12 Ethylene and Senescence Processes
Laura E. Graham
Department of Food and Nutritional Sciences, University of Reading, Whiteknights Campus, PO Box 226, Reading, Berkshire, RG6 6AP UK
Search for more papers by this authorJos H.M. Schippers
Institute of Biochemistry and Biology, University of Potsdam, Karl-Liebknecht-Straße 24-25, Haus 20, Potsdam-Golm, 14476 Germany
Search for more papers by this authorPaul P. Dijkwel
Institute of Molecular Biosciences, Massey University, Riddet Road, Private Bag 11-222, Palmerston North, 4442 New Zealand
Search for more papers by this authorCarol Wagstaff
Department of Food and Nutritional Sciences, University of Reading, Whiteknights Campus, PO Box 226, Reading, Berkshire, RG6 6AP UK
Search for more papers by this authorLaura E. Graham
Department of Food and Nutritional Sciences, University of Reading, Whiteknights Campus, PO Box 226, Reading, Berkshire, RG6 6AP UK
Search for more papers by this authorJos H.M. Schippers
Institute of Biochemistry and Biology, University of Potsdam, Karl-Liebknecht-Straße 24-25, Haus 20, Potsdam-Golm, 14476 Germany
Search for more papers by this authorPaul P. Dijkwel
Institute of Molecular Biosciences, Massey University, Riddet Road, Private Bag 11-222, Palmerston North, 4442 New Zealand
Search for more papers by this authorCarol Wagstaff
Department of Food and Nutritional Sciences, University of Reading, Whiteknights Campus, PO Box 226, Reading, Berkshire, RG6 6AP UK
Search for more papers by this authorAbstract
Senescence is a vitally important sequence of events in the latter phase of the life cycle of a plant that determines yield and reproductive success. In many species, and in different plant organs, ethylene is a key regulator of senescence and an increased understanding of the way the hormone functions will enable the timing and location of senescence to be manipulated in order to improve yield, quality and longevity. This chapter examines the physiological and molecular regulation of senescence in different plant organs and introduces the concept of the ‘senescence window’ in which plant organs are receptive to ethylene-mediated senescence cues. Several studies have attempted to elucidate global patterns of the regulation of senescence, which have enabled the function of ethylene to be placed in the context of the involvement of other, often antagonistic, hormones in the execution of senescence and downstream processes. Finally, we examine the consequences of senescence for post-harvest biology, an area where the control of ethylene action has been actively sought in order to control precisely the timing of senescence and ripening processes so that crop quality can be enhanced and maintained.
References
- Abe, H., Urao, T., Ito, T., et al. (2003) Arabidopsis AtMYC2 (bHLH) and AtMYB2 (MYB) function as transcriptional activators in abscisic acid signaling. Plant Cell 15, 63–78.
- Abeles, F.B., Morgan, P.W. and Saltveit, M.E. (1992) Ethylene in Plant Biology, 2nd edn. Academic Press, New York.
- Ahvenainen, R. (1996) New approaches in improving the shelf-life of minimally processed fruit and vegetables. Trends in Food Science and Technology 7, 179–187.
- Alba, R., Payton, P., Fei, Z., et al. (2005) Transcriptome and selected metabolite analyses reveal multiple points of ethylene control during tomato fruit development. Plant Cell 17, 2954–2965.
- Andersson, A., Keskitalo, J., Sjodin, A., et al. (2004) A transcriptional timetable of autumn senescence. Genome Biology 5, R24.
- Archetti, M., Döring, T.F., Hagen, S.B., et al. (2009) Unravelling the evolution of autumn colours -- an interdisciplinary approach. Trends in Ecology and Evolution 24, 166–173.
- Aukerman, M.J. and Sakai, H. (2003) Regulation of flowering time and floral organ identity by a MicroRNA and its APETALA2-like target genes. Plant Cell 15, 2730–2741.
- Ayub, R., Guis, M., BenAmor, M., et al. (1996) Expression of ACC oxidase antisense gene inhibits ripening of cantaloupe melon fruits. Nature Biotechnology 14, 862–866.
- Balbi, V. and Devoto, A. (2008) Jasmonate signalling network in Arabidopsis thaliana: crucial regulatory nodes and new physiological scenarios. New Phytologist 177, 301–318.
- Beemster, G.T., De Veylder, L., Vercruysse, S., et al. (2005) Genome-wide analysis of gene expression profiles associated with cell cycle transitions in growing organs of Arabidopsis. Plant Physiology 138, 734–743.
- Bennett, E.J., Roberts, J.A. and Wagstaff, C. (2011) The role of the pod in seed development: strategies for manipulating yield. New Phytologist 190(4), 838–853.
- Binder, B.M., Walker, J.M., Gagne, J.M., et al. (2007) The Arabidopsis EIN3 binding F-Box proteins EBF1 and EBF2 have distinct but overlapping roles in ethylene signaling. Plant Cell 19, 509–523.
- Blankenship, S.M. (2003) Discovery and commercialization of 1-methylcyclopropene as an ethylene inhibitor. Acta Hort (ISHS) 628, 189–191.
- Bleecker, A.B., Estelle, M.A., Somerville, C., et al. (1988) Insensitivity to ethylene conferred by a dominant mutation in Arabidopsis thaliana . Science 241, 1086–1089.
- Bleecker, A.B., Esch, J.J., Hall, A.E., et al. (1998) The ethylene-receptor family from Arabidopsis: structure and function. Philosophical Transactions of the Royal Society of London. Series B, Biological Sciences 353, 1405–1412.
- Boller, T. and Kende, H. (1980) Regulation of wound ethylene synthesis in plants. Nature 86, 259–260.
- Borevitz, J.O., Xia, Y., Blount, J., et al. (2000) Activation tagging identifies a conserved MYB regulator of phenylpropanoid biosynthesis. Plant Cell 12, 2383–2394.
