박사

Heterophylly determination by phytohormones and leaf polarity genes in Ranunculus trichophyllus, an amphibious plant : 양서식물 Ranunculus trichophyllus에서 식물 호르몬과 잎 축 형성 유전자에 의한 잎 이형성 결정

김주현 2015년
논문상세정보
' Heterophylly determination by phytohormones and leaf polarity genes in Ranunculus trichophyllus, an amphibious plant : 양서식물 Ranunculus trichophyllus에서 식물 호르몬과 잎 축 형성 유전자에 의한 잎 이형성 결정' 의 주제별 논문영향력
논문영향력 선정 방법
논문영향력 요약
주제
  • aba
  • amphibious plant
  • ethylene
  • heterophylly
  • leaf polarity
동일주제 총논문수 논문피인용 총횟수 주제별 논문영향력의 평균
81 0

0.0%

' Heterophylly determination by phytohormones and leaf polarity genes in Ranunculus trichophyllus, an amphibious plant : 양서식물 Ranunculus trichophyllus에서 식물 호르몬과 잎 축 형성 유전자에 의한 잎 이형성 결정' 의 참고문헌

  • Zhang, G.H., Xu, Q., Zhu, X.D., Qian, Q., and Xue, H.W. (2009). SHALLOT-LIKE1 is aKANADI transcription factor that modulates rice leaf rolling by regulating leafabaxial cell development. Plant Cell 21, 719-735.
  • Zeiger, E., Talbott, L.D., Frechilla, S., Srivastava, A., and Zhu, J. (2002). The guard cellchloroplast: a perspective for the twenty?first century. New Phytologist 153, 415-424.
  • Zeevaart, J., and Creelman, R. (1988). Metabolism and physiology of abscisic acid.Annual Review of Plant Physiology and Plant Molecular Biology 39, 439-473.
  • Yuong, J.P., and Horton, R.F. (1985). Heterophylly in Ranunculus flabellaris Raf.: theeffect of abscisic acid. Annals of Botany 55, 899-902.
  • Young, J.P., Dengler, N.G., and Horton, R.F. (1987). Heterophylly in Ranunculusflabellaris: the effect of abscisic acid on leaf anatomy. Annals of Botany 60,117-125.
  • Yamaguchi-Shinozaki, K., and Shinozaki, K. (1993). The plant hormone abscisic acidmediates the drought-induced expression but not the seed-specific expressionof rd22, a gene responsive to dehydration stress in Arabidopsis thaliana.Molecular and General Genetics 238, 17-25.
  • Yamaguchi, T., Nukazuka, A., and Tsukaya, H. (2012). Leaf adaxial?abaxial polarityspecification and lamina outgrowth: evolution and development. Plant and CellPhysiology 53, 1180-1194.
  • Xu, L., Xu, Y., Dong, A., Sun, Y., Pi, L., Xu, Y., and Huang, H. (2003). Novel as1 andas2 defects in leaf adaxial-abaxial polarity reveal the requirement forASYMMETRIC LEAVES1 and 2 and ERECTA functions in specifying leafadaxial identity. Development 130, 4097-4107.
  • Winn, A.A. (1999). The functional significance and fitness consequences ofheterophylly. International Journal of Plant Sciences 160, S113-S121.
  • Williams, L., Grigg, S.P., Xie, M., Christensen, S., and Fletcher, J.C. (2005). Regulation106of Arabidopsis shoot apical meristem and lateral organ formation by microRNAmiR166g and its AtHD-ZIP target genes. Development 132, 3657-3668.
  • Wells, C.L., and Pigliucci, M. (2000). Adaptive phenotypic plasticity: the case ofheterophylly in aquatic plants. Perspectives in Plant Ecology, Evolution andSystematics 3, 1-18.
  • Walters, J., and Osborne, D.J. (1979). Ethylene and auxin-induced cell growth inrelation to auxin transport and metabolism and ethylene production in the semiaquaticplant, Regnellidium diphyllum. Planta 146, 309-317.
  • Waites, R., Selvadurai, H., Oliver, I.R., and Hudson, A. (1998). The PHANTASTICAgene encodes a MYB transcription factor involved in growth and dorsoventralityof lateral organs in Antirrhinum. Cell 93, 779-789.
