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Article Addendum

Plasmodesmata transport of GFP and GFP fusions requires little energy and transitions during leaf expansion

Pages 902-905 | Received 10 Jul 2008, Accepted 14 Jul 2008, Published online: 01 Oct 2008

References

  • Lucas WJ. Plant viral movement proteins: agents for cell-to-cell trafficking of viral genomes. Virology 2006; 344:169 - 184
  • Lee JY, Yoo BC, Rojas MR, Gomez-Ospina N, Staehelin LA, Lucas WJ. Selective trafficking of non-cell-autonomous proteins mediated by NtNCAPP1. Science 2003; 299:392 - 396
  • Lucas WJ, Lee JY. Plasmodesmata as a supracellular control network in plants. Nat Rev Mol Cell Biol 2004; 5:712 - 726
  • Ruiz-Medrano R, Xoconostle-Cazares B, Lucas WJ. Phloem long-distance transport of CmNACP mRNA: implications for supracellular regulation in plants. Development 1999; 126:4405 - 4419
  • Crawford KM, Zambryski PC. Subcellular localization determines the availability of non-targeted proteins to plasmodesmatal transport. Curr Biol 2000; 10:1032 - 1040
  • Crawford KM, Zambryski PC. Non-targeted and targeted protein movement through plasmodesmata in leaves in different developmental and physiological states. Plant Physiol 2001; 125:1802 - 1812
  • Vilar M, Sauri A, Monne M, Marcos JF, von Heijne G, Perez-Paya E, et al. Insertion and topology of a plant viral movement protein in the endoplasmic reticulum membrane. J Biol Chem 2002; 277:23447 - 23452
  • Liu JZ, Blancaflor EB, Nelson RS. The Tobacco Mosaic Virus 126-Kilodalton Protein, a Constituent of the Virus Replication Complex, Alone or within the Complex Aligns with and Traffics along Microfilaments. Plant Physiol 2005; 138:1853 - 1865
  • Guenoune-Gelbart D, Elbaum M, Sagi G, Levy A, Epel BL. Tobacco mosaic virus (TMV) replicase and movement protein function synergistically in facilitating TMV spread by lateral diffusion in the plasmodesmal desmotubule of Nicotiana benthamiana. Mol Plant Microbe Interact 2008; 21:335 - 345
  • Grabski S, De Feijter AW, Schindler M. Endoplasmic Reticulum Forms a Dynamic Continuum for Lipid Diffusion between Contiguous Soybean Root Cells. Plant Cell 1993; 5:25 - 38
  • Cantrill LC, Overall RL, Goodwin PB. Cell-to-cell communication via plant endomembranes. Cell Biol Int 1999; 23:653 - 661
  • Ju HJ, Samuels TD, Wang YS, Blancaflor E, Payton M, Mitra R, et al. The potato virus X TGBp2 movement protein associates with endoplasmic reticulum-derived vesicles during virus infection. Plant Physiol 2005; 138:1877 - 1895
  • chmitz J, Stussi-Garaud C, Tacke E, Prufer D, Rohde W, Rohfritsch O. In situ localization of the putative movement protein (pr17) from potato leafroll luteovirus (PLRV) in infected and transgenic potato plants. Virology 1997; 235:311 - 322
  • Baluska F, Hlavacka A, Volkmann D, Menzel D. Getting connected: actin-based cell-to-cell channels in plants and animals. Trends Cell Biol 2004; 14:404 - 408
  • Volkmann D, Mori T, Tirlapur UK, Konig K, Fujiwara T, Kendrick-Jones J, et al. Unconventional myosins of the plant-specific class VIII: endocytosis, cytokinesis, plasmodesmata/pit-fields, and cell-to-cell coupling. Cell Biol Int 2003; 27:289 - 291
  • Baluska F, Samaj J, Napier R, Volkmann D. Maize calreticulin localizes preferentially to plasmodesmata in root apex. Plant J 1999; 19:481 - 488