- Bovy, A.G., Angenent, G.C., Dons, H.J.M., et al. (1999) Heterologous expression of the Arabidopsis etr1–1 allele inhibits the senescence of carnation flowers. Molecular Breeding 5, 301–308.
- Breeze, E., Wagstaff, C., Harrison, E., et al. (2004) Gene expression patterns to define stages of post-harvest senescence in Alstroemeria petals. Plant Biotechnology Journal 2, 155–168.
- Bu, Q., Jiang, H., Li, C.B., et al. (2008) Role of the Arabidopsis thaliana NAC transcription factors ANAC019 and ANAC055 in regulating jasmonic acid-signaled defense responses. Cell Research 18, 756–767.
- Buchanan-Wollaston, V., Earl, S., Harrison, E., et al. (2003) The molecular analysis of leaf senescence – a genomics approach. Plant Biotechnology Journal 1, 3–22.
- Buchanan-Wollaston, V., Page, T., Harrison, E., et al. (2005) Comparative transcriptome analysis reveals significant differences in gene expression and signalling pathways between developmental and dark/starvation-induced senescence in Arabidopsis. The Plant Journal 42, 567–585.
- Bui, A.Q. and O'Neill, S.D. (1998) Three 1-aminocyclopropane-1-carboxylate synthase genes regulated by primary and secondary pollination signals in orchid flowers. Plant Physiology 116, 419–428.
- Büttner, M. and Singh, K.B. (1997) Arabidopsis thaliana ethylene-responsive element binding protein (AtEBP), an ethylene-inducible, GCC box DNA-binding protein interacts with an ocs element binding protein. Proceedings of the National Academy of Sciences of the United States of America 94, 5961–5966.
- Chang, C., Kwok, S.F., Bleecker, A.B., et al. (1993) Arabidopsis ethylene-response gene ETR1: similarity of product to two-component regulators. Science 262, 539–544.
- Chang, H., Jones, M.L., Banowetz, G.M., et al. (2003) Overproduction of cytokinins in petunia flowers transformed with pSAG12-IPT delays corolla senescence and decreases sensitivity to ethylene. Plant Physiology 132, 2174–2183.
- Chao, Q., Rothenberg, M., Solano, R., et al. (1997) Activation of the ethylene gas response pathway in Arabidopsis by the nuclear protein ETHYLENE-INSENSITIVE3 and related proteins. Cell 89, 1133–1144.
- Choi, S.T. and Huber, D.J. (2008) Influence of aqueous 1-methylcyclopropene concentration, immersion duration, and solution longevity on the postharvest ripening of breaker-turning tomato (Solanum lycopersicum L.) fruit. Postharvest Biology and Technology 49, 147–154.
- Christianson, J.A., Wilson, I.W., Llewellyn, D.J., et al. (2009) The low-oxygen-induced NAC domain transcription factor ANAC102 affects viability of Arabidopsis seeds following low-oxygen treatment. Plant Physiology 149, 1724–1738.
- Ciftci-Yilmaz, S. and Mittler, R. (2008) The zinc finger network of plants. Cellular and Molecular Life Sciences 65, 1150–1160.
- Clark, D.G., Richards, C., Hilioti, Z., et al. (1997) Effect of pollination on accumulation of ACC synthase and ACC oxidase transcripts, ethylene production and flower petal abscission in geranium (Pelargonium x hortorum L.H. Bailey). Plant Molecular Biology 34, 855–865.
- Colangelo, E.P. and Guerinot, M.L. (2004) The essential basic helix-loop-helix protein FIT1 is required for the iron deficiency response. Plant Cell 16, 3400–3412.
- Crouch, I.J. (2010) Factors influencing the efficacy of commercially applied 1-methylcyclopropene (1-MCP). Acta Horticulturae 877, 297–303.
- Czechowski, T., Bari, R.P., Stitt, M., et al. (2004) Real-time RT-PCR profiling of over 1400 Arabidopsis transcription factors: unprecedented sensitivity reveals novel root- and shoot-specific genes. Plant Journal 38, 366–379.
- Datta, S., Hettiarachchi, G.H., Deng, X.W., et al. (2006) Arabidopsis CONSTANS-LIKE3 is a positive regulator of red light signaling and root growth. Plant Cell 18, 70–84.
- Dauny, P.T., Joyce, D.C. and Gamby, C. (2003) 1-Methylcyclopropene influx and efflux in ‘Cox’ apple and ‘Hass’ fruit. Postharvest Biology and Technology 29, 101–105.
- Dean, G., Casson, S. and Lindsey, K. (2006) KNAT6 gene of Arabidopsis is expressed in roots and is required for correct lateral root formation. Plant Molecular Biology 54, 71–84.
- DeEll, J.R., Murr, D.P., Porteous, M.D., et al. (2002) Influence of temperature and duration of 1-methylcyclopropene (1-MCP) treatment on apple quality. Postharvest Biology and Technology 24, 349–353.
- de Folter, S., Busscher, J., Colombo, L., et al. (2004) Transcript profiling of transcription factor genes during silique development in Arabidopsis. Plant Molecular Biology 56, 351–366.
- Deikman, J. (1997) Molecular mechanisms of ethylene regulation of gene transcription. Physiologia Plantarum 100, 561–566.
- Devaiah, B.N., Karthikeyan, A.S. and Raghothama, K.G. (2007a) WRKY75 transcription factor is a modulator of phosphate acquisition and root development in Arabidopsis. Plant Physiology 143, 1789–1801.
- Devaiah, B.N., Nagarajan, V.K. and Raghothama, K.G. (2007b) Phosphate homeostasis and root development in Arabidopsis are synchronized by the zinc finger transcription factor ZAT6. Plant Physiology 145, 147–159.
- Després, C., Chubak, C., Rochon, A., et al. (2003) The Arabidopsis NPR1 disease resistance protein is a novel cofactor that confers redox regulation of DNA binding activity to the basic domain/leucine zipper transcription factor TGA1. Plant Cell 15, 2181–2191.