  • Vriezen, W.H., Hulzink, R., Mariani, C., and Voesenek, L.A. (1999). 1-aminocyclopropane-1-carboxylate oxidase activity limits ethylene biosynthesisin Rumex palustris during submergence. Plant Physiology 121, 189-196.
  • Voesenek, L., Colmer, T., Pierik, R., Millenaar, F., and Peeters, A. (2006). How plantscope with complete submergence. New Phytologist 170, 213-226.
  • Vartapetian, B.B., and Jackson, M.B. (1997). Plant adaptations to anaerobic stress.Annals of Botany 79, 3-20.
  • Valdivia, E.R., Herrera, M.T., Gianzo, C., Fidalgo, J., Revilla, G., Zarra, I., andSampedro, J. (2013). Regulation of secondary wall synthesis and cell death byNAC transcription factors in the monocot Brachypodium distachyon. Journal ofExperimental Botany 64, 1333-1343.
  • Tsukaya, H. (2006). Mechanism of leaf-shape determination. Annual Review of Plant105Biology 57, 477-496.
  • Townsley, B.T., and Sinha, N.R. (2012). A new development: evolving concepts in leafontogeny. Annual Review of Plant Biology 63, 535-562.
  • Tomescu, A.M.F. (2009). Megaphylls, microphylls and the evolution of leafdevelopment. Trends in Plant Science 14, 5-12.
  • Timmermans, M.C., Hudson, A., Becraft, P.W., and Nelson, T. (1999). ROUGHSHEATH2: a Myb protein that represses knox homeobox genes in maize lateralorgan primordia. Science 284, 151-153.
  • Tanaka, Y., Nose, T., Jikumaru, Y., and Kamiya, Y. (2013). ABA inhibits entry intostomatal?lineage development in Arabidopsis leaves. The Plant Journal 74,448-457.
  • Sun, G., Ji, Q., Dilcher, D.L., Zheng, S., Nixon, K.C., and Wang, X. (2002).Archaefructaceae, a new basal angiosperm family. Science 296, 899-904.
  • Summers, J.E., Ratcliffe, R.G., and Jackson, M.B. (2000). Anoxia tolerance in theaquatic monocot Potamogeton pectinatus: absence of oxygen stimulateselongation in association with an unusually large Pasteur effect. Journal ofExperimental Botany 51, 1413-1422.
  • Steemans, P., Le Herisse, A., Melvin, J., Miller, M.A., Paris, F., Verniers, J., andWellman, C.H. (2009). Origin and radiation of the earliest vascular land plants.Science 324, 353-353.
  • Sperry, J.S. (2003). Evolution of water transport and xylem structure. InternationalJournal of Plant Sciences 164, S115-S127.
  • Seyedmonir, S., Plischke, J., Vannice, M., and Young, H. (1990). Ethylene oxidationover small silver crystallites. Journal of Catalysis 123, 534-549.
  • Schulze, E., Robichaux, R., Grace, J., Rundel, P., and Ehleringer, J. (1987). Plantwater balance. BioScience 37, 30-37.
  • Schneider, E.L., and Jeter, J.M. (1982). Morphological studies of the Nymphaeaceae.XII. The floral biology of Cabomba caroliniana. American Journal of Botany,1410-1419.
  • Sanders, H., Rothwell, G.W., and Wyatt, S. (2007). Paleontological context for thedevelopmental mechanisms of evolution. International Journal of PlantSciences 168, 719-728.
  • Saibo, N.J., Vriezen, W.H., Beemster, G.T., and Van Der Straeten, D. (2003). Growthand stomata development of Arabidopsis hypocotyls are controlled bygibberellins and modulated by ethylene and auxins. The Plant Journal 33, 989-1000.
  • Ronzhina, D., and P'yankov, V. (2001). Structure of the photosynthetic apparatus inleaves of freshwater hydrophytes: 2. Quantitative characterization of leafmesophyll and the functional activity of leaves with different degrees ofsubmersion. Russian Journal of Plant Physiology 48, 723-732.
