosses. European Symp. Photomor-phogenesis in Plants, p. 25. University of Freiburg, Freiburg . 39 Haupt, W., 1957. Die Induktion der Polarität der Spore von Equisetum. Planta, 49, 61– 90. 40 Haupt, W., 1958. Über die Primärvorgänge bei der polarisierenden Wirkung des Lichtes auf keimende Equisetum sporen. Planta (Berl.), 51, 74– 83. 41 Hemmerling, J., 1963. Nucleocytoplasmic interactions in Acetabularia and other cells. Ann. Rev. Plant Physiol., 14, 65– 92. 42 Hertel, R., 1980. Phototropism of Lower Plants. In Photoreception and sensory transduction in anneural organisms. (Eds. F. Lenci and G. Colombetti), pp. 90– 105. Plenum Publishers, New York . 43 Hild, V. and R. Hertel, 1972. Initial phases of gravity-induced lateral auxin transport and geotropic curvature in corn coleoptiles. Planta, 108 245– 258. 44 Hoffmeister, S. A. H., 1989. Action of Foot Activator on Growth and Differentiation of Cells in Hydra. Developmental Biol., 11, 254– 261. 45 Hofmann, E. and E. Schäfer, 1987. Red-light induced shift of the fluence-response curve for first positive curvature of maize coleoptiles. Plant Cell Physiol., 28 37– 45. 46 Holtfreter, J., 1933. Die totale Exogastrulation, eine Selbstablösung des Ektoderms vom Entomesoderm. Entwicklung und funktionelles Verhalten nervenloser Organe. Roux' Arch., 129 670– 793. 47 Hörstadius, S., 1935. Über die Determination im Verlauf der Eiachse bei Seeigeln. Publ. staz. zool. Napoli, 14 251– 479. 48 Iino, M., 1991. Phototropism: mechanisms and ecological implications. Plant, Cell and Environment, 13 633– 650. 49 Iino, M. and T. I. Baskin, 1984. Growth distribution during first positive phototropic curvature in maize coleoptiles. Plant, Cell and Environment, 7 97– 104. 50 Ingham, P. W. and A. Martinez-Arias, 1986. The correct activation of Antennapedia and Bithorax complex genes requires the Fushi tarazu gene. Nature, 324, 592– 597. 51 Ish-Horowizc, D. and H. Gyurkovics, 1988. Ectopic segmentation, gene expression and metameric regulation in Drosophila. Development, 104, (Suppl.), 67– 73. 53 Jaffe, L. F., 1958. Localization in the developing Fucus egg and the general role of localizing currents. Adv. Morphogen., 7, 295– 328. 54 Jaffe, L. F., 1958. Morphogenesis in lower plants. Ann. Rev. Plant Physiol., 9 359– 384. 55 Jaffe, L. F., 1968. On the centripetal course of development, the Fucus egg, and self-electrophoresis. Develop. Biol., 3 (Suppl.), 83– 111. 56 Jaffe, L. F. and H. Etzold, 1965. Tropic responses of Funaria spores to red light. Biophys. J., 5, 715– 742. 57 Jaffe, L. F. and R. Nuccietelli, 1978. An ultrasensitive probe for measuring steady extracellular currents. J. Cell Biol., 63 614– 628. 58 Jerha-Dziadosz, M. and J. Beisson, 1990. Genetic approaches to ciliate pattern formation: from self-assembly to morphogenesis. Trends in Genetics, 6 41– 45. 60 Kropf, D. L., R. Hopkins and R. S. Quatrano, 1989. Protein synthesis and Morphogenesi are not tightly linked during Embryogenesis in Fucus. Developmental Biol., 134, 452– 461. 61 Kunzelmann, P., M. Iino and E. Schäfer, 1988. Phototropism of maize coleoptiles. Influences of light gradients. Planta, 176 212– 220. 62 Lehmann, R. and C. Nüsslein-Volhard, 1986. Abdominal segmentation, pole cell formation, and embryonic polarity require the localized activity of oskar, a maternal gene in Drosophila. Cell, 47, 141– 152. 