- Diaz, J., ten Have, A. and van Kan, J.A.L. (2002) The role of ethylene and wound signalling in resistance of tomato to Botrytis cinerea . Plant Physiology 129, 1341–1351.
- Ding, Z., Li, S., An, X., et al. (2009) Transgenic expression of MYB15 confers enhanced sensitivity to abscisic acid and improved drought tolerance in Arabidopsis thaliana . Journal of Genetics and Genomics 36, 17–29.
- Dong, C.J. and Liu, J.Y. (2010) The Arabidopsis EAR-motif-containing protein RAP2.1 functions as an active transcriptional repressor to keep stress responses under tight control. BMC Plant Biology 16, 10–47.
- Doubt, S.L. (1917) The response of plants to illuminating gas. Botanical Gazette 63, 209–224.
- Eaks, I.L. (1970) Respiratory response, ethylene production and response to ethylene of citrus fruit during ontogeny. Plant Physiology 45, 334–338.
- Ellis, C.M., Nagpal, P., Young, J.C., et al. (2005) AUXIN RESPONSE FACTOR1 and AUXIN RESPONSE FACTOR2 regulate senescence and floral organ abscission in Arabidopsis thaliana. Development 132, 4563–4574.
- Eulgem, T., Rushton, P.J., Robatzek, S., et al. (2000) The WRKY superfamily of plant transcription factors. Trends in Plant Science 5, 199–206.
- Ferrante, A., Vernieri, P., Tognoni, F., et al. (2006) Changes in abscisic acid and flower pigments during floral senescence of petunia. Biologia Plantarum 50, 581–585.
- Fornara, F., Panigrahi, K.C., Gissot, L., et al. (2009) Arabidopsis DOF transcription factors act redundantly to reduce CONSTANS expression and are essential for a photoperiodic flowering response. Developmental Cell 17, 75–86.
- Fujimoto, S.Y., Ohta, M., Usui, A., et al. (2000) Arabidopsis ethylene-responsive element binding factors act as transcriptional activators or repressors of GCC box-mediated gene expression. Plant Cell 12, 393–404.
- Fujita, M., Fujita, Y., Maruyama, K., et al. (2004) A dehydration-induced NAC protein, RD26, is involved in a novel ABA-dependent stress-signaling pathway. Plant Journal 39, 863–876.
- Gan, S. and Amasino, R.M. (1995) Inhibition of leaf senescence by autoregulated production of cytokinin. Science 270, 1986–1988.
- Gao, Q.M., Venugopal, S., Navarre, D., et al. (2011) Low oleic acid-derived repression of jasmonic acid-inducible defense responses requires the WRKY50 and WRKY51 proteins. Plant Physiology 155, 464–476.
- Girardin, J.P.L. (1864) Einfluss des Leuchtgases auf die promenaden-und strassen-Baume. Jahresber Agrikultur-Chemie 7, 199–200.
- Given, N.K., Venis, M.A. and Grierson, D. (1988) Hormonal regulation of ripening in the strawberry, a non-climacteric fruit. Planta 174, 402–406.
- Goldschmidt, E.E. (1997) Ripening of Citrus and other non-climacteric fruits: a role for ethylene. Acta Horticulturae 463, 335–340.
- Grbić, V. and Bleecker, A.B. (1995) Ethylene regulates the timing of leaf senescence in Arabidopsis. Plant Journal 8, 595–602.
- Gubrium, E.K., Clevenger, D.J., Clark, D.G., et al. (2000) Reproduction and horticultural performance of transgenic ethylene-insensitive petunias. Journal of the American Society for Horticultural Science 125, 277–281.
- Guiboileau, A., Sormani, R., Meyer, C., et al. (2010) Senescence and death of plant organs: nutrient recycling and developmental regulation. C R Biology 333, 382–391.
- Guo, H. and Ecker, J.R. (2003) Plant responses to ethylene gas are mediated by SCF(EBF1/EBF2)-dependent proteolysis of EIN3 transcription factor. Cell 115, 667–677.
- Guo, H. and Ecker, J.R. (2004) The ethylene signaling pathway: new insights. Current Opinions in Plant Biology 7, 40–49.
- Guo, Y., Cai, Z. and Gan, S. (2004) Transcriptome of Arabidopsis leaf senescence. Plant Cell and Environment 27, 521–549.
- Guo, Y. and Gan, S. (2006) AtNAP, a NAC family transcription factor, has an important role in leaf senescence. Plant Journal 46, 601–612.
- Hake, S., Smith, H.M., Holtan, H., et al. (2004) The role of knox genes in plant development. Annual Review of Cell and Developmental Biology 20, 125–151.
- Hinz, M., Wilson, I.W., Yang, J., et al. (2010) Arabidopsis RAP2.2: an ethylene response transcription factor that is important for hypoxia survival. Plant Physiology 153, 757–772.
- Hjellström, M., Olsson, A., Engström, P., et al. (2003). Constitutive expression of the water deficit-inducible homeobox gene ATHB7 in transgenic Arabidopsis causes a suppression of stem elongation growth. Plant Cell and Environment 26, 1127–1136.
- Hoekstra, F.A. and Weges, R. (1986) Lack of control by early pistillate ethylene of the accelerated wilting of Petunia hybrida flowers. Plant Physiology 80, 403–408.
- Holden, M.J., Marty, J.A. and Singh-Cundy, A. (2003) Pollination-induced ethylene promotes the early phase of pollen tube growth in Petunia inflata . Journal of Plant Physiology 160, 261–269.
- Horiguchi, G., Fujikura, U., Ferjani, A., et al. (2006) Large-scale histological analysis of leaf mutants using two simple leaf observation methods: identification of novel genetic pathways governing the size and shape of leaves. Plant Journal 48, 638–644.