  • Rodriguez, R.E., Debernardi, J.M., and Palatnik, J.F. (2014). Morphogenesis of simpleleaves: regulation of leaf size and shape. Wiley interdisciplinary reviews:Developmental Biology 3, 41-57.
  • Ricard, B., Couee, I., Raymond, P., Saglio, P.H., Saint-Ges, V., and Pradet, A. (1994).Plant metabolism under hypoxia and anoxia. Plant Physiology and Biochemistry10332, 1-10.
  • Reinhart, B.J., Liu, T., Newell, N.R., Magnani, E., Huang, T., Kerstetter, R., Michaels,S., and Barton, M.K. (2013). Establishing a framework for the ad/abaxialregulatory network of Arabidopsis: Ascertaining targets of Class IIIHOMEODOMAIN LEUCINE ZIPPER and KANADI regulation. The Plant Cell 25,3228-3249.
  • Razem, F.A., Baron, K., and Hill, R.D. (2006). Turning on gibberellin and abscisic acidsignaling. Current Opinion in Plant Biology 9, 454-459.
  • Raven, J.A. (2002). Selection pressures on stomatal evolution. New Phytologist 153,371-386.
  • Raven, J., Osborne, B., and Johnston, A. (1985). Uptake of CO2 by aquatic vegetation.Plant, Cell & Environment 8, 417-425.
  • Rascio, N., Cuccato, F., Dalla Vecchia, F., La Rocca, N., and Larcher, W. (1999).Structural and functional features of the leaves of Ranunculus trichophyllusChaix., a freshwater submerged macrophophyte. Plant, Cell & Environment 22,205-212.
  • Prins, H., and Elzenga, J. (1989). Bicarbonate utilization: function and mechanism.Aquatic Botany 34, 59-83.
  • Prigge, M.J., and Clark, S.E. (2006). Evolution of the class III HD-Zip gene family inland plants. Evolution & Development 8, 350-361.
  • Pimrote, K., Tian, Y., and Lu, X. (2012). Transcriptional regulatory network controllingsecondary cell wall biosynthesis and biomass production in vascular plants.African Journal of Biotechnology 11, 13928-13937.
  • Pillitteri, L.J., Sloan, D.B., Bogenschutz, N.L., and Torii, K.U. (2007). Termination ofasymmetric cell division and differentiation of stomata. Nature 445, 501-505.
  • Pekker, I., Alvarez, J.P., and Eshed, Y. (2005). Auxin response factors mediateArabidopsis organ asymmetry via modulation of KANADI activity. The Plant Cell17, 2899-2910.
  • Park, W.J., Hertel, R., and Kang, B.G. (2011). Enhancement of auxin sensitivity inRanunculus sceleratus by ethylene: A mechanism to escape from hypoxiaunder temporary submergence. Environmental and Experimental Botany 72,266-271.
  • Ohashi-Ito, K., and Bergmann, D.C. (2006). Arabidopsis FAMA controls the finalproliferation/differentiation switch during stomatal development. The Plant Cell18, 2493-2505.
  • Nogueira, F.T., Madi, S., Chitwood, D.H., Juarez, M.T., and Timmermans, M.C. (2007) Two small regulatory RNAs establish opposing fates of a developmental axis.Genes & Development 21, 750-755.
  • Nicotra, A.B., Leigh, A., Boyce, C.K., Jones, C.S., Niklas, K.J., Royer, D.L., andTsukaya, H. (2011). The evolution and functional significance of leaf shape inthe angiosperms. Functional Plant Biology 38, 535-552.
  • Nelson, T., and Dengler, N. (1997). Leaf vascular pattern formation. The Plant Cell 9,1121.
  • Mommer, L., and Visser, E.J. (2005). Underwater photosynthesis in flooded terrestrialplants: a matter of leaf plasticity. Annals of Botany 96, 581-589.
  • Mommer, L., Pons, T.L., Wolters-Arts, M., Venema, J.H., and Visser, E.J. (2005).Submergence-induced morphological, anatomical, and biochemical responsesin a terrestrial species affect gas diffusion resistance and photosyntheticperformance. Plant Physiology 139, 497-508.
  • Minorsky, P.V. (2003). Heterophylly in aquatic plants. Plant Physiology 133, 1671-1672.