63 Lesot, H., V. Karcher-Djuricic, M. D. Kubler and J. V. Ruch, 1988. Membrane-cytoskeleton interaction: Inhibition of odontoblast differentiation by a monoclonal antibody directed against a membrane protein. Differentiation, 37 62– 72. 64 Loiseau, J. E., 1959. Observation et expérimentation sur la phyllotaxis et le fonctionnement du sommet végétatif chez quelques Balsaminacées. Ann. Sci. Nat. Bot. Ser. 11, 20, 1– 214. 65 Macdonald, P. M. and G. Struhl, 1988. Cis-acting sequences responsible for anterior localization of bicoid mRNA in Drosophila embryos. Nature, 336, 595– 598. 67 Martinez-Arias, A. and P. W. Ingham, 1986. Form and diffusion. Nature, 324 510– 511. 68 Mayer, U., R. A. Torres Ruiz, T. Berleth, S. Miséra and G. Jürgens, 1991. Mutations affecting body organization in the Arabidopsis embryo. Nature, 353, 402– 407. 70 Meinahrd, H., 1986. The threefold subdivision of segments and the initiation of legs and wings in insects. Trends in Genetics, 3 36– 41. 71 Meinke, D. W., 1991. Perspectives on Genetic Analysis of Plant Embryogenesis. The Plant Cell, 3 857– 866. 72 Melton, D. A., 1991. Pattern Formation During Animal Development. Science, 252 234– 241. 73 Miller, H. A. and R. H. Wetmore, 1945. Studies in the developmental autonomy of Phlox drumondii Hook. I. The embryo. Am. J. Botany, 32, 588– 599. 75 Müller, W. A., 1989. Diacylglycerol-induced multi-head formation in Hydra. Development, 127, 309– 316. 76 Nelson, S. H. and D. R. McClay, 1988. Cell Polarity in Sea Urchin Embryos: Reorientation of Cells Occurs Quickly in Aggregates. Develop. Biol., 127 235– 247. 77 Nick, P. and E. Schäfer, 1988a. Interaction of gravi- and phototropic stimulation in the response of maize (Zea mays L.) coleoptiles. Planta, 173, 212– 220. 78 Nick, P. and E. Schäfer, 1988b. Spatial memory during the tropism of maize (Zea mays L.) coleoptiles. Planta, 175, 380– 388. 79 Nick, P. and E. Schäfer, 1989. Nastic response of maize (Zea mays L.) coleoptiles during clinostat rotation. Planta, 179, 123– 131. 81 Nick, P., R. Bergfeld, E. Schäfer and P. Schopfer, 1990. Unilateral reorientation of microtubules at the outer epidermal wall during photo- and gravitropic curvature of maize coleoptiles and sunflower hypocotyls. Planta, 181 162– 168. 82 Nick, P., H. Sailer and E. Schäfer, 1990. On the relation between photo- and gravitropically induced spatial memory in maize coleoptiles. Planta, 181 385– 392. 83 Nick, P., E. Schäfer, R. Hertel and M. Furuya, 1991. On the Putative Role of Microtubules in Gravitropism. Plant and Cell Physiol., 32 873– 880. 84 Nick, P., M. Furuya and E. Schäfer, 1991. Do Microtubules Control Growth in Tropism? Plant and Cell Physiol., 32 999– 1006. 85 Nick, P. and E. Schäfer, 1991. Induction of transverse polarity by blue light: an all-or-none response. Planta, 185 415– 424. 86 Noll, K., 1900. Über den Einfluß der Lage auf die morphologische Ausbildung einer Siphonee. Arb. d. Bot. Inst. Würzburg, 3 466. 87 Nüsslein-Volhard, C., 1977. Genetic analysis of pattern formation in the embryo of Drosophila melanogaster Roux's Arch. Dev. Biol., 183, 249– 268. 89 Ootaki, T. and M. Furuya, 1969. Experimentally induced apical dominance in protonemata of Pteris vittata. Embryologia, 10, 284– 296. 90 Parker, K. E. and W. R. Briggs, 1990. Transport of indole-3-Acetic Acid during Gravitropism in Intact Maize Coleoptiles. Plant Physiol., 94 1763– 1769. 92 Pilkington, M., 1929. The regeneration of the stem apex. New. Phytol., 28 37– 53. 