- Hornitschek, P., Lorrain, S., Zoete, V., et al. (2009) Inhibition of the shade avoidance response by formation of non-DNA binding bHLH heterodimers. EMBO Journal 28, 3893–3902.
- Hua, J., Chang, C., Sun, Q., et al. (1995) Ethylene insensitivity conferred by Arabidopsis ERS gene. Science 269, 1712–1714.
- Hua, J. and Meyerowitz, E.M. (1998) Ethylene responses are negatively regulated by a receptor gene family in Arabidopsis thaliana . Cell 94, 261–271.
- Hua, J., Sakai, H., Nourizadeh, S., et al. (1998) EIN4 and ERS2 are members of the putative ethylene receptor gene family in Arabidopsis. Plant Cell 10, 1321–1332.
- Jensen, M.K., Kjaersgaard, T., Nielsen, M.M., et al. (2010) The Arabidopsis thaliana NAC transcription factor family: structure--function relationships and determinants of ANAC019 stress signalling. Biochemical Journal 426, 183–196.
- Jiang, Y. and Deyholos, M.K. (2009) Functional characterization of Arabidopsis NaCl-inducible WRKY25 and WRKY33 transcription factors in abiotic stresses. Plant Molecular Biology 69, 91–105.
- Jing, H.C., Schippers, J.H., Hille, J., et al. (2005) Ethylene-induced leaf senescence depends on age-related changes and OLD genes in Arabidopsis. Journal of Experimental Botany 56, 2915–2923.
- Jing, H.C., Sturre, M.J., Hille, J., et al. (2002) Arabidopsis onset of leaf death mutants identify a regulatory pathway controlling leaf senescence. Plant Journal 32, 51–63.
- Johnson, P.R. and Ecker, J.R. (1998) The ethylene gas signal transduction pathway: a molecular perspective. Annual Review of Genetics 32, 227–254.
- Jones, M.L., Chaffin, G.S., Eason, J.R., et al. (2005) Ethylene-sensitivity regulates proteolytic activity and cysteine protease gene expression in petunia corollas. Journal of Experimental Botany 56, 2733–2744.
- Journot-Catalino, N., Somssich, I.E., Roby, D., et al. (2006) The transcription factors WRKY11 and WRKY17 act as negative regulators of basal resistance in Arabidopsis thaliana . Plant Cell 18, 3289–3302.
- Jung, C., Shim, J.S., Seo, J.S., et al. (2010) Non-specific phytohormonal induction of AtMYB44 and suppression of jasmonate-responsive gene activation in Arabidopsis thaliana . Molecules and Cells 29, 71–76.
- Kalde, M., Barth, M., Somssich, I.E., et al. (2003) Members of the Arabidopsis WRKY group III transcription factors are part of different plant defense signaling pathways. Molecular Plant-Microbe Interactions 16, 295–305.
- Kanchiswamy, C.N., Takahashi, H., Quadro, S., et al. (2010) Regulation of Arabidopsis defense responses against Spodoptera littoralis by CPK-mediated calcium signaling. BMC Plant Biology 10, 97.
- Kang, J.Y., Choi, H.I., Im, M.Y., et al. (2002) Arabidopsis basic leucine zipper proteins that mediate stress-responsive abscisic acid signaling. Plant Cell 14, 343–357.
- Kato, M., Kamo, T., Wang, R., et al. (2002) Wound-induced ethylene synthesis in stem tissue of harvested broccoli and its effects on senescence and ethylene synthesis in broccoli florets. Postharvest Biology and Technology 24, 69–78.
- Katz, E., Lagunes, P.M., Riov, J., et al. (2004) Molecular and physiological evidence suggests the existence of a system II-like pathway of ethylene production in non-climacteric Citrus fruit. Planta 219, 243–252.
- Kieber, J.J., Rothenberg, M., Roman, G., et al. (1993) CTR1, a negative regulator of the ethylene response pathway in Arabidopsis, encodes a member of the raf family of protein kinases. Cell 72, 427–441.
- Kim, H.S. and Delaney, T.P. (2002) Over-expression of TGA5, which encodes a bZIP transcription factor that interacts with NIM1/NPR1, confers SAR-independent resistance in Arabidopsis thaliana to Peronospora parasitica . Plant Journal 32, 151–163.
- Kim, J.H., Woo, H.R., Kim, J., et al. (2009) Trifurcate feed-forward regulation of age-dependent cell death involving miR164 in Arabidopsis. Science 323, 1053–1057.
- Kim, S.Y. and Michaels, S.D. (2006) SUPPRESSOR OF FRI 4 encodes a nuclear-localized protein that is required for delayed flowering in winter-annual Arabidopsis. Development 133, 4699–4707.
- Kleinow, T., Himberta, S., Krenza, B., et al. (2009) NAC domain transcription factor ATAF1 interacts with SNF1-related kinases and silencing of its subfamily causes severe developmental defects in Arabidopsis. Plant Science 177, 360–370.
- Konishi, M. and Yanagisawa, S. (2008) Ethylene signaling in Arabidopsis involves feedback regulation via the elaborate control of EBF2 expression by EIN3. Plant Journal 55, 821–831.
- Kumar, M., Busch, W., Birke, H., et al. (2009) Heat shock factors HsfB1 and HsfB2b are involved in the regulation of Pdf1.2 expression and pathogen resistance in Arabidopsis. Molecular Plant 2, 152–165.
- Kunieda, T., Mitsuda, N., Ohme-Takagi, M., et al. (2008) NAC family proteins NARS1/NAC2 and NARS2/NAM in the outer integument regulate embryogenesis in Arabidopsis. Plant Cell 20, 2631–2642.
- Lai, Z., Vinod, K., Zheng, Z., et al. (2008) Roles of Arabidopsis WRKY3 and WRKY4 transcription factors in plant responses to pathogens. BMC Plant Biology 20(8), 68.