  • Melotto, M., Underwood, W., and He, S.Y. (2008). Role of stomata in plant innateimmunity and foliar bacterial diseases. Annual review of Phytopathology 46,101.
  • McConnell, J.R., and Barton, M.K. (1998). Leaf polarity and meristem formation inArabidopsis. Development 125, 2935-2942.
  • McConnell, J.R., Emery, J., Eshed, Y., Bao, N., Bowman, J., and Barton, M.K. (2001).Role of PHABULOSA and PHAVOLUTA in determining radial patterning inshoots. Nature 411, 709-713.
  • McComb, A. (1965). The control of elongation in Callitriche shoots by environment andgibberellic acid. Annals of Botany 29, 445-458.
  • McCarthy, R.L., Zhong, R., and Ye, Z.-H. (2009). MYB83 is a direct target of SND1 andacts redundantly with MYB46 in the regulation of secondary cell wallbiosynthesis in Arabidopsis. Plant and Cell Physiology 50, 1950-1964.
  • Martin-Closas, C. (2003). The fossil record and evolution of freshwater plants: A review.Geologica Acta 1, 315.
  • Mandava, N.B. (1988). Plant growth-promoting brassinosteroids. Annual Review ofPlant Physiology and Plant Molecular Biology 39, 23-52.
  • MacAlister, C.A., Ohashi-Ito, K., and Bergmann, D.C. (2006). Transcription factorcontrol of asymmetric cell divisions that establish the stomatal lineage. Nature445, 537-540.
  • Lucas, W.J. (1983). Photosynthetic assimilation of exogenous HCO3 by aquatic plants.Annual Review of Plant Physiology 34, 71-104.
  • Livak, K.J., and Schmittgen, T.D. (2001). Analysis of relative gene expression datausing real-time quantitative PCR and the 2?ΔΔCT Method. Methods 25, 402-408.
  • Lin, B.L., Wang, H.J., Wang, J.S., Zaharia, L.I., and Abrams, S.R. (2005). Abscisic acidregulation of heterophylly in Marsilea quadrifolia L.: effects of R-(-) and S-(+)isomers. Journal of Experimental Botany 56, 2935-2948.
  • Li, Y., Liu, Z., Shi, P., and Zhang, J. (2010). The hearing gene Prestin unitesecholocating bats and whales. Current Biology 20, R55-R56.
  • Lara, M.V., Casati, P., and Andreo, C.S. (2002). CO2-concentrating mechanisms inEgeria densa, a submersed aquatic plant. Physiologia Plantarum 115, 487-495.
  • Lampard, G.R., MacAlister, C.A., and Bergmann, D.C. (2008). Arabidopsis stomatalinitiation is controlled by MAPK-mediated regulation of the bHLHSPEECHLESS. Science 322, 1113-1116.
  • Kuwabara, A., Tsukaya, H., and Nagata, T. (2001). Identification of factors that causeheterophylly in Ludwigia arcuata Walt.(Onagraceae). Plant Biology 3, 98-105.
  • Kuwabara, A., Ikegami, K., Koshiba, T., and Nagata, T. (2003). Effects of ethylene andabscisic acid upon heterophylly in Ludwigia arcuata (Onagraceae). Planta 217,880-887.
  • Kim, T.-W., Michniewicz, M., Bergmann, D.C., and Wang, Z.-Y. (2012). Brassinosteroidregulates stomatal development by GSK3-mediated inhibition of a MAPKpathway. Nature 482, 419-422.
  • Kidner, C.A., and Timmermans, M.C. (2010). Chapter Five-Signaling Sides: Adaxial?Abaxial Patterning in Leaves. Current Topics in Developmental Biology 91, 141-168.
  • Kidner, C.A., and Timmermans, M.C. (2007). Mixing and matching pathways in leafpolarity. Current Opinion in Plant Biology 10, 13-20.
  • Khan, M., Rozhon, W., Bigeard, J., Pflieger, D., Husar, S., Pitzschke, A., Teige, M.,Jonak, C., Hirt, H., and Poppenberger, B. (2013). Brassinosteroid-regulatedGSK3/Shaggy-like kinases phosphorylate mitogen-activated protein (MAP)kinase kinases, which control stomata development in Arabidopsis thaliana.Journal of Biological Chemistry 288, 7519-7527.