  • Radford JE, White RG. Localization of a myosin-like protein to plasmodesmata. Plant J 1998; 14:743 - 750
  • Chen MH, Tian GW, Gafni Y, Citovsky V. Effects of calreticulin on viral cell-to-cell movement. Plant Physiol 2005; 138:1866 - 1876
  • Chaffey N, Barlow P. Myosin, microtubules and microfilaments: co-operation between cytoskeletal components during cambial cell division and secondary vascular differentiation in trees. Planta 2002; 214:526 - 536
  • Tucker EB, Boss WF. Mastoparan-Induced Intracellular Ca2+ Fluxes May Regulate Cell-to-Cell Communication in Plants. Plant Physiol 1996; 111:459 - 467
  • Samaj J, Peters M, Volkmann D, Baluska F. Effects of myosin ATPase inhibitor 2,3-butanedione 2-monoxime on distributions of myosins, F-actin, microtubules and cortical endoplasmic reticulum in maize root apices. Plant Cell Physiol 2000; 41:571 - 582
  • Epel BL. Plasmodesmata: composition, structure and trafficking. Plant Mol Biol 1994; 26:1343 - 1356
  • Cilia ML, Jackson D. Plasmodesmata form and function. Curr Opin Cell Biol 2004; 16:500 - 506
  • Ghoshroy S, Lartey R, Sheng J, Citovsky V. Transport of proteins and nucleic acids through plasmodesmata. Annu Rev Plant Physiol Plant Mol Biol 1997; 48:27 - 50
  • Crawford KM, Zambryski PC. Plasmodesmata signaling: many roles, sophisticated statutes. Curr Opin Plant Biol 1999; 2:382 - 387
  • Ding B. Intercellular protein trafficking through plasmodesmata. Plant Mol Biol 1998; 38:279 - 310
  • Padgett HS, Epel BL, Kahn TW, Heinlein M, Watanabe Y, Beachy RN. Distribution of tobamovirus movement protein in infected cells and implications for cell-to-cell spread of infection. Plant J 1996; 10:1079 - 1088
  • Szecsi J, Ding XS, Lim CO, Bendahmane M, Cho MJ, Nelson RS, et al. Development of tobacco mosaic virus infection sites in Nicotiana benthamiana. MoI Plant-Microbe Interact 1999; 12:143 - 152
  • Giesman-Cookmeyer D, Silver S, Vaewhongs AA, Lommel SA, Deom CM. Tobamovirus and dianthovirus movement proteins are functionally homologous. Virology 1995; 213:38 - 45
  • Wymer CL, Fernandez-Abalos JM, Doonan JH. Microinjection reveals cell-to-cell movement of green fluorescent protein in cells of maize coleoptiles. Planta 2001; 212:692 - 695
  • Verchot-Lubicz J. A new model for cell-to-cell movement of potexviruses. Molec Plant Microbe Interact 2005; 18:283 - 290
  • Citovsky V. Tobacco mosaic virus: a pioneer of cell-to-cell movement. Philos Trans R Soc Lond B Biol Sci 1999; 354:637 - 643
  • Citovsky V, Wong ML, Shaw AL, Prasad BV, Zambryski P. Visualization and characterization of tobacco mosaic virus movement protein binding to single-stranded nucleic acids. Plant Cell 1992; 4:397 - 411
  • Itaya A, Woo YM, Masuta C, Bao Y, Nelson RS, Ding B. Developmental regulation of intercellular protein trafficking through plasmodesmata in tobacco leaf epidermis. Plant Physiol 1998; 118:373 - 385
  • Krishnamurthy K, Mitra R, Payton ME, Verchot-Lubicz J. Cell-to-cell movement of the PVX 12 K, 8 K, or coat proteins may depend on the host, leaf developmental stage, and the PVX 25 K protein. Virology 2002; 300:269 - 281
  • Kim I, Hempel FD, Sha K, Pfluger J, Zambryski PC. Identification of a developmental transition in plasmodesmatal function during embryogenesis in Arabidopsis thaliana. Development 2002; 129:1261 - 1272
  • Zambryski P, Crawford K. Plasmodesmata: gatekeepers for cell-to-cell transport of developmental signals in plants. Annu Rev Cell Dev Biol 2000; 16:393 - 421