93 Priestley, J. H. and C. F. Swingle, 1929. Vegetative propagation from the standpoint of plant anatomy. USDA Techn. Bull., 151 1– 98. 94 Quatrano, R. S., 1968. Rhizoid formation in Fucus zygotes: Dependence on protein and ribonucleic acid synthesis. Science, 162, 468– 470. 95 Quatrano, R. S., 1978. Development of cell polarity. Ann. Rev. Plant Physiol., 29 489– 510. 96 Randolph, L. F., 1936. The developmental morphology of the caryopsis in maize. J. Agric. Res., 53 881– 916. 97 Riggleman, B., P. Schedl and E. Wieschaus, 1990. Spatial expression of the Drosophila Segment Polarity Gene armadillo is Posttranscriptionally Regulated by wingless. Cell, 63, 549– 560. 98 Robinson, K. R. and R. Cone, 1980. Polarization of Fucoid eggs by a calcium ionophore gradient. Science, 270, 77– 78. 99 Robinson, K. R. and L. F. Jaffe, 1975. Polarized Fucoid eggs drive a calcium current through themselves. Science, 187, 70– 72. 100 Robinson, K. R. and L. F. Jaffe, 1976. Calclium gradients and egg polarity. J. Cell Biol., 70, 37. 102 Sachs, J., 1880. Stoff und Form der Pflanzenorgane. Arb. Bot. Inst. Würzburg, 2 469– 479. 103 Sachs, T., 1981. The Control of the Patterned Differentiation of Vacular Tissues. Adv. in Bot. Res., 9 152– 262. 106 Sander, K., 1976. Formation of the basic body pattern in insect embryogenesis. Adv. Insect Physiol., 12 125– 238. 107 Sailer, H., P. Nick and E. Schäfer, 1990. Inverstion of gravitropism by symmetric blue light on the clinostat. Planta, 180 378– 382. 108 Schaller, H. C., M. Roberge, B. Zachmann, S. Hoffmeister, E. Schilling, H. Bodenmüller, 1986. The head acrivator is released from regenerating Hydra bound to a carrier molecule. EMBO, 5, 1821– 1824. 109 Schulz, R. and W. A. Jensen, 1968. Capsella embryogenesis: The egg, zygote and young embryo. Am. J. Botany, 55, 807– 819. 110 Shapiro, L., 1985a. Cell differentiation in Caulobacter. Trends in Genetics, 2, 317– 321. 111 Shapiro, L., 1985b. Generation of polarity during Caulobacter cell differentiation. Ann. Rev. Cell Biol., 1, 173– 207. 115 Sussex, I. M., 1952. Regeneration of the potato shoot apex. Nature, 170 755– 757. 116 Thomsen, G., T. Woolf, M. Whitman, S. Sokol, J. Vaughan, W. Vale and D. A. Melton, 1990. Activins Are Expressed Early in Xenopus Embryogenesis and Can Induce Axial Mesoderm and Anterior Sturctures. Cell, 63, 485– 493. 117 Tieghem, N. van, 1873. Sur la polarité des plantes. Ann. des Scienc. nat. V. Serié, 117 207. 118 Ubisch, L. von, 1931. Untersuchungen über Formbildung mit Hilfe experimentell erzeugter keimblattchimäre von Echinodermenlarven. Roux'Arch., 124, 182– 240. 121 Vogt, W., 1929. Gestaltungsanalyse am Amphibienkeim mit örtlicher Vitalfärbung. II. Teil: Gastrulation und Mesodermbildung bei Urodelen und Anuren. Roux' Arch., 124 182– 240. 125 Went, R. W., 1928. Wuchsstoff und Wachstum. Rec. trav. bot. néerl., 25 1– 116. 127 Williams, J. G., 1988. The role of diffusible molecules in regulating the cellular differentiation of Dictyostelium discoideum. Development, 103, 1– 16. 128 Wolpert, J., 1969. Positional information and the spatial pattern of cellular differentiation. J. Theor. Biol., 25 1– 47. 129 Wood, W. B., 1991. Evidence from reversal of hand-edness in C. elegans embryos for early cell interactions determining cell fates. Nature, 349, 536– 538. Citing Literature Volume34, Issue2April 1992Pages 115-125 ReferencesRelatedInformation

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