  • Kerstetter, R.A., Bollman, K., Taylor, R.A., Bomblies, K., and Poethig, R.S. (2001).KANADI regulates organ polarity in Arabidopsis. Nature 411, 706-709.
  • Kenrick, P., and Crane, P.R. (1997). The origin and early evolution of plants on land.Nature 389, 33-39.
  • Kennedy, R.A., Rumpho, M.E., and Fox, T.C. (1992). Anaerobic metabolism in plants.Plant Physiology 100, 1-6.
  • Karnovsky, M.J. (1965). A formaldehyde-glutaraldehyde fixative of high osmolarity foruse in electron microscopy. Journal of Cell Biology 27, 1A-149
  • Kane, M.E., and Albert, L.S. (1989). Abscisic acid induction of aerial leaf developmentin Myriophyllum and Proserpinaca species cultured in vitro. Jounal of AquaticPlant Manage 27, 102-111.
  • Kane, M.E., and Albert, L.S. (1987). Integrative regulation of leaf morphogenesis bygibberellic and abscisic acids in the aquatic angiosperm proserpinaca palustrisL. Aquatic Botany 28, 89-96.
  • Kanaoka, M.M., Pillitteri, L.J., Fujii, H., Yoshida, Y., Bogenschutz, N.L., Takabayashi, J.,Zhu, J.-K., and Torii, K.U. (2008). SCREAM/ICE1 and SCREAM2 specify threecell-state transitional steps leading to Arabidopsis stomatal differentiation. ThePlant Cell 20, 1775-1785.
  • Jung, J., Lee, S.C., and Choi, H.-K. (2008). Anatomical patterns of aerenchyma inaquatic and wetland plants. Journal of Plant Biology 51, 428-439.
  • Juarez, M.T., Kui, J.S., Thomas, J., Heller, B.A., and Timmermans, M.C.P. (2004).microRNA-mediated repression of rolled leaf1 specifies maize leaf polarity.Nature 428, 84-88.
  • Jones, H. (1955). Heterophylly in some species of Callitriche, with especial reference toCallitriche intermedia. Annals of Botany 19, 226-245.
  • Jackson, M.B. (1985). Ethylene and responses of plants to soil waterlogging andsubmergence. Annual Review of Plant Physiology 36, 145-174.
  • Jackson, M., and Colmer, T. (2005). Response and adaptation by plants to floodingstress. Annals of Botany 96, 501-505.
  • Jackson, M., and Armstrong, W. (1999). Formation of aerenchyma and the processesof plant ventilation in relation to soil flooding and submergence. Plant Biology 1,274-287.
  • Iwakawa, H., Ueno, Y., Semiarti, E., Onouchi, H., Kojima, S., Tsukaya, H., Hasebe, M.,Soma, T., Ikezaki, M., and Machida, C. (2002). The ASYMMETRIC LEAVES2gene of Arabidopsis thaliana, required for formation of a symmetric flat leaflamina, encodes a member of a novel family of proteins characterized bycysteine repeats and a leucine zipper. Plant and Cell Physiology 43, 467-478.
  • Iwakawa, H., Iwasaki, M., Kojima, S., Ueno, Y., Soma, T., Tanaka, H., Semiarti, E.,Machida, Y., and Machida, C. (2007). Expression of the ASYMMETRICLEAVES2 gene in the adaxial domain of Arabidopsis leaves represses cellproliferation in this domain and is critical for the development of properlyexpanded leaves. The Plant Journal 51, 173-184.
  • Itoh, J.-I., Hibara, K.-I., Sato, Y., and Nagato, Y. (2008). Developmental role and auxinresponsiveness of class III homeodomain leucine zipper gene family membersin rice. Plant Physiology 147, 1960-1975.
  • Ilegems, M., Douet, V., Meylan-Bettex, M., Uyttewaal, M., Brand, L., Bowman, J.L., and96Stieger, P.A. (2010). Interplay of auxin, KANADI and Class III HD-ZIPtranscription factors in vascular tissue formation. Development 137, 975-984.