- Langston, B.J., Bai, S. and Jones, M.L. (2005) Increases in DNA fragmentation and induction of a senescence-specific nuclease are delayed during corolla senescence in ethylene-insensitive (etr1–1) transgenic petunias. Journal of Experimental Botany 56, 15–23.
- Le, J., Vandenbussche, F., Van Der Straeten, D. and Verbelen, J.P. (2001) In the early response of Arabidopsis roots to ethylene, cell elongation is up and down regulated and uncoupled from differentiation. Plant Physiology 125, 519–522.
- Li, H., Sun, J., Xu, Y., et al. (2007) The bHLH-type transcription factor AtAIB positively regulates ABA response in Arabidopsis. Plant Molecular Biology 65, 655–665.
- Li, J., Zhang, J., Wang, X., et al. (2010) A membrane-tethered transcription factor ANAC089 negatively regulates floral initiation in Arabidopsis thaliana . Science China Life Sciences 53, 1299–1306.
- Lim, P.O., Lee, I.C., Kim, J., et al. (2010) Auxin response factor 2 (ARF2) plays a major role in regulating auxin-mediated leaf longevity. Journal of Experimental Botany 61, 1419–1430
- Lin, J.F. and Wu, S.H. (2004) Molecular events in senescing Arabidopsis leaves. Plant Journal 39, 612–628.
- Lin, R.C., Park, H.J. and Wang, H.Y. (2008) Role of Arabidopsis RAP2.4 in regulating light- and ethylene-mediated developmental processes and drought stress tolerance. Molecular Plant 1, 42–57.
- Liu, P.P., Koizuka, N., Martin, R.C., et al. (2005) The BME3 (Blue Micropylar End 3) GATA zinc finger transcription factor is a positive regulator of Arabidopsis seed germination. Plant Journal 44, 960–971.
- Lordachescu, M. and Verlinden, S. (2005) Transcriptional regulation of three EIN3-like genes of carnation (Dianthus caryophyllus L. cv. Improved White Sim) during flower development and upon wounding, pollination, and ethylene exposure. Journal of Experimental Botany 56, 2011–2018.
- Lorenzo, O., Piqueras, R., Sánchez-Serrano, J.J., et al. (2003) ETHYLENE RESPONSE FACTOR1 integrates signals from ethylene and jasmonate pathways in plant defense. Plant Cell 15, 165–178.
- Lorenzo, O., Chico, J.M., Sánchez-Serrano, J.J., et al. (2004) JASMONATE-INSENSITIVE1 encodes a MYC transcription factor essential to discriminate between different jasmonate-regulated defense responses in Arabidopsis. Plant Cell 16, 1938–1950.
- Louvet, R., Cavel, E., Gutierrez, L., et al. (2006) Comprehensive expression profiling of the pectin methylesterase gene family during silique development in Arabidopsis thaliana . Planta 224, 782–791.
- Lu, P.L., Chen, N.Z., An, R., et al. (2007) A novel drought-inducible gene, ATAF1, encodes a NAC family protein that negatively regulates the expression of stress-responsive genes in Arabidopsis. Plant Molecular Biology 63, 289–305.
- Lurie, S. (1998). Postharvest heat treatments. Postharvest Biology and Technology 14, 257–269.
- Mandaokar, A. and Browse, J. (2009) MYB108 acts together with MYB24 to regulate jasmonate-mediated stamen maturation in Arabidopsis. Plant Physiology 149, 851–862.
- Mao, P., Duan, M., Wei, C., et al. (2007) WRKY62 transcription factor acts downstream of cytosolic NPR1 and negatively regulates jasmonate-responsive gene expression. Plant Cell Physiology 48, 833–842.
- McGlasson, W.B. and Pratt, H.K. (1964) Effects of wounding on respiration and ethylene production by Cantaloupe fruit tissue. Plant Physiology 39, 128–132.
- McMurchie, E.J., McGlasson, W.B. and Eaks, I.J. (1972) Treatment of fruit with propylene gives information about the biogenesis of ethylene. Nature 237, 235–236.
- Meyer, M.D. and Terry, L.A. (2010) Manipulating the ripening of imported avocado ‘Hass’ fruit during cold storage using e+® Ethylene remover or 1-Methylcyclopropene (1-MCP). Acta Horticulturae 858, 295–300.
- Miao, Y., Laun, T., Zimmermann, P., et al. (2004) Targets of the WRKY53 transcription factor and its role during leaf senescence in Arabidopsis. Plant Molecular Biology 55(6), 853–867.
- Miao, Y. and Zentgraf, U. (2007) The antagonist function of Arabidopsis WRKY53 and ESR/ESP in leaf senescence is modulated by the jasmonic and salicylic acid equilibrium. Plant Cell 19, 819–830.
- Mittler, R., Kim, Y., Song, L., et al. (2006) Gain- and loss-of-function mutations in Zat10 enhance the tolerance of plants to abiotic stress. FEBS Letters 580, 6537–6542.
- Morgan, P.W. and Drew, M.C. (1997) Ethylene and plant responses to stress. Physiologia Plantarum 100, 620–630.
- Morishita, T., Kojima, Y., Maruta, T., et al. (2009) Arabidopsis NAC transcription factor, ANAC078, regulates flavonoid biosynthesis under high-light. Plant Cell Physiology 50, 2210–2222.
- Murray, R., Lucangeli, C., Polenta, G., et al. (2007) Combined pre-storage heat treatment and controlled atmosphere storage reduced internal breakdown of ‘Flavorcrest’ peach. Postharvest Biology and Technology 44, 116–121.
- Nakano, T., Suzuki, K., Ohtsuki, N., et al. (2006) Identification of genes of the plant-specific transcription-factor families cooperatively regulated by ethylene and jasmonate in Arabidopsis thaliana . Journal of Plant Research 119, 407–413.
- Nanthachai, N., Ratanachinakorn, B., Kosittrakun, M., et al. (2007). Absorption of 1-MCP by fresh produce. Postharvest Biology and Technology 43, 291–297.