  • Roberts IM, Boevink P, Roberts AG, Sauer N, Reichel C, Oparka KJ. Dynamic changes in the frequency and architecture of plasmodesmata during the sink-source transition in tobacco leaves. Protoplasma 2001; 218:31 - 44
  • Oparka KJ, Roberts AG, Boevink P, Santa Cruz S, Roberts I, Pradel KS, et al. Simple, but not branched, plasmodesmata allow the nonspecific trafficking of proteins in developing tobacco leaves. Cell 1999; 97:743 - 754
  • Yang Y, Ding B, Baulcombe DC, Verchot J. Cell-to-cell movement of the 25 K protein of potato virus X is regulated by three other viral proteins. Mol Plant Microbe Interact 2000; 13:599 - 605
  • Ding B, Itaya A, Qi Y. Symplasmic protein and RNA traffic: regulatory points and regulatory factors. Curr Opin Plant Biol 2003; 6:596 - 602
  • Liarzi O, Epel BL. Development of a quantitative tool for measuring changes in the coefficient of conductivity of plasmodesmata induced by developmental, biotic and abiotic signals. Protoplasma 2005; 225:67 - 76
  • Reinhardt B, Hanggi E, Muller S, Bauch M, Wyrzykowska J, Kerstetter R, et al. Restoration of DWF4 expression to the leaf margin of a dwf4 mutant is sufficient to restore leaf shape but not size: the role of the margin in leaf development. Plant J 2007; 52:1094 - 1104
  • Poethig RS. Phase change and the regulation of developmental timing in plants. Science 2003; 301:334 - 336
  • Schoenknecht G, Brown JE, Verchot-Lubicz J. Plasmodesmata transport of GFP alone or fused to potato virus X TGBp1 is diffusion driven. Protoplasma 2008; 232:143 - 152
  • Botha CE, Van Bel A. Quantification of symplastic continuity as visualised by plasmodesmograms: diagnostic value for phloem-loading pathways. Planta 1992; 187:359 - 366
  • Reuzeau C, McNally JG, Pickard BG. The endomembrane sheath: a key structure for understanding the plant cell?. Protoplasma 1997; 200:1 - 9
  • Thomas C, Hoffmann C, Dieterle M, Van Troys M, Ampe C, Steinmetz A. Tobacco WLIM1 is a novel F-actin binding protein involved in actin cytoskeleton remodeling. Plant Cell 2006; 18:2194 - 2206
  • Ketelaar T, Allwood EG, Anthony R, Voigt B, Menzel D, Hussey PJ. The actin-interacting protein AIP1 is essential for actin organization and plant development. Curr Biol 2004; 14:145 - 149
  • Yun BW, Atkinson HA, Gaborit C, Greenland A, Read ND, Pallas JA, et al. Loss of actin cytoskeletal function and EDS1 activity, in combination, severely compromises non-host resistance in Arabidopsis against wheat powdery mildew. Plant J 2003; 34:768 - 777
  • Ramachandran S, Christensen HE, Ishimaru Y, Dong CH, Chao-Ming W, Cleary AL, et al. Profilin plays a role in cell elongation, cell shape maintenance, and flowering in Arabidopsis. Plant Physiol 2000; 124:1637 - 1647
  • Kandasamy MK, Burgos-Rivera B, McKinney EC, Ruzicka DR, Meagher RB. Class-specific interaction of profilin and ADF isovariants with actin in the regulation of plant development. Plant Cell 2007; 19:3111 - 3126
  • Meagher RB, McKinney EC, Vitale AV. The evolution of new structures: clues from plant cytoskeletal genes. Trends Genet 1999; 15:278 - 284
  • Kobayashi I, Hakuno H. Actin-related defense mechanism to reject penetration attempt by a non-pathogen is maintained in tobacco BY-2 cells. Planta 2003; 217:340 - 345

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