  • Iida, S., Yamada, A., Amano, M., Ishii, J., Kadono, Y., and Kosuge, K. (2007). Inheritedmaternal effects on the drought tolerance of a natural hybrid aquatic plant,Potamogeton anguillanus. Journal of Plant Research 120, 473-481.
  • Husbands, A.Y., Chitwood, D.H., Plavskin, Y., and Timmermans, M.C. (2009). Signalsand prepatterns: new insights into organ polarity in plants. Genes &Development 23, 1986-1997.
  • Hunter, C., Willmann, M.R., Wu, G., Yoshikawa, M., de la Luz Gutierrez-Nava, M., andPoethig, S.R. (2006). Trans-acting siRNA-mediated repression of ETTIN andARF4 regulates heteroblasty in Arabidopsis. Development 133, 2973-2981.
  • Hsu, F.-C., Chou, M.-Y., Peng, H.-P., Chou, S.-J., and Shih, M.-C. (2011). Insights intohypoxic systemic responses based on analyses of transcriptional regulation inArabidopsis. PLoS One 6, e28888.
  • Horandl, E., and Emadzade, K. (2012). Evolutionary classification: A case study on thediverse plant genus Ranunculus L.(Ranunculaceae). Perspectives in PlantEcology, Evolution and Systematics 14, 310-324.
  • Hinz, M., Wilson, I.W., Yang, J., Buerstenbinder, K., Llewellyn, D., Dennis, E.S., Sauter,M., and Dolferus, R. (2010). Arabidopsis RAP2.2: an ethylene responsetranscription factor that is important for hypoxia survival. Plant Physiology 153,757-772.
  • Hetherington, A.M., and Woodward, F.I. (2003). The role of stomata in sensing anddriving environmental change. Nature 424, 901-908.
  • Groom, P.K., Lamont, B.B., and Markey, A.S. (1997). Influence of leaf type and plantage on leaf structure and sclerophylly in Hakea (Proteaceae). AustralianJournal of Botany 45, 827-838.
  • Groom, P., Lamont, B., and Kupsky, L. (1994). Contrasting morphology andecophysiology of cooccurring broad and terete leaves in Hakea trifurcata(Proteaceae). Australian Journal of Botany 42, 307-320.
  • Goliber, T., and Feldman, L. (1989). Osmotic stress, endogenous abscisic acid and thecontrol of leaf morphology in Hippuris vulgaris L. Plant, Cell & Environment 12,163-171.
  • Gleissberg, S., Groot, E.P., Schmalz, M., Eichert, M., Kolsch, A., and Hutter, S. (2005).Developmental events leading to peltate leaf structure in Tropaeolum majus(Tropaeolaceae) are associated with expression domain changes of a YABBYgene. Development Genes and Evolution 215, 313-319.
  • Givnish, T.J. (1987). Comparative studies of leaf form: assessing the relative roles ofselective pressures and phylogenetic constraints. New Phytologist 106, 131-160.
  • Germ, M., and Gaber??ik, A. (2003). Comparison of aerial and submerged leaves intwo amphibious species, Myosotis scorpioides and Ranunculus trichophyllus.Photosynthetica 41, 91-96.
  • Geisler, M., Yang, M., and Sack, F. (1998). Divergent regulation of stomatal initiationand patterning in organ and suborgan regions of the Arabidopsis mutants toomany mouths and four lips. Planta 205, 522-530.
  • Garcia, D., Collier, S.A., Byrne, M.E., and Martienssen, R.A. (2006). Specification ofLeaf Polarity in Arabidopsis via the trans-Acting siRNA Pathway. CurrentBiology 16, 933-938.
  • Funk, V., Kositsup, B., Zhao, C., and Beers, E.P. (2002). The Arabidopsis xylempeptidase XCP1 is a tracheary element vacuolar protein that may be a papainortholog. Plant Physiology 128, 84-94.
  • Fukushima, K., and Hasebe, M. (2014). Adaxial?abaxial polarity: The developmentalbasis of leaf shape diversity. Genesis 52, 1-18.
  • Frost?Christensen, H., and Floto, F. (2007). Resistance to CO2 diffusion in cuticularmembranes of amphibious plants and the implication for CO2 acquisition. Plant,Cell & Environment 30, 12-18.