- Nooden, L.D. and Penney, J.P. (2001) Correlative controls of senescence and plant death in Arabidopsis thaliana (Brassicaceae). Journal of Experimental Botany 52, 2151–2159.
- Obertello, M., Krouk, G., Katari, M.S., et al. (2010) Modeling the global effect of the basic-leucine zipper transcription factor 1 (bZIP1) on nitrogen and light regulation in Arabidopsis. BMC Systems Biology 12(4), 111.
- Oeller, P.W., Min-wong, L., Taylor, L.P., et al. (1991) Reversible Inhibition of Tomato antisense RNA. Science 437, 5–7.
- Oh, S.A., Park, J.H., Lee, G.I., et al. (1997) Identification of three genetic loci controlling leaf senescence in Arabidopsis thaliana. Plant Journal 12, 527–535.
- Opiyo, A.M. and Ying, T.J. (2005) Effect of 1-methylcyclopropene postharvest treatment on ripening process in cherry tomato fruit (Lycopersicon esculentum var. cerasiforme). Journal of Plant Physiology and Molecular Biology 31, 27–33.
- Orzaez, D., Blay, R. and Granell, A. (1999) Programme of senescence in petals and carpels of Pisum sativum L. flowers and its control by ethylene. Planta 208, 220–226.
- Payton, S., Fray, R.G., Brown, S., et al. (1996) Ethylene receptor expression is regulated during fruit ripening, flower senescence and abscission. Plant Molecular Biology 31, 1227–1231.
- Potuschak, T., Lechner, E., Parmentier, Y., et al. (2003) EIN3-dependent regulation of plant ethylene hormone signaling by two arabidopsis F box proteins: EBF1 and EBF2. Cell 115, 679–689.
- Pré, M., Atallah, M., Champion, A., et al. (2008) The AP2/ERF domain transcription factor ORA59 integrates jasmonic acid and ethylene signals in plant defense. Plant Physiology 147, 1347–1357.
- Preston, J., Wheeler, J., Heazlewood, J., et al. (2004) AtMYB32 is required for normal pollen development in Arabidopsis thaliana . Plant Journal 40, 979–995.
- Price, A.M., Aros Orellana, D.F., Mohd Salleh, F., et al. (2008) A comparison of leaf and petal senescence in wallflowers (Erysimum linifolium) reveals common and distinct patterns of gene expression and physiology. Plant Physiology 147, 1898–1912.
- Qu, X., Hall, B.P., Gao, Z., et al. (2007) A strong constitutive ethylene-response phenotype conferred on Arabidopsis plants containing null mutations in the ethylene receptors ETR1 and ERS1. BMC Plant Biology 7, 3.
- Rampey, R.A., Woodward, A.W., Hobbs, B.N., et al. (2006) An Arabidopsis basic helix-loop-helix leucine zipper protein modulates metal homeostasis and auxin conjugate responsiveness. Genetics 174, 1841–1857.
- Ren, T., Qu, F. and Morris, T.J. (2005) The nuclear localization of the Arabidopsis transcription factor TIP is blocked by its interaction with the coat protein of Turnip crinkle virus. Virology 331, 316–324.
- Ren, X., Chen, Z., Liu, Y., et al. (2010) ABO3, a WRKY transcription factor, mediates plant responses to abscisic acid and drought tolerance in Arabidopsis. Plant Journal 63, 417–429.
- Rizhsky, L., Davletova, S., Liang, H., et al. (2004) The zinc finger protein Zat12 is required for cytosolic ascorbate peroxidase 1 expression during oxidative stress in Arabidopsis. Journal of Biological Chemistry 279, 11736–11743.
- Robatzek, S. and Somssich, I.E. (2001) A new member of the Arabidopsis WRKY transcription factor family, AtWRKY6, is associated with both senescence- and defence-related processes. Plant Journal 28, 123–133.
- Robatzek, S. and Somssich, I.E. (2002) Targets of AtWRKY6 regulation during plant senescence and pathogen defense. Genes and Development 16, 1139–1149.
- Robertson G.L. (1993) Food Packaging: Principles and Practice. Marcel Dekker, New York, pp. 313–330 and 361–385.
- Rogers, H.J. (2006) Programmed cell death in floral organs: how and why do flowers die? Annals of Botany 97, 309–315.
- Ronen, M. and Mayak, S. (1981) Interrelationship between abscisic acid and ethylene in the control of senescence processes in carnation flowers. Journal of Experimental Botany 32, 759–765.
- Sakai, H., Hua, J., Chen, Q.G., et al. (1998) ETR2 is an ETR1-like gene involved in ethylene signaling in Arabidopsis. Proceedings of the National Academy of Sciences of the United States of America 95, 5812–5817.
- Sakamoto, H., Maruyama, K., Sakuma, Y., et al. (2004) Arabidopsis Cys2/His2-type zinc-finger proteins function as transcription repressors under drought, cold, and high-salinity stress conditions. Plant Physiology 136, 2734–2746.
- Sayyari, M., Babalar, M., Kalantari, S., et al. (2011) Vapour treatments with methyl salicylate or methyl jasmonate alleviated chilling injury and enhanced antioxidant potential during postharvest storage of pomegranates. Food Chemistry 124, 964–970.
- Scarpeci, T.E., Zanor, M.I. and Valle, E.M. (2008) Investigating the role of plant heat shock proteins during oxidative stress. Plant Signaling & Behaviour 3, 856–857.
-
Schippers, J.H.M.,
Jing, H.C.,
Hille, J., et al.
(2007)
Developmental and hormonal control of leaf senescence. In:
S. Gan (ed.)
Senescence Processes in Plants, vol.
26.
Blackwell Publishing Ltd.,
Oxford, pp.
145–170.
10.1002/9780470988855.ch7 Google Scholar
- Schramm, F., Larkindale, J., Kiehlmann, E., et al. (2007) A cascade of transcription factor DREB2A and heat stress transcription factor HsfA3 regulates the heat stress response of Arabidopsis. Plant Journal 53, 264–274.