  • Floyd, S.K., and Bowman, J.L. (2007). The ancestral developmental tool kit of landplants. International Journal of Plant Sciences 168, 1-35.
  • Floyd, S.K., Zalewski, C.S., and Bowman, J.L. (2006). Evolution of class IIIhomeodomain?leucine zipper genes in streptophytes. Genetics 173, 373-388.
  • Fahlgren, N., Montgomery, T.A., Howell, M.D., Allen, E., Dvorak, S.K., Alexander, A.L.,and Carrington, J.C. (2006). Regulation of AUXIN RESPONSE FACTOR3 byTAS3 ta-siRNA affects developmental timing and patterning in Arabidopsis.Current Biology 16, 939-944.
  • Evans, M.M. (2007). The indeterminate gametophyte1 gene of maize encodes a LOBdomain protein required for embryo sac and leaf development. The Plant Cell19, 46-62.
  • Evans, D.E. (2004). Aerenchyma formation. New Phytologist 161, 35-49.
  • Eshed, Y., Izhaki, A., Baum, S.F., Floyd, S.K., and Bowman, J.L. (2004). Asymmetricleaf development and blade expansion in Arabidopsis are mediated by KANADIand YABBY activities. Development 131, 2997-3006.
  • Emery, J.F., Floyd, S.K., Alvarez, J., Eshed, Y., Hawker, N.P., Izhaki, A., Baum, S.F.,and Bowman, J.L. (2003). Radial patterning of Arabidopsis shoots by class IIIHD-ZIP and KANADI genes. Current Biology 13, 1768-1774.
  • Driscoll, S., Prins, A., Olmos, E., Kunert, K., and Foyer, C. (2006). Specification ofadaxial and abaxial stomata, epidermal structure and photosynthesis to CO2enrichment in maize leaves. Journal of Experimental Botany 57, 381-390.
  • Doyle, J.A. (2012). Molecular and fossil evidence on the origin of angiosperms. AnnualReview of Earth and Planetary Sciences 40, 301-326.
  • Deschamp, P.A., and Cooke, T.J. (1985). Leaf dimorphism in the aquatic angiospermCallitriche heterophylla. American Journal of Botany 72, 1377-1387.
  • Deschamp, P.A., and Cooke, T.J. (1984). Causal mechanisms of leaf dimorphism inthe aquatic angiosperm Callitriche heterophylla. American Journal of Botany 71,319-329.
  • Deschamp, P.A., and Cooke, T.J. (1983). Leaf dimorphism in aquatic angiosperms:significance of turgor pressure and cell expansion. Science 219, 505-507.
  • Davidson, S.E., Reid, J.B., and Helliwell, C.A. (2006). Cytochromes P450 in gibberellinbiosynthesis. Phytochemistry Reviews 5, 405-419.
  • Cook, C.D.K. (1999). The number and kinds of embryo-bearing plants which havebecome aquatic: a survey. Perspectives in plant ecology, Evolution and92Systematics 2/1, 79?102.
  • Colmer, T.D., and Pedersen, O. (2008). Underwater photosynthesis and respiration inleaves of submerged wetland plants: gas films improve CO2 and O2 exchange.New Phytologist 177, 918-926.
  • Colmer, T.D., Winkel, A., and Pedersen, O. (2011). A perspective on underwaterphotosynthesis in submerged terrestrial wetland plants. AoB Plants, plr030.
  • Colmer, T., and Voesenek, L. (2009). Flooding tolerance: suites of plant traits invariable environments. Functional Plant Biology 36, 665-681.
  • Choudhary, S.P., Yu, J.-Q., Yamaguchi-Shinozaki, K., Shinozaki, K., and Tran, L.-S.P.(2012). Benefits of brassinosteroid crosstalk. Trends in Plant Science 17, 594-605.
  • Chen, X., Goodwin, S.M., Boroff, V.L., Liu, X., and Jenks, M.A. (2003). Cloning andcharacterization of the WAX2 gene of Arabidopsis involved in cuticle membraneand wax production. The Plant Cell 15, 1170-1185.
  • Carlsbecker, A., and Helariutta, Y. (2005). Phloem and xylem specification: pieces ofthe puzzle emerge. Current Opinion in Plant Biology 8, 512-517.
  • Candela, H., Johnston, R., Gerhold, A., Foster, T., and Hake, S. (2008). The milkweedpod1 gene encodes a KANADI protein that is required for abaxial/adaxialpatterning in maize leaves. The Plant Cell 20, 2073-2087.
  • Byrne, M.E., Barley, R., Curtis, M., Arroyo, J.M., Dunham, M., Hudson, A., and91Martienssen, R.A. (2000). Asymmetric leaves1 mediates leaf patterning andstem cell function in Arabidopsis. Nature 408, 967-971.
  • Bringmann, M., and Bergmann, D.C. (2013). Stomatal patterning. eLS.
  • Bowman, J.L., Eshed, Y., and Baum, S.F. (2002). Establishment of polarity inangiosperm lateral organs. Trends in Genetics 18, 134-141.
  • Bowman, J.L. (2000). Axial patterning in leaves and other lateral organs. CurrentOpinion in Genetics & Eevelopment 10, 399-404.
  • Bornette, G., and Puijalon, S. (2011). Response of aquatic plants to abiotic factors: areview. Aquatic Sciences 73, 1-14.
  • Bollhoner, B., Prestele, J., and Tuominen, H. (2012). Xylem cell death: emergingunderstanding of regulation and function. Journal of Experimental Botany, 63,1081-1094.
  • Blom, C., and Voesenek, L. (1996). Flooding: the survival strategies of plants. Trendsin Ecology & Evolution 11, 290-295.
  • Bleecker, A.B., and Kende, H. (2000). Ethylene: a gaseous signal molecule in plants.Annual Review of Cell and Developmental Biology 16, 1-18.
  • Bergmann, D.C., Lukowitz, W., and Somerville, C.R. (2004). Stomatal developmentand pattern controlled by a MAPKK kinase. Science 304, 1494-1497.
  • Beerling, D.J. (2005). Leaf evolution: gases, genes and geochemistry. Annals ofBotany 96, 345-352.
  • Barrero, J., Rodriguez, P.L., Quesada, V., Piqueras, P., Ponce, M.R., and Micol, J.L.(2006). Both abscisic acid (ABA)-dependent and ABA-independent pathwaysgovern the induction of NCED3, AAO3 and ABA1 in response to salt stress.Plant, Cell & Environment 29, 2000-2008.
  • Bao, N., Lye, K.-W., and Barton, M.K. (2004). MicroRNA binding sites in Arabidopsisclass III HD-ZIP mRNAs are required for methylation of the templatechromosome. Developmental Cell 7, 653-662.
  • Bal, K.D., Bouma, T.J., Buis, K., Struyf, E., Jonas, S., Backx, H., and Meire, P. (2011).Trade-off between drag reduction and light interception of macrophytes:comparing five aquatic plants with contrasting morphology. Functional Ecology25, 1197-1205.
  • Bailey-Serres, J., and Voesenek, L. (2008). Flooding stress: acclimations and geneticdiversity. Annual Review of Plant Biology 59, 313-339.
  • Anderson, L.W. (1982). Effects of abscisic acid on growth and leaf development inAmerican pondweed (Potamogeton nodosus poir.). Aquatic Botany 13, 29-44.
  • Anderson, L.W. (1978). Abscisic acid induces formation of floating leaves in theheterophyllous aquatic angiosperm Potamogeton nodosus. Science 201, 1135-1138.
  • Allsopp, A. (1962). The effects of gibberellic acid on morphogenesis in Marsileadrummondii. Phytomorphology 12, 1-10.
  • Allen, E., Xie, Z., Gustafson, A.M., and Carrington, J.C. (2005). MicroRNA-directedphasing during trans-acting siRNA biogenesis in plants. Cell 121, 207-221.
  • AKelley, D.R., Arreola, A., Gallagher, T.L., and Gasser, C.S. (2012). ETTIN (ARF3)physically interacts with KANADI proteins to form a functional complex essentialfor integument development and polarity determination in Arabidopsis.Development 139, 1105-1109.