- Seo, P.J., Kim, M.J., Park, J.Y., et al. (2010) Cold activation of a plasma membrane-tethered NAC transcription factor induces a pathogen resistance response in Arabidopsis. Plant Journal 61, 661–671.
- Serikawa, K.A., Martinez-Laborda, A., Kim, H.S., et al. (1997) Localization of expression of KNAT3, a class 2 knotted1-like gene. Plant Journal 11, 853–861.
- Sevillano, L., Sanchez-Ballesta, M.T., Romojaro, F., et al. (2009) Physiological, hormonal and molecular mechanisms regulating chilling injury in horticultural species. Postharvest technologies applied to reduce its impact. Journal of the Science of Food and Agriculture 89, 555–573.
- Shibuya, K., Barry, K.G., Ciardi, J.A., et al. (2004) The central role of PhEIN2 in ethylene responses throughout plant development in Petunia. Plant Physiology 136, 2900–2912.
- Shibuya, K., Yoshioka, T., Hashiba, T., et al. (2000) Role of the gynoecium in natural senescence of carnation (Dianthus caryophyllus L.) flowers. Journal of Experimental Botany 51, 2067–2073.
- Sisler, E.C. and Serek, M. (2003) Compounds interacting with the ethylene receptor in plants. Plant Biology 5, 473–480.
- Skirycz, A., De Bodt, S., Obata, T., et al. (2010) Developmental stage specificity and the role of mitochondrial metabolism in the response of Arabidopsis leaves to prolonged mild osmotic stress. Plant Physiology 152, 226–244.
- Smith, A.W.J., Poulston, S., Rowsell, L., et al. (2009) A new palladium based ethylene scavenger to control ethylene induced ripening of climacteric fruit. Platinum Metals Review 53, 112–122.
- Smyczynski, C., Roudier, F., Gissot, L., et al. (2006) The C terminus of the immunophilin PASTICCINO1 is required for plant development and for interaction with a NAC-like transcription factor. Journal of Biological Chemistry 281, 25475–25484.
- Smykowski, A., Zimmermann, P. and Zentgraf, U. (2010) G-Box binding factor1 reduces CATALASE2 expression and regulates the onset of leaf senescence in Arabidopsis. Plant Physiology 153, 1321–1331.
- Söderman, E., Mattsson, J. and Engström, P. (1996) The Arabidopsis homeobox gene ATHB-7 is induced by water deficit and by abscisic acid. Plant Journal 10, 375–381.
- Solano, R., Stepanova, A., Chao, Q., et al. (1998) Nuclear events in ethylene signaling: a transcriptional cascade mediated by ETHYLENEINSENSITIVE3 and ETHYLENE-RESPONSE-FACTOR 1. Genes and Development 12, 3703–3714.
- Soliva-Fortuny, R.C. and Martín-Belloso, O. (2003) New advances in extending the shelf-life of fresh cut fruits: a review. Trends in Food Science and Technology 14, 341–353.
- Son, O., Hur, Y.S., Kim, Y.K., et al. (2010) ATHB12, an ABA-inducible homeodomain-leucine zipper (HD-Zip) protein of Arabidopsis, negatively regulates the growth of the inflorescence stem by decreasing the expression of a gibberellin 20-oxidase gene. Plant Cell Physiology 51, 1537–1547.
- Ströher, E., Wang, X.J., Roloff, N., et al. (2009) Redox-dependent regulation of the stress-induced zinc-finger protein SAP12 in Arabidopsis thaliana. Molecular Plant 2, 357–367.
- Talbert, P.B., Adler, H.T., Parks, D.W., et al. (1995) The REVOLUTA gene is necessary for apical meristem development and for limiting cell divisions in the leaves and stems of Arabidopsis thaliana. Development 121, 2723–2735.
- Tang, X., Gomes, A.M.T.R, Bhatia, A., et al. (1994) Pistil-specific and ethylene-regulated expression of 1-aminocyclopropane-1-carboxylate oxidase genes in Petunia flowers. Plant Cell 6, 1227–1239.
- Teng, S., Keuremtjes, J., Bentsink, L., et al. (2005) Sucrose-specific induction of anthocyanin biosynthesis in Arabidopsis requires the MYB75/PAP1 gene. Plant Physiology 139, 1840–1852.
- Terry, L.A., Ilkenhans, T., Poulston, S., et al. (2007) Development of new palladium-promoted ethylene scavenger. Postharvest Biology and Technology 45, 214–220.
- Thomas, H., Ougham, H.J., Wagstaff, C., et al. (2003) Defining senescence and death. Journal of Experimental Botany 54, 1127–1132.
- Tian, M.S., Prakash, S., Elgar, H.J., et al. (2000). Responses of strawberry fruit to 1-methylcyclopropene (1-MCP) and ethylene. Plant Growth Regulation 32, 83–90.
- Tieman, D.M., Ciardi, J.A., Taylor, M.G., et al. (2001) Members of the tomato LeEIL gene family are functionally redundant and regulate ethylene responses throughout plant development. The Plant Journal 26, 47–58
- To, A., Valon, C., Savino, G., et al. (2006) A network of local and redundant gene regulation governs Arabidopsis seed maturation. Plant Cell 8, 1642–1651.
- Tschiersch, H., Borisjuk, L., Rutten, T, et al. (2011) Gradients of seed photosynthesis and its role for oxygen balancing. Biosystems 103(2), 302–308.
- Ülker, B., Shahid Mukhtar, M. and Somssich, I.E. (2007) The WRKY70 transcription factor of Arabidopsis influences both the plant senescence and defense signaling pathways. Planta 226, 125–137.
- Underwood, B.A., Tieman, D.M., Shibuya, K., et al. (2005) Ethylene-regulated floral volatile synthesis in Petunia corollas. Plant Physiology 138, 255–266.
- Vallejo, F. and Beaudry, R. (2006) Depletion of 1-MCP by ‘non-target’ materials from fruit storage facilities. Postharvest Biology and Technology 40, 177–182.
- van Doorn, W.G. (1997) Effects of pollination on floral attraction and longevity. Journal of Experimental Botany 48, 1615–1622.
- van Doorn, W.G., Balk, P.A., van Houwelingen, A.M., et al. (2003) Gene expression during anthesis and senescence in Iris flowers. Plant Molecular Biology 53, 845–863.
- von Koskull-Döring, P., Scharf, K.D. and Nover, L. (2007) The diversity of plant heat stress transcription factors. Trends in Plant Sciences 12, 452–457.
- Wagstaff, C., Bramke, I., Breeze, E., et al. (2010) A specific group of genes respond to cold dehydration stress in cut Alstroemeria flowers whereas ambient dehydration stress accelerates developmental senescence expression patterns. Journal of Experimental Botany 61, 2905–2921.
- Wagstaff, C., Chanasut, U., Harren, F.J.M., et al. (2005) Ethylene and flower longevity in Alstroemeria: relationship between tepal senescence, abscission and ethylene biosynthesis. Journal of Experimental Botany 56, 1007–1016.
- Wagstaff, C., Yang, T.J.W., Stead, A.D., et al. (2009) A molecular and structural characterisation of senescing Arabidopsis siliques and comparison of transcriptional profiles with senescing petals and leaves. The Plant Journal 57, 690–705.
- Weltmeier, F., Rahmani, F., Ehlert, A., et al. (2009) Expression patterns within the Arabidopsis C/S1 bZIP transcription factor network: availability of heterodimerization partners controls gene expression during stress response and development. Plant Molecular Biology 69, 107–119.
- Wilkinson, J.Q., Lanahan, M.B., Clark, D.G., et al. (1997) A dominant mutant receptor from Arabidopsis confers ethylene insensitivity in heterologous plants. Nature, Biotechnology 15, 444–447.
- Wilson, R.N., Heckman, J.W. and Somerville, C.R. (1992) Gibberellin is required for flowering in Arabidopsis thaliana under short days. Plant Physiology 100, 403–408.
- Wolters, H. and Jürgens, G. (2009) Survival of the flexible: hormonal growth control and adaptation in plant development. Nature Reviews Genetics 10, 305–317.
- Woo, H.R., Kim, J.H., Nam, H.G., et al. (2004) The delayed leaf senescence mutants of Arabidopsis, ore1, ore3, and ore9 are tolerant to oxidative stress. Plant Cell Physiology 45, 923–932.
- Wu, Y., Deng, Z. and Lai, J. (2009) Dual function of Arabidopsis ATAF1 in abiotic and biotic stress responses. Cell Research 19, 1279–1290.
- Wuriyanghan, H., Zhang, B., Cao, W-H., et al. (2009) The ethylene receptor ETR2 delays floral transition and affects starch accumulation in rice. The Plant Cell 21, 1473–1494.
- Xing, D.H., Lai, Z.B., Zheng, Z.Y., et al. (2008) Stress- and pathogen-induced Arabidopsis WRKY48 is a transcriptional activator that represses plant basal defense. Molecular Plant 1, 459–470.
- Yamaguchi, M., Ohtani, M., Mitsuda, N., et al. (2010) VND-INTERACTING2, a NAC domain transcription factor, negatively regulates xylem vessel formation in Arabidopsis. Plant Cell 22, 1249–1263.
- Yanagisawa, S., Yoo, S-D. and Sheen, J. (2003) Differential regulation of EIN3 stability by glucose and ethylene signalling in plants. Nature 425, 521–525.
- Yang, O., Popova, O.V., Süthoff, U., et al. (2009) The Arabidopsis basic leucine zipper transcription factor AtbZIP24 regulates complex transcriptional networks involved in abiotic stress resistance. Gene 436, 45–55.
- Yang, T.F., Gonzalez-Caranza, Z.H., Maunders, M.J., et al. (2008) Ethylene and the regulation of senescence processes in transgenic Nicotiana sylvestris plants. Annals of Botany 101, 301–310.
- Yang, Z., Tian, L., Latoszek-Green, M., et al. (2004) Arabidopsis ERF4 is a transcriptional repressor capable of modulating ethylene and abscisic acid responses. Plant Molecular Biology 58, 585–596.
- Yi, H., Sardesai, N., Fujinuma, T., et al. (2006) Constitutive expression exposes functional redundancy between the Arabidopsis histone H2A gene HTA1 and other H2A gene family members. Plant Cell 18, 1575–1589.
- Yoon, H.K., Kim, S.G., Kim, S.Y., et al. (2008) Regulation of leaf senescence by NTL9-mediated osmotic stress signaling in Arabidopsis. Molecules and Cells 25, 438–445.
- Zagory, D. and Kader, A.A. (1988) Modified atmosphere packaging of fresh produce. Food Technology 42, 70–74.
- Zhao, C., Avci, U., Grant, E.H., et al. (2008) XND1, a member of the NAC domain family in Arabidopsis thaliana, negatively regulates lignocellulose synthesis and programmed cell death in xylem. Plant Journal 53, 425–436.
- Zhou, L., Jang, J.C., Jones, T.L., et al. (1998) Glucose and ethylene signal transduction crosstalk revealed by an Arabidopsis glucose-insensitive mutant. Proceedings of the National Academy of Sciences of the United States of America 95, 10294–10299.
- Zhou, X., Liu, Q., Xie, F., et al. (2007) RTE1 is a Golgi-associated and ETR1-dependent negative regulator of ethylene responses. Plant Physiology 145, 75–86.
- Zimmermann, P. and Zentgraf, U. (2005) The correlation between oxidative stress and leaf senescence during plant development. Cell Molecular Biology Letters 10, 515–534.
Citing Literature
Browse other articles of this reference work: