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Volumn 202, Issue 4, 2014, Pages 1142-1156

Nitric oxide function in plant biology: A redox cue in deconvolution

Author keywords

Abiotic stress; Drought stress; Hypersensitive response (HR); Nitric oxide (NO); Plant development; Plant disease resistance; Root development; S nitrosylation

Indexed keywords

NITRIC OXIDE; S NITROSOTHIOL;

EID: 84899962359     PISSN: 0028646X     EISSN: 14698137     Source Type: Journal    
DOI: 10.1111/nph.12739     Document Type: Review
Times cited : (369)

References (159)
  • 1
    • 70349117322 scopus 로고    scopus 로고
    • Differential modulation of S-nitrosoproteome of Brassica juncea by low temperature: change in S-nitrosylation of Rubisco is responsible for the inactivation of its carboxylase activity
    • Abat JK, Deswal R. 2009. Differential modulation of S-nitrosoproteome of Brassica juncea by low temperature: change in S-nitrosylation of Rubisco is responsible for the inactivation of its carboxylase activity. Proteomics 9: 4368-4380.
    • (2009) Proteomics , vol.9 , pp. 4368-4380
    • Abat, J.K.1    Deswal, R.2
  • 3
    • 0035425503 scopus 로고    scopus 로고
    • Nitric oxide synthases: structure, function and inhibition
    • Alderton WK, Cooper CE, Knowles RG. 2001. Nitric oxide synthases: structure, function and inhibition. The Biochemical Journal 357(Pt 3): 593-615.
    • (2001) The Biochemical Journal , vol.357 , Issue.Pt 3 , pp. 593-615
    • Alderton, W.K.1    Cooper, C.E.2    Knowles, R.G.3
  • 4
    • 3242715114 scopus 로고    scopus 로고
    • Reactive oxygen species: metabolism, oxidative stress, and signal transduction
    • Apel K, Hirt H. 2004. Reactive oxygen species: metabolism, oxidative stress, and signal transduction. Annual Review of Plant Biology 55: 373-399.
    • (2004) Annual Review of Plant Biology , vol.55 , pp. 373-399
    • Apel, K.1    Hirt, H.2
  • 5
  • 6
    • 84866853296 scopus 로고    scopus 로고
    • Nitric oxide inhibits the ATPase activity of the chaperone-like AAA+ ATPase CDC48, a target for S-nitrosylation in cryptogein signalling in tobacco cells
    • Astier J, Besson-Bard A, Lamotte O, Bertoldo J, Bourque S, Terenzi H, Wendehenne D. 2012a. Nitric oxide inhibits the ATPase activity of the chaperone-like AAA+ ATPase CDC48, a target for S-nitrosylation in cryptogein signalling in tobacco cells. The Biochemical Journal 447: 249-260.
    • (2012) The Biochemical Journal , vol.447 , pp. 249-260
    • Astier, J.1    Besson-Bard, A.2    Lamotte, O.3    Bertoldo, J.4    Bourque, S.5    Terenzi, H.6    Wendehenne, D.7
  • 8
    • 0033034292 scopus 로고    scopus 로고
    • Nitric oxide counteracts cytotoxic processes mediated by reactive oxygen species in plant tissues
    • Beligni MV, Lamattina L. 1999. Nitric oxide counteracts cytotoxic processes mediated by reactive oxygen species in plant tissues. Planta 208: 337-344.
    • (1999) Planta , vol.208 , pp. 337-344
    • Beligni, M.V.1    Lamattina, L.2
  • 9
    • 0033977815 scopus 로고    scopus 로고
    • Nitric oxide stimulates seed germination and de-etiolation, and inhibits hypocotyl elongation, three light-inducible responses in plants
    • Beligni MV, Lamattina L. 2000. Nitric oxide stimulates seed germination and de-etiolation, and inhibits hypocotyl elongation, three light-inducible responses in plants. Planta 210: 215-221.
    • (2000) Planta , vol.210 , pp. 215-221
    • Beligni, M.V.1    Lamattina, L.2
  • 10
    • 51749123592 scopus 로고    scopus 로고
    • Real-time electrochemical detection of extracellular nitric oxide in tobacco cells exposed to cryptogein, an elicitor of defence responses
    • Besson-Bard A, Griveau S, Bedioui F, Wendehenne D. 2008. Real-time electrochemical detection of extracellular nitric oxide in tobacco cells exposed to cryptogein, an elicitor of defence responses. Journal of Experimental Botany 59: 3407-3414.
    • (2008) Journal of Experimental Botany , vol.59 , pp. 3407-3414
    • Besson-Bard, A.1    Griveau, S.2    Bedioui, F.3    Wendehenne, D.4
  • 11
    • 84871775857 scopus 로고    scopus 로고
    • Expression dynamics of the Medicago truncatula transcriptome during the symbiotic interaction with Sinorhizobium meliloti: which role for nitric oxide?
    • Boscari A, Del Giudice J, Ferrarini A, Venturini L, Zaffini AL, Delledonne M, Puppo A. 2013. Expression dynamics of the Medicago truncatula transcriptome during the symbiotic interaction with Sinorhizobium meliloti: which role for nitric oxide?Plant Physiology 161: 425-439.
    • (2013) Plant Physiology , vol.161 , pp. 425-439
    • Boscari, A.1    Del Giudice, J.2    Ferrarini, A.3    Venturini, L.4    Zaffini, A.L.5    Delledonne, M.6    Puppo, A.7
  • 16
    • 0027756183 scopus 로고
    • Active oxygen species in the induction of plant systemic acquired resistance by salicylic acid
    • Chen Z, Silva H, Klessig DF. 1993. Active oxygen species in the induction of plant systemic acquired resistance by salicylic acid. Science 262: 1883-1886.
    • (1993) Science , vol.262 , pp. 1883-1886
    • Chen, Z.1    Silva, H.2    Klessig, D.F.3
  • 17
    • 77957970099 scopus 로고    scopus 로고
    • Both the stimulation and inhibition of root hair growth induced by extracellular nucleotides in Arabidopsisare mediated by nitric oxide and reactive oxygen species
    • Clark G, Wu M, Wat N, Onyirimba J, Pham T, Herz N, Ogoti J, Gomez D, Canales AA, Aranda G et al. 2010. Both the stimulation and inhibition of root hair growth induced by extracellular nucleotides in Arabidopsisare mediated by nitric oxide and reactive oxygen species. Plant Molecular Biology 74: 423-435.
    • (2010) Plant Molecular Biology , vol.74 , pp. 423-435
    • Clark, G.1    Wu, M.2    Wat, N.3    Onyirimba, J.4    Pham, T.5    Herz, N.6    Ogoti, J.7    Gomez, D.8    Canales, A.A.9    Aranda, G.10
  • 18
    • 33744950512 scopus 로고    scopus 로고
    • Constitutive arginine-dependent nitric oxide synthase activity in different organs of pea seedlings during plant development
    • Corpas FJ, Barroso JB, Carreras A, Valderrama R, Palma JM, Leon AM, Sandalio LM, del Rio LA. 2006. Constitutive arginine-dependent nitric oxide synthase activity in different organs of pea seedlings during plant development. Planta 224: 246-254.
    • (2006) Planta , vol.224 , pp. 246-254
    • Corpas, F.J.1    Barroso, J.B.2    Carreras, A.3    Valderrama, R.4    Palma, J.M.5    Leon, A.M.6    Sandalio, L.M.7    del Rio, L.A.8
  • 20
    • 69949091242 scopus 로고    scopus 로고
    • Evidence supporting the existence of L-arginine-dependent nitric oxide synthase activity in plants
    • Corpas FJ, Palma JM, del Rio LA, Barroso JB. 2009. Evidence supporting the existence of L-arginine-dependent nitric oxide synthase activity in plants. New Phytologist 184: 9-14.
    • (2009) New Phytologist , vol.184 , pp. 9-14
    • Corpas, F.J.1    Palma, J.M.2    del Rio, L.A.3    Barroso, J.B.4
  • 21
    • 84882368990 scopus 로고    scopus 로고
    • Auxin induces redox regulation of ascorbate peroxidase 1 activity by S-nitrosylation/denitrosylation balance resulting in changes of root growth pattern in Arabidopsis
    • Correa-Aragunde N, Foresi N, Delledonne M, Lamattina L. 2013. Auxin induces redox regulation of ascorbate peroxidase 1 activity by S-nitrosylation/denitrosylation balance resulting in changes of root growth pattern in Arabidopsis. Journal of Experimental Botany 64: 3339-3349.
    • (2013) Journal of Experimental Botany , vol.64 , pp. 3339-3349
    • Correa-Aragunde, N.1    Foresi, N.2    Delledonne, M.3    Lamattina, L.4
  • 22
    • 31644438982 scopus 로고    scopus 로고
    • Nitric oxide modulates the expression of cell cycle regulatory genes during lateral root formation in tomato
    • Correa-Aragunde N, Graziano M, Chevalier C, Lamattina L. 2006. Nitric oxide modulates the expression of cell cycle regulatory genes during lateral root formation in tomato. Journal of Experimental Botany 57: 581-588.
    • (2006) Journal of Experimental Botany , vol.57 , pp. 581-588
    • Correa-Aragunde, N.1    Graziano, M.2    Chevalier, C.3    Lamattina, L.4
  • 23
    • 1942423166 scopus 로고    scopus 로고
    • Nitric oxide plays a central role in determining lateral root development in tomato
    • Correa-Aragunde N, Graziano M, Lamattina L. 2004. Nitric oxide plays a central role in determining lateral root development in tomato. Planta 218: 900-905.
    • (2004) Planta , vol.218 , pp. 900-905
    • Correa-Aragunde, N.1    Graziano, M.2    Lamattina, L.3
  • 25
    • 84886458742 scopus 로고    scopus 로고
    • The membrane-bound NAC transcription factor ANAC013 functions in mitochondrial retrograde regulation of the oxidative stress response in Arabidopsis
    • De Clercq I, Vermeirssen V, Van Aken O, Vandepoele K, Murcha MW, Law SR, Inze A, Ng S, Ivanova A, Rombaut D et al. 2013. The membrane-bound NAC transcription factor ANAC013 functions in mitochondrial retrograde regulation of the oxidative stress response in Arabidopsis. Plant Cell 25: 3472-3490.
    • (2013) Plant Cell , vol.25 , pp. 3472-3490
    • De Clercq, I.1    Vermeirssen, V.2    Van Aken, O.3    Vandepoele, K.4    Murcha, M.W.5    Law, S.R.6    Inze, A.7    Ng, S.8    Ivanova, A.9    Rombaut, D.10
  • 27
    • 0032490943 scopus 로고    scopus 로고
    • Nitric oxide functions as a signal in plant disease resistance
    • Delledonne M, Xia Y, Dixon RA, Lamb C. 1998. Nitric oxide functions as a signal in plant disease resistance. Nature 394: 585-588.
    • (1998) Nature , vol.394 , pp. 585-588
    • Delledonne, M.1    Xia, Y.2    Dixon, R.A.3    Lamb, C.4
  • 28
    • 0035818606 scopus 로고    scopus 로고
    • Signal interactions between nitric oxide and reactive oxygen intermediates in the plant hypersensitive disease resistance response
    • Delledonne M, Zeier J, Marocco A, Lamb C. 2001. Signal interactions between nitric oxide and reactive oxygen intermediates in the plant hypersensitive disease resistance response. Proceedings of the National Academy of Sciences, USA 98: 13454-13459.
    • (2001) Proceedings of the National Academy of Sciences, USA , vol.98 , pp. 13454-13459
    • Delledonne, M.1    Zeier, J.2    Marocco, A.3    Lamb, C.4
  • 29
    • 0037059014 scopus 로고    scopus 로고
    • A new role for an old enzyme: nitrate reductase-mediated nitric oxide generation is required for abscisic acid-induced stomatal closure in Arabidopsisthaliana
    • Desikan R, Griffiths R, Hancock J, Neill S. 2002. A new role for an old enzyme: nitrate reductase-mediated nitric oxide generation is required for abscisic acid-induced stomatal closure in Arabidopsisthaliana. Proceedings of the National Academy of Sciences, USA 99: 16314-16318.
    • (2002) Proceedings of the National Academy of Sciences, USA , vol.99 , pp. 16314-16318
    • Desikan, R.1    Griffiths, R.2    Hancock, J.3    Neill, S.4
  • 30
    • 0141746099 scopus 로고    scopus 로고
    • The ArabidopsisNPR1 disease resistance protein is a novel cofactor that confers redox regulation of DNA binding activity to the basic domain/leucine zipper transcription factor TGA1
    • Despres C, Chubak C, Rochon A, Clark R, Bethune T, Desveaux D, Fobert PR. 2003. The ArabidopsisNPR1 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.
    • (2003) Plant Cell , vol.15 , pp. 2181-2191
    • Despres, C.1    Chubak, C.2    Rochon, A.3    Clark, R.4    Bethune, T.5    Desveaux, D.6    Fobert, P.R.7
  • 31
    • 0141678892 scopus 로고    scopus 로고
    • Expression of a stress-induced hemoglobin affects NO levels produced by alfalfa root cultures under hypoxic stress
    • Dordas C, Hasinoff BB, Igamberdiev AU, Manac'h N, Rivoal J, Hill RD. 2003. Expression of a stress-induced hemoglobin affects NO levels produced by alfalfa root cultures under hypoxic stress. Plant Journal 35: 763-770.
    • (2003) Plant Journal , vol.35 , pp. 763-770
    • Dordas, C.1    Hasinoff, B.B.2    Igamberdiev, A.U.3    Manac'h, N.4    Rivoal, J.5    Hill, R.D.6
  • 36
    • 0033634643 scopus 로고    scopus 로고
    • Dexras1: a G protein specifically coupled to neuronal nitric oxide synthase via CAPON
    • Fang M, Jaffrey SR, Sawa A, Ye K, Luo X, Snyder SH. 2000. Dexras1: a G protein specifically coupled to neuronal nitric oxide synthase via CAPON. Neuron 28: 183-193.
    • (2000) Neuron , vol.28 , pp. 183-193
    • Fang, M.1    Jaffrey, S.R.2    Sawa, A.3    Ye, K.4    Luo, X.5    Snyder, S.H.6
  • 38
    • 84874593656 scopus 로고    scopus 로고
    • S-nitrosylation of phosphotransfer proteins represses cytokinin signaling
    • doi: 10.1038/ncomms2541.
    • Feng J, Wang C, Chen Q, Chen H, Ren B, Li X, Zuo J. 2013. S-nitrosylation of phosphotransfer proteins represses cytokinin signaling. Nature Communications 4: 1529. doi: 10.1038/ncomms2541.
    • (2013) Nature Communications , vol.4 , pp. 1529
    • Feng, J.1    Wang, C.2    Chen, Q.3    Chen, H.4    Ren, B.5    Li, X.6    Zuo, J.7
  • 39
    • 81055130050 scopus 로고    scopus 로고
    • Nitric oxide causes root apical meristem defects and growth inhibition while reducing PIN-FORMED 1 (PIN1)-dependent acropetal auxin transport
    • Fernandez-Marcos M, Sanz L, Lewis DR, Muday GK, Lorenzo O. 2011. Nitric oxide causes root apical meristem defects and growth inhibition while reducing PIN-FORMED 1 (PIN1)-dependent acropetal auxin transport. Proceedings of the National Academy of Sciences, USA 108: 18506-18511.
    • (2011) Proceedings of the National Academy of Sciences, USA , vol.108 , pp. 18506-18511
    • Fernandez-Marcos, M.1    Sanz, L.2    Lewis, D.R.3    Muday, G.K.4    Lorenzo, O.5
  • 40
    • 33846635882 scopus 로고    scopus 로고
    • High-throughput identification of catalytic redox-active cysteine residues
    • Fomenko DE, Xing W, Adair BM, Thomas DJ, Gladyshev VN. 2007. High-throughput identification of catalytic redox-active cysteine residues. Science 315: 387-389.
    • (2007) Science , vol.315 , pp. 387-389
    • Fomenko, D.E.1    Xing, W.2    Adair, B.M.3    Thomas, D.J.4    Gladyshev, V.N.5
  • 41
    • 78650891858 scopus 로고    scopus 로고
    • Characterization of a nitric oxide synthase from the plant kingdom: NO generation from the green alga Ostreococcus tauri is light irradiance and growth phase dependent
    • Foresi N, Correa-Aragunde N, Parisi G, Calo G, Salerno G, Lamattina L. 2010. Characterization of a nitric oxide synthase from the plant kingdom: NO generation from the green alga Ostreococcus tauri is light irradiance and growth phase dependent. Plant Cell 22: 3816-3830.
    • (2010) Plant Cell , vol.22 , pp. 3816-3830
    • Foresi, N.1    Correa-Aragunde, N.2    Parisi, G.3    Calo, G.4    Salerno, G.5    Lamattina, L.6
  • 42
    • 84877669207 scopus 로고    scopus 로고
    • Systemic acquired resistance: turning local infection into global defense
    • Fu ZQ, Dong X. 2013. Systemic acquired resistance: turning local infection into global defense. Annual Review of Plant Biology 64: 839-863.
    • (2013) Annual Review of Plant Biology , vol.64 , pp. 839-863
    • Fu, Z.Q.1    Dong, X.2
  • 43
    • 33750819157 scopus 로고    scopus 로고
    • Reactive oxygen species as signals that modulate plant stress responses and programmed cell death
    • Gechev TS, Van Breusegem F, Stone JM, Denev I, Laloi C. 2006. Reactive oxygen species as signals that modulate plant stress responses and programmed cell death. BioEssays 28: 1091-1101.
    • (2006) BioEssays , vol.28 , pp. 1091-1101
    • Gechev, T.S.1    Van Breusegem, F.2    Stone, J.M.3    Denev, I.4    Laloi, C.5
  • 45
    • 0033826053 scopus 로고    scopus 로고
    • Role of reactive oxygen intermediates and cognate redox signaling in disease resistance
    • Grant JJ, Loake GJ. 2000. Role of reactive oxygen intermediates and cognate redox signaling in disease resistance. Plant Physiology 124: 21-29.
    • (2000) Plant Physiology , vol.124 , pp. 21-29
    • Grant, J.J.1    Loake, G.J.2
  • 46
    • 0036909646 scopus 로고    scopus 로고
    • Nitric oxide improves internal iron availability in plants
    • Graziano M, Beligni MV, Lamattina L. 2002. Nitric oxide improves internal iron availability in plants. Plant Physiology 130: 1852-1859.
    • (2002) Plant Physiology , vol.130 , pp. 1852-1859
    • Graziano, M.1    Beligni, M.V.2    Lamattina, L.3
  • 47
    • 11844296696 scopus 로고    scopus 로고
    • Nitric oxide and iron in plants: an emerging and converging story
    • Graziano M, Lamattina L. 2005. Nitric oxide and iron in plants: an emerging and converging story. Trends in Plant Science 10: 4-8.
    • (2005) Trends in Plant Science , vol.10 , pp. 4-8
    • Graziano, M.1    Lamattina, L.2
  • 48
    • 36348929536 scopus 로고    scopus 로고
    • Nitric oxide accumulation is required for molecular and physiological responses to iron deficiency in tomato roots
    • Graziano M, Lamattina L. 2007. Nitric oxide accumulation is required for molecular and physiological responses to iron deficiency in tomato roots. Plant Journal 52: 949-960.
    • (2007) Plant Journal , vol.52 , pp. 949-960
    • Graziano, M.1    Lamattina, L.2
  • 49
    • 1342305253 scopus 로고    scopus 로고
    • The role and regulation of programmed cell death in plant-pathogen interactions
    • Greenberg JT, Yao N. 2004. The role and regulation of programmed cell death in plant-pathogen interactions. Cellular Microbiology 6: 201-211.
    • (2004) Cellular Microbiology , vol.6 , pp. 201-211
    • Greenberg, J.T.1    Yao, N.2
  • 50
    • 56949087865 scopus 로고    scopus 로고
    • Nitric oxide, polyamines and Cd-induced phytotoxicity in wheat roots
    • Groppa MD, Rosales EP, Iannone MF, Benavides MP. 2008. Nitric oxide, polyamines and Cd-induced phytotoxicity in wheat roots. Phytochemistry 69: 2609-2615.
    • (2008) Phytochemistry , vol.69 , pp. 2609-2615
    • Groppa, M.D.1    Rosales, E.P.2    Iannone, M.F.3    Benavides, M.P.4
  • 55
    • 0033791931 scopus 로고    scopus 로고
    • Cell biology of plant and fungal tip growth-getting to the point
    • Heath IB, Geitmann A. 2000. Cell biology of plant and fungal tip growth-getting to the point. Plant Cell 12: 1513-1517.
    • (2000) Plant Cell , vol.12 , pp. 1513-1517
    • Heath, I.B.1    Geitmann, A.2
  • 58
    • 0036010675 scopus 로고    scopus 로고
    • Biochemical and molecular inhibition of plastidial carbonic anhydrase reduces the incorporation of acetate into lipids in cotton embryos and tobacco cell suspensions and leaves
    • Hoang CV, Chapman KD. 2002. Biochemical and molecular inhibition of plastidial carbonic anhydrase reduces the incorporation of acetate into lipids in cotton embryos and tobacco cell suspensions and leaves. Plant Physiology 128: 1417-1427.
    • (2002) Plant Physiology , vol.128 , pp. 1417-1427
    • Hoang, C.V.1    Chapman, K.D.2
  • 59
    • 84873268014 scopus 로고    scopus 로고
    • Orchestrating plant development, metabolism and plant-microbe interactions-NO problem!
    • Homem RA, Loake GJ. 2013. Orchestrating plant development, metabolism and plant-microbe interactions-NO problem!New Phytologist 197: 1035-1038.
    • (2013) New Phytologist , vol.197 , pp. 1035-1038
    • Homem, R.A.1    Loake, G.J.2
  • 61
    • 19044369435 scopus 로고    scopus 로고
    • Nitric oxide mediates gravitropic bending in soybean roots
    • Hu X, Neill SJ, Tang Z, Cai W. 2005. Nitric oxide mediates gravitropic bending in soybean roots. Plant Physiology 137: 663-670.
    • (2005) Plant Physiology , vol.137 , pp. 663-670
    • Hu, X.1    Neill, S.J.2    Tang, Z.3    Cai, W.4
  • 62
    • 0027769462 scopus 로고
    • Targeted disruption of the neuronal nitric oxide synthase gene
    • Huang PL, Dawson TM, Bredt DS, Snyder SH, Fishman MC. 1993. Targeted disruption of the neuronal nitric oxide synthase gene. Cell 75: 1273-1286.
    • (1993) Cell , vol.75 , pp. 1273-1286
    • Huang, P.L.1    Dawson, T.M.2    Bredt, D.S.3    Snyder, S.H.4    Fishman, M.C.5
  • 64
    • 77956647918 scopus 로고    scopus 로고
    • Auxin signaling participates in the adaptative response against oxidative stress and salinity by interacting with redox metabolism in Arabidopsis
    • Iglesias MJ, Terrile MC, Bartoli CG, D'Ippolito S, Casalongue CA. 2010. Auxin signaling participates in the adaptative response against oxidative stress and salinity by interacting with redox metabolism in Arabidopsis. Plant Molecular Biology 74: 215-222.
    • (2010) Plant Molecular Biology , vol.74 , pp. 215-222
    • Iglesias, M.J.1    Terrile, M.C.2    Bartoli, C.G.3    D'Ippolito, S.4    Casalongue, C.A.5
  • 65
    • 0031585989 scopus 로고    scopus 로고
    • The three-dimensional structure of flavodoxin reductase from Escherichia coli at 1.7 A resolution
    • Ingelman M, Bianchi V, Eklund H. 1997. The three-dimensional structure of flavodoxin reductase from Escherichia coli at 1.7 A resolution. Journal of Molecular Biology 268: 147-157.
    • (1997) Journal of Molecular Biology , vol.268 , pp. 147-157
    • Ingelman, M.1    Bianchi, V.2    Eklund, H.3
  • 68
    • 0031761802 scopus 로고    scopus 로고
    • Loss of production of the elicitor protein INF1 in the clonal lineage US-1 of Phytophthora infestans
    • Kamoun S, van der Lee T, van den Berg-Velthuis G, de Groot KE, Govers F. 1998. Loss of production of the elicitor protein INF1 in the clonal lineage US-1 of Phytophthora infestans. Phytopathology 88: 1315-1323.
    • (1998) Phytopathology , vol.88 , pp. 1315-1323
    • Kamoun, S.1    van der Lee, T.2    van den Berg-Velthuis, G.3    de Groot, K.E.4    Govers, F.5
  • 70
    • 29344465714 scopus 로고    scopus 로고
    • Inducible nitric oxide synthase binds, S-nitrosylates, and activates cyclooxygenase-2
    • Kim SF, Huri DA, Snyder SH. 2005. Inducible nitric oxide synthase binds, S-nitrosylates, and activates cyclooxygenase-2. Science 310: 1966-1970.
    • (2005) Science , vol.310 , pp. 1966-1970
    • Kim, S.F.1    Huri, D.A.2    Snyder, S.H.3
  • 71
    • 0033197668 scopus 로고    scopus 로고
    • The Arabidopsisactin-related protein 2 (AtARP2) promoter directs expression in xylem precursor cells and pollen
    • Klahre U, Chua NH. 1999. The Arabidopsisactin-related protein 2 (AtARP2) promoter directs expression in xylem precursor cells and pollen. Plant Molecular Biology 41: 65-73.
    • (1999) Plant Molecular Biology , vol.41 , pp. 65-73
    • Klahre, U.1    Chua, N.H.2
  • 72
    • 0018390632 scopus 로고
    • 2) emissions from herbicide-treated soybean plants
    • 2) emissions from herbicide-treated soybean plants. Atmospheric Environment 13: 537-542.
    • (1979) Atmospheric Environment , vol.13 , pp. 537-542
    • Klepper, L.1
  • 73
    • 0037105252 scopus 로고    scopus 로고
    • Peroxynitrite signaling: receptor tyrosine kinases and activation of stress-responsive pathways
    • Klotz LO, Schroeder P, Sies H. 2002. Peroxynitrite signaling: receptor tyrosine kinases and activation of stress-responsive pathways. Free Radical Biology & Medicine 33: 737-743.
    • (2002) Free Radical Biology & Medicine , vol.33 , pp. 737-743
    • Klotz, L.O.1    Schroeder, P.2    Sies, H.3
  • 75
    • 84893728188 scopus 로고    scopus 로고
    • Nitric oxide-based protein modification: formation and site-specificity of protein S-nitrosylation
    • Kovacs I, Lindermayr C. 2013. Nitric oxide-based protein modification: formation and site-specificity of protein S-nitrosylation. Front Plant Sci 4: 137.
    • (2013) Front Plant Sci , vol.4 , pp. 137
    • Kovacs, I.1    Lindermayr, C.2
  • 76
    • 0025650306 scopus 로고
    • Spontaneous liberation of nitric oxide cannot account for in vitro vascular relaxation by S-nitrosothiols
    • Kowaluk EA, Fung HL. 1990. Spontaneous liberation of nitric oxide cannot account for in vitro vascular relaxation by S-nitrosothiols. Journal of Pharmacology and Experimental Therapeutics 255: 1256-1264.
    • (1990) Journal of Pharmacology and Experimental Therapeutics , vol.255 , pp. 1256-1264
    • Kowaluk, E.A.1    Fung, H.L.2
  • 77
    • 0347364622 scopus 로고    scopus 로고
    • High-affinity salicylic acid-binding protein 2 is required for plant innate immunity and has salicylic acid-stimulated lipase activity
    • Kumar D, Klessig DF. 2003. High-affinity salicylic acid-binding protein 2 is required for plant innate immunity and has salicylic acid-stimulated lipase activity. Proceedings of the National Academy of Sciences, USA 100: 16101-16106.
    • (2003) Proceedings of the National Academy of Sciences, USA , vol.100 , pp. 16101-16106
    • Kumar, D.1    Klessig, D.F.2
  • 81
    • 50649088994 scopus 로고    scopus 로고
    • Nitric oxide triggers phosphatidic acid accumulation via phospholipase D during auxin-induced adventitious root formation in cucumber
    • Lanteri ML, Laxalt AM, Lamattina L. 2008. Nitric oxide triggers phosphatidic acid accumulation via phospholipase D during auxin-induced adventitious root formation in cucumber. Plant Physiology 147: 188-198.
    • (2008) Plant Physiology , vol.147 , pp. 188-198
    • Lanteri, M.L.1    Laxalt, A.M.2    Lamattina, L.3
  • 82
    • 2442624568 scopus 로고    scopus 로고
    • Mutation of the regulatory phosphorylation site of tobacco nitrate reductase results in high nitrite excretion and NO emission from leaf and root tissue
    • Lea US, TenHoopen F, Provan F, Kaiser WM, Meyer C, Lillo C. 2004. Mutation of the regulatory phosphorylation site of tobacco nitrate reductase results in high nitrite excretion and NO emission from leaf and root tissue. Planta 219: 59-65.
    • (2004) Planta , vol.219 , pp. 59-65
    • Lea, U.S.1    Ten Hoopen, F.2    Provan, F.3    Kaiser, W.M.4    Meyer, C.5    Lillo, C.6
  • 83
    • 0034704998 scopus 로고    scopus 로고
    • Abnormal aortic valve development in mice lacking endothelial nitric oxide synthase
    • Lee TC, Zhao YD, Courtman DW, Stewart DJ. 2000. Abnormal aortic valve development in mice lacking endothelial nitric oxide synthase. Circulation 101: 2345-2348.
    • (2000) Circulation , vol.101 , pp. 2345-2348
    • Lee, T.C.1    Zhao, Y.D.2    Courtman, D.W.3    Stewart, D.J.4
  • 84
    • 48249090109 scopus 로고    scopus 로고
    • Modulation of nitrosative stress by S-nitrosoglutathione reductase is critical for thermotolerance and plant growth in Arabidopsis
    • Lee U, Wie C, Fernandez BO, Feelisch M, Vierling E. 2008. Modulation of nitrosative stress by S-nitrosoglutathione reductase is critical for thermotolerance and plant growth in Arabidopsis. Plant Cell 20: 786-802.
    • (2008) Plant Cell , vol.20 , pp. 786-802
    • Lee, U.1    Wie, C.2    Fernandez, B.O.3    Feelisch, M.4    Vierling, E.5
  • 85
    • 0026632865 scopus 로고
    • Effect of nitric oxide production on the redox modulatory site of the NMDA receptor-channel complex
    • Lei SZ, Pan ZH, Aggarwal SK, Chen HS, Hartman J, Sucher NJ, Lipton SA. 1992. Effect of nitric oxide production on the redox modulatory site of the NMDA receptor-channel complex. Neuron 8: 1087-1099.
    • (1992) Neuron , vol.8 , pp. 1087-1099
    • Lei, S.Z.1    Pan, Z.H.2    Aggarwal, S.K.3    Chen, H.S.4    Hartman, J.5    Sucher, N.J.6    Lipton, S.A.7
  • 86
    • 0033152620 scopus 로고    scopus 로고
    • Molecular and functional regulation of two NO3- uptake systems by N- and C-status of Arabidopsisplants
    • Lejay L, Tillard P, Lepetit M, Olive F, Filleur S, Daniel-Vedele F, Gojon A. 1999. Molecular and functional regulation of two NO3- uptake systems by N- and C-status of Arabidopsisplants. Plant Journal 18: 509-519.
    • (1999) Plant Journal , vol.18 , pp. 509-519
    • Lejay, L.1    Tillard, P.2    Lepetit, M.3    Olive, F.4    Filleur, S.5    Daniel-Vedele, F.6    Gojon, A.7
  • 88
    • 84855263017 scopus 로고    scopus 로고
    • Nitric oxide and protein S-nitrosylation are integral to hydrogen peroxide-induced leaf cell death in rice
    • Lin A, Wang Y, Tang J, Xue P, Li C, Liu L, Hu B, Yang F, Loake GJ, Chu C. 2012. Nitric oxide and protein S-nitrosylation are integral to hydrogen peroxide-induced leaf cell death in rice. Plant Physiology 158: 451-464.
    • (2012) Plant Physiology , vol.158 , pp. 451-464
    • Lin, A.1    Wang, Y.2    Tang, J.3    Xue, P.4    Li, C.5    Liu, L.6    Hu, B.7    Yang, F.8    Loake, G.J.9    Chu, C.10
  • 89
    • 80052617123 scopus 로고    scopus 로고
    • Nitric oxide activates superoxide dismutase and ascorbate peroxidase to repress the cell death induced by wounding
    • Lin CC, Jih PJ, Lin HH, Lin JS, Chang LL, Shen YH, Jeng ST. 2011. Nitric oxide activates superoxide dismutase and ascorbate peroxidase to repress the cell death induced by wounding. Plant Molecular Biology 77: 235-249.
    • (2011) Plant Molecular Biology , vol.77 , pp. 235-249
    • Lin, C.C.1    Jih, P.J.2    Lin, H.H.3    Lin, J.S.4    Chang, L.L.5    Shen, Y.H.6    Jeng, S.T.7
  • 90
    • 20344377809 scopus 로고    scopus 로고
    • Proteomic identification of S-nitrosylated proteins in Arabidopsis
    • Lindermayr C, Saalbach G, Durner J. 2005. Proteomic identification of S-nitrosylated proteins in Arabidopsis. Plant Physiology 137: 921-930.
    • (2005) Plant Physiology , vol.137 , pp. 921-930
    • Lindermayr, C.1    Saalbach, G.2    Durner, J.3
  • 91
    • 77957824005 scopus 로고    scopus 로고
    • Redox regulation of the NPR1-TGA1 system of Arabidopsisthaliana by nitric oxide
    • Lindermayr C, Sell S, Muller B, Leister D, Durner J. 2010. Redox regulation of the NPR1-TGA1 system of Arabidopsisthaliana by nitric oxide. Plant Cell 22: 2894-2907.
    • (2010) Plant Cell , vol.22 , pp. 2894-2907
    • Lindermayr, C.1    Sell, S.2    Muller, B.3    Leister, D.4    Durner, J.5
  • 94
    • 84863083738 scopus 로고    scopus 로고
    • NOing the heart: role of nitric oxide synthase-3 in heart development
    • Liu Y, Feng Q. 2012. NOing the heart: role of nitric oxide synthase-3 in heart development. Differentiation 84: 54-61.
    • (2012) Differentiation , vol.84 , pp. 54-61
    • Liu, Y.1    Feng, Q.2
  • 95
    • 34948859039 scopus 로고    scopus 로고
    • Salicylic acid in plant defence - the players and protagonists
    • Loake G, Grant M. 2007. Salicylic acid in plant defence - the players and protagonists. Current Opinion in Plant Biology 10: 466-472.
    • (2007) Current Opinion in Plant Biology , vol.10 , pp. 466-472
    • Loake, G.1    Grant, M.2
  • 97
    • 84865491765 scopus 로고    scopus 로고
    • Nitric oxide is essential for vesicle formation and trafficking in Arabidopsisroot hair growth
    • Lombardo MC, Lamattina L. 2012. Nitric oxide is essential for vesicle formation and trafficking in Arabidopsisroot hair growth. Journal of Experimental Botany 63: 4875-4885.
    • (2012) Journal of Experimental Botany , vol.63 , pp. 4875-4885
    • Lombardo, M.C.1    Lamattina, L.2
  • 98
    • 27744498588 scopus 로고    scopus 로고
    • Identification of an inducible nitric oxide synthase in diaphragm mitochondria from septic mice: its relation with mitochondrial dysfunction and prevention by melatonin
    • Lopez LC, Escames G, Tapias V, Utrilla P, Leon J, Acuna-Castroviejo D. 2006. Identification of an inducible nitric oxide synthase in diaphragm mitochondria from septic mice: its relation with mitochondrial dysfunction and prevention by melatonin. International Journal of Biochemistry & Cell Biology 38: 267-278.
    • (2006) International Journal of Biochemistry & Cell Biology , vol.38 , pp. 267-278
    • Lopez, L.C.1    Escames, G.2    Tapias, V.3    Utrilla, P.4    Leon, J.5    Acuna-Castroviejo, D.6
  • 99
    • 73649121243 scopus 로고    scopus 로고
    • Structural analysis of cysteine S-nitrosylation: a modified acid-based motif and the emerging role of trans-nitrosylation
    • Marino SM, Gladyshev VN. 2010. Structural analysis of cysteine S-nitrosylation: a modified acid-based motif and the emerging role of trans-nitrosylation. Journal of Molecular Biology 395: 844-859.
    • (2010) Journal of Molecular Biology , vol.395 , pp. 844-859
    • Marino, S.M.1    Gladyshev, V.N.2
  • 101
    • 82755162848 scopus 로고    scopus 로고
    • Posttranslational regulation of the iron deficiency basic helix-loop-helix transcription factor FIT is affected by iron and nitric oxide
    • Meiser J, Lingam S, Bauer P. 2011. Posttranslational regulation of the iron deficiency basic helix-loop-helix transcription factor FIT is affected by iron and nitric oxide. Plant Physiology 157: 2154-2166.
    • (2011) Plant Physiology , vol.157 , pp. 2154-2166
    • Meiser, J.1    Lingam, S.2    Bauer, P.3
  • 102
    • 15044341051 scopus 로고    scopus 로고
    • Soluble and plasma membrane bound enzymes involved in nitrate and nitrite metabolism
    • Foyer CH, Noctor G, eds. Dordrecht, the Netherlands: Springer
    • Meyer C, Stohr C. 2002. Soluble and plasma membrane bound enzymes involved in nitrate and nitrite metabolism. Foyer CH, Noctor G, eds. Photosynthetic nitrogen assimilation and associated carbon metabolism. Dordrecht, the Netherlands: Springer, 49-62.
    • (2002) Photosynthetic nitrogen assimilation and associated carbon metabolism , pp. 49-62
    • Meyer, C.1    Stohr, C.2
  • 103
    • 0033034611 scopus 로고    scopus 로고
    • The role of actin in root hair morphogenesis: studies with lipochito-oligosaccharide as a growth stimulator and cytochalasin as an actin perturbing drug
    • Miller D, De Ruijter Norbert CA, Bisseling T, Emons Annemie C. 1999. The role of actin in root hair morphogenesis: studies with lipochito-oligosaccharide as a growth stimulator and cytochalasin as an actin perturbing drug. Plant Journal 17: 141-154.
    • (1999) Plant Journal , vol.17 , pp. 141-154
    • Miller, D.1    De Ruijter Norbert, C.A.2    Bisseling, T.3    Emons Annemie, C.4
  • 104
    • 77949775701 scopus 로고    scopus 로고
    • Effect of nitrate supply and mycorrhizal inoculation on characteristics of tobacco root plasma membrane vesicles
    • Moche M, Stremlau S, Hecht L, Gobel C, Feussner I, Stohr C. 2010. Effect of nitrate supply and mycorrhizal inoculation on characteristics of tobacco root plasma membrane vesicles. Planta 231: 425-436.
    • (2010) Planta , vol.231 , pp. 425-436
    • Moche, M.1    Stremlau, S.2    Hecht, L.3    Gobel, C.4    Feussner, I.5    Stohr, C.6
  • 105
    • 0021688528 scopus 로고
    • Identification and characterization of some bacterial membrane sulfhydryl groups which are targets of bacteriostatic and antibiotic action
    • Morris SL, Walsh RC, Hansen JN. 1984. Identification and characterization of some bacterial membrane sulfhydryl groups which are targets of bacteriostatic and antibiotic action. Journal of Biological Chemistry 259: 13590-13594.
    • (1984) Journal of Biological Chemistry , vol.259 , pp. 13590-13594
    • Morris, S.L.1    Walsh, R.C.2    Hansen, J.N.3
  • 106
    • 0038826955 scopus 로고    scopus 로고
    • Inducers of plant systemic acquired resistance regulate NPR1 function through redox changes
    • Mou Z, Fan W, Dong X. 2003. Inducers of plant systemic acquired resistance regulate NPR1 function through redox changes. Cell 113: 935-944.
    • (2003) Cell , vol.113 , pp. 935-944
    • Mou, Z.1    Fan, W.2    Dong, X.3
  • 108
    • 4544336507 scopus 로고    scopus 로고
    • Transcript profiling in the chl1-5 mutant of Arabidopsisreveals a role of the nitrate transporter NRT1.1 in the regulation of another nitrate transporter, NRT2.1
    • Munos S, Cazettes C, Fizames C, Gaymard F, Tillard P, Lepetit M, Lejay L, Gojon A. 2004. Transcript profiling in the chl1-5 mutant of Arabidopsisreveals a role of the nitrate transporter NRT1.1 in the regulation of another nitrate transporter, NRT2.1. Plant Cell 16: 2433-2447.
    • (2004) Plant Cell , vol.16 , pp. 2433-2447
    • Munos, S.1    Cazettes, C.2    Fizames, C.3    Gaymard, F.4    Tillard, P.5    Lepetit, M.6    Lejay, L.7    Gojon, A.8
  • 110
    • 0037365968 scopus 로고    scopus 로고
    • Specificity of a third kind: reactive oxygen and nitrogen intermediates in cell signaling
    • Nathan C. 2003. Specificity of a third kind: reactive oxygen and nitrogen intermediates in cell signaling. Journal of Clinical Investigation 111: 769-778.
    • (2003) Journal of Clinical Investigation , vol.111 , pp. 769-778
    • Nathan, C.1
  • 113
    • 0030057496 scopus 로고    scopus 로고
    • Nitric oxide induces phytoalexin accumulation in potato tuber tissues
    • Noritake T, Kawakita K, Doke N. 1996. Nitric oxide induces phytoalexin accumulation in potato tuber tissues. Plant and Cell Physiology 37: 113-116.
    • (1996) Plant and Cell Physiology , vol.37 , pp. 113-116
    • Noritake, T.1    Kawakita, K.2    Doke, N.3
  • 115
    • 0038715218 scopus 로고    scopus 로고
    • Nitric oxide and cyclic GMP are messengers in the indole acetic acid-induced adventitious rooting process
    • Pagnussat GC, Lanteri ML, Lamattina L. 2003. Nitric oxide and cyclic GMP are messengers in the indole acetic acid-induced adventitious rooting process. Plant Physiology 132: 1241-1248.
    • (2003) Plant Physiology , vol.132 , pp. 1241-1248
    • Pagnussat, G.C.1    Lanteri, M.L.2    Lamattina, L.3
  • 116
    • 2442696826 scopus 로고    scopus 로고
    • Nitric oxide mediates the indole acetic acid induction activation of a mitogen-activated protein kinase cascade involved in adventitious root development
    • Pagnussat GC, Lanteri ML, Lombardo MC, Lamattina L. 2004. Nitric oxide mediates the indole acetic acid induction activation of a mitogen-activated protein kinase cascade involved in adventitious root development. Plant Physiology 135: 279-286.
    • (2004) Plant Physiology , vol.135 , pp. 279-286
    • Pagnussat, G.C.1    Lanteri, M.L.2    Lombardo, M.C.3    Lamattina, L.4
  • 117
    • 14844289535 scopus 로고    scopus 로고
    • Nitric oxide emission from tobacco leaves and cell suspensions: rate limiting factors and evidence for the involvement of mitochondrial electron transport
    • Planchet E, Jagadis Gupta K, Sonoda M, Kaiser WM. 2005. Nitric oxide emission from tobacco leaves and cell suspensions: rate limiting factors and evidence for the involvement of mitochondrial electron transport. Plant Journal 41: 732-743.
    • (2005) Plant Journal , vol.41 , pp. 732-743
    • Planchet, E.1    Jagadis Gupta, K.2    Sonoda, M.3    Kaiser, W.M.4
  • 119
    • 1842716716 scopus 로고    scopus 로고
    • Nitric oxide and nitric oxide synthase activity in plants
    • del Rio LA, Corpas FJ, Barroso JB. 2004. Nitric oxide and nitric oxide synthase activity in plants. Phytochemistry 65: 783-792.
    • (2004) Phytochemistry , vol.65 , pp. 783-792
    • del Rio, L.A.1    Corpas, F.J.2    Barroso, J.B.3
  • 121
    • 0036006867 scopus 로고    scopus 로고
    • Regulation of nitric oxide (NO) production by plant nitrate reductase in vivoand in vitro
    • Rockel P, Strube F, Rockel A, Wildt J, Kaiser WM. 2002. Regulation of nitric oxide (NO) production by plant nitrate reductase in vivoand in vitro. Journal of Experimental Botany 53: 103-110.
    • (2002) Journal of Experimental Botany , vol.53 , pp. 103-110
    • Rockel, P.1    Strube, F.2    Rockel, A.3    Wildt, J.4    Kaiser, W.M.5
  • 126
    • 80051774465 scopus 로고    scopus 로고
    • Is ABP1 an auxin receptor yet?
    • Shi JH, Yang ZB. 2011. Is ABP1 an auxin receptor yet?Molecular Plant 4: 635-640.
    • (2011) Molecular Plant , vol.4 , pp. 635-640
    • Shi, J.H.1    Yang, Z.B.2
  • 127
    • 0031080221 scopus 로고    scopus 로고
    • Salicylic acid potentiates an agonist-dependent gain control that amplifies pathogen signals in the activation of defense mechanisms
    • Shirasu K, Nakajima H, Rajasekhar VK, Dixon RA, Lamb C. 1997. Salicylic acid potentiates an agonist-dependent gain control that amplifies pathogen signals in the activation of defense mechanisms. Plant Cell 9: 261-270.
    • (1997) Plant Cell , vol.9 , pp. 261-270
    • Shirasu, K.1    Nakajima, H.2    Rajasekhar, V.K.3    Dixon, R.A.4    Lamb, C.5
  • 128
    • 0037015036 scopus 로고    scopus 로고
    • The tobacco salicylic acid-binding protein 3 (SABP3) is the chloroplast carbonic anhydrase, which exhibits antioxidant activity and plays a role in the hypersensitive defense response
    • Slaymaker DH, Navarre DA, Clark D, del Pozo O, Martin GB, Klessig DF. 2002. The tobacco salicylic acid-binding protein 3 (SABP3) is the chloroplast carbonic anhydrase, which exhibits antioxidant activity and plays a role in the hypersensitive defense response. Proceedings of the National Academy of Sciences, USA 99: 11640-11645.
    • (2002) Proceedings of the National Academy of Sciences, USA , vol.99 , pp. 11640-11645
    • Slaymaker, D.H.1    Navarre, D.A.2    Clark, D.3    del Pozo, O.4    Martin, G.B.5    Klessig, D.F.6
  • 130
    • 79961169261 scopus 로고    scopus 로고
    • Redox-based protein modifications: the missing link in plant immune signalling
    • Spoel SH, Loake GJ. 2011. Redox-based protein modifications: the missing link in plant immune signalling. Current Opinion in Plant Biology 14: 358-364.
    • (2011) Current Opinion in Plant Biology , vol.14 , pp. 358-364
    • Spoel, S.H.1    Loake, G.J.2
  • 131
    • 61349183750 scopus 로고    scopus 로고
    • Nitric oxide production occurs downstream of reactive oxygen species in guard cells during stomatal closure induced by chitosan in abaxial epidermis of Pisum sativum
    • Srivastava N, Gonugunta VK, Puli MR, Raghavendra AS. 2009. Nitric oxide production occurs downstream of reactive oxygen species in guard cells during stomatal closure induced by chitosan in abaxial epidermis of Pisum sativum. Planta 229: 757-765.
    • (2009) Planta , vol.229 , pp. 757-765
    • Srivastava, N.1    Gonugunta, V.K.2    Puli, M.R.3    Raghavendra, A.S.4
  • 132
    • 0000741366 scopus 로고    scopus 로고
    • Biochemistry of nitric acid and redox-related species
    • Feelish M, Stamler JS, eds. New York, NY, USA: John Wiley & Sons
    • Stamler JS, Feelish M. 1996. Biochemistry of nitric acid and redox-related species. Feelish M, Stamler JS, eds. Methods in nitric oxide research. New York, NY, USA: John Wiley & Sons, 19-29.
    • (1996) Methods in nitric oxide research , pp. 19-29
    • Stamler, J.S.1    Feelish, M.2
  • 133
    • 0027104253 scopus 로고
    • Biochemistry of nitric oxide and its redox-activated forms
    • Stamler JS, Singel DJ, Loscalzo J. 1992. Biochemistry of nitric oxide and its redox-activated forms. Science 258: 1898-1902.
    • (1992) Science , vol.258 , pp. 1898-1902
    • Stamler, J.S.1    Singel, D.J.2    Loscalzo, J.3
  • 134
    • 0030956929 scopus 로고    scopus 로고
    • (S)NO signals: translocation, regulation, and a consensus motif
    • Stamler JS, Toone EJ, Lipton SA, Sucher NJ. 1997. (S)NO signals: translocation, regulation, and a consensus motif. Neuron 18: 691-696.
    • (1997) Neuron , vol.18 , pp. 691-696
    • Stamler, J.S.1    Toone, E.J.2    Lipton, S.A.3    Sucher, N.J.4
  • 135
    • 0035037361 scopus 로고    scopus 로고
    • A plasma membrane-bound enzyme of tobacco roots catalyses the formation of nitric oxide from nitrite
    • Stohr C, Strube F, Marx G, Ullrich WR, Rockel P. 2001. A plasma membrane-bound enzyme of tobacco roots catalyses the formation of nitric oxide from nitrite. Planta 212: 835-841.
    • (2001) Planta , vol.212 , pp. 835-841
    • Stohr, C.1    Strube, F.2    Marx, G.3    Ullrich, W.R.4    Rockel, P.5
  • 136
    • 34249990700 scopus 로고    scopus 로고
    • Nitrite-driven anaerobic ATP synthesis in barley and rice root mitochondria
    • Stoimenova M, Igamberdiev AU, Gupta KJ, Hill RD. 2007. Nitrite-driven anaerobic ATP synthesis in barley and rice root mitochondria. Planta 226: 465-474.
    • (2007) Planta , vol.226 , pp. 465-474
    • Stoimenova, M.1    Igamberdiev, A.U.2    Gupta, K.J.3    Hill, R.D.4
  • 137
    • 85163503890 scopus 로고    scopus 로고
    • The effects of heat stress on cereal yield and quality
    • Basra AS, ed. Binghamton, NY, USA: Food Products Press
    • Stone P. 2001. The effects of heat stress on cereal yield and quality. Basra AS, ed. Crop responses and adaptations to temperature stress. Binghamton, NY, USA: Food Products Press, 243-291.
    • (2001) Crop responses and adaptations to temperature stress , pp. 243-291
    • Stone, P.1
  • 138
    • 49649112131 scopus 로고    scopus 로고
    • Plant immunity requires conformational changes [corrected] of NPR1 via S-nitrosylation and thioredoxins
    • Tada Y, Spoel SH, Pajerowska-Mukhtar K, Mou Z, Song J, Wang C, Zuo J, Dong X. 2008. Plant immunity requires conformational changes [corrected] of NPR1 via S-nitrosylation and thioredoxins. Science 321: 952-956.
    • (2008) Science , vol.321 , pp. 952-956
    • Tada, Y.1    Spoel, S.H.2    Pajerowska-Mukhtar, K.3    Mou, Z.4    Song, J.5    Wang, C.6    Zuo, J.7    Dong, X.8
  • 140
    • 77957748106 scopus 로고    scopus 로고
    • Molecular basis of plant cold acclimation: insights gained from studying the CBF cold response pathway
    • Thomashow MF. 2010. Molecular basis of plant cold acclimation: insights gained from studying the CBF cold response pathway. Plant Physiology 154: 571-577.
    • (2010) Plant Physiology , vol.154 , pp. 571-577
    • Thomashow, M.F.1
  • 141
    • 0037039157 scopus 로고    scopus 로고
    • Arabidopsisgp91phox homologues AtrbohD and AtrbohF are required for accumulation of reactive oxygen intermediates in the plant defense response
    • Torres MA, Dangl JL, Jones JD. 2002. Arabidopsisgp91phox homologues AtrbohD and AtrbohF are required for accumulation of reactive oxygen intermediates in the plant defense response. Proceedings of the National Academy of Sciences, USA 99: 517-522.
    • (2002) Proceedings of the National Academy of Sciences, USA , vol.99 , pp. 517-522
    • Torres, M.A.1    Dangl, J.L.2    Jones, J.D.3
  • 144
    • 78049481933 scopus 로고    scopus 로고
    • Hydrogen peroxide-mediated activation of MAP kinase 6 modulates nitric oxide biosynthesis and signal transduction in Arabidopsis
    • Wang P, Du Y, Li Y, Ren D, Song CP. 2010. Hydrogen peroxide-mediated activation of MAP kinase 6 modulates nitric oxide biosynthesis and signal transduction in Arabidopsis. Plant Cell 22: 2981-2998.
    • (2010) Plant Cell , vol.22 , pp. 2981-2998
    • Wang, P.1    Du, Y.2    Li, Y.3    Ren, D.4    Song, C.P.5
  • 147
    • 0035969499 scopus 로고    scopus 로고
    • Isochorismate synthase is required to synthesize salicylic acid for plant defence
    • Wildermuth MC, Dewdney J, Wu G, Ausubel FM. 2001. Isochorismate synthase is required to synthesize salicylic acid for plant defence. Nature 414: 562-565.
    • (2001) Nature , vol.414 , pp. 562-565
    • Wildermuth, M.C.1    Dewdney, J.2    Wu, G.3    Ausubel, F.M.4
  • 148
    • 0026150937 scopus 로고
    • Identification of the ArabidopsisCHL3 gene as the nitrate reductase structural gene NIA2
    • Wilkinson JQ, Crawford NM. 1991. Identification of the ArabidopsisCHL3 gene as the nitrate reductase structural gene NIA2. Plant Cell 3: 461-471.
    • (1991) Plant Cell , vol.3 , pp. 461-471
    • Wilkinson, J.Q.1    Crawford, N.M.2
  • 149
    • 0032171420 scopus 로고    scopus 로고
    • Chemical biology of nitric oxide: insights into regulatory, cytotoxic, and cytoprotective mechanisms of nitric oxide
    • Wink DA, Mitchell JB. 1998. Chemical biology of nitric oxide: insights into regulatory, cytotoxic, and cytoprotective mechanisms of nitric oxide. Free Radical Biology & Medicine 25: 434-456.
    • (1998) Free Radical Biology & Medicine , vol.25 , pp. 434-456
    • Wink, D.A.1    Mitchell, J.B.2
  • 150
    • 77955283497 scopus 로고    scopus 로고
    • GPS-SNO: computational prediction of protein S-nitrosylation sites with a modified GPS algorithm
    • Xue Y, Liu Z, Gao X, Jin C, Wen L, Yao X, Ren J. 2010. GPS-SNO: computational prediction of protein S-nitrosylation sites with a modified GPS algorithm. PLoS ONE 5: e11290.
    • (2010) PLoS ONE , vol.5
    • Xue, Y.1    Liu, Z.2    Gao, X.3    Jin, C.4    Wen, L.5    Yao, X.6    Ren, J.7
  • 151
    • 33745396481 scopus 로고    scopus 로고
    • Nitrate reductase is responsible for elicitin-induced nitric oxide production in Nicotiana benthamiana
    • Yamamoto-Katou A, Katou S, Yoshioka H, Doke N, Kawakita K. 2006. Nitrate reductase is responsible for elicitin-induced nitric oxide production in Nicotiana benthamiana. Plant and Cell Physiology 47: 726-735.
    • (2006) Plant and Cell Physiology , vol.47 , pp. 726-735
    • Yamamoto-Katou, A.1    Katou, S.2    Yoshioka, H.3    Doke, N.4    Kawakita, K.5
  • 152
    • 0033952545 scopus 로고    scopus 로고
    • Simultaneous production of nitric oxide and peroxynitrite by plant nitrate reductase: in vitro evidence for the NR-dependent formation of active nitrogen species
    • Yamasaki H, Sakihama Y. 2000. Simultaneous production of nitric oxide and peroxynitrite by plant nitrate reductase: in vitro evidence for the NR-dependent formation of active nitrogen species. FEBS Letters 468: 89-92.
    • (2000) FEBS Letters , vol.468 , pp. 89-92
    • Yamasaki, H.1    Sakihama, Y.2
  • 153
    • 0032919483 scopus 로고    scopus 로고
    • An alternative pathway for nitric oxide production in plants: new features of an old enzyme
    • Yamasaki H, Sakihama Y, Takahashi S. 1999. An alternative pathway for nitric oxide production in plants: new features of an old enzyme. Trends in Plant Science 4: 128-129.
    • (1999) Trends in Plant Science , vol.4 , pp. 128-129
    • Yamasaki, H.1    Sakihama, Y.2    Takahashi, S.3
  • 154
    • 84864526136 scopus 로고    scopus 로고
    • A sleigh ride through the SNO: regulation of plant immune function by protein S-nitrosylation
    • Yu M, Yun BW, Spoel SH, Loake GJ. 2012. A sleigh ride through the SNO: regulation of plant immune function by protein S-nitrosylation. Current Opinion in Plant Biology 15: 424-430.
    • (2012) Current Opinion in Plant Biology , vol.15 , pp. 424-430
    • Yu, M.1    Yun, B.W.2    Spoel, S.H.3    Loake, G.J.4
  • 156
    • 84860495899 scopus 로고    scopus 로고
    • Synthesis of and signalling by small, redox active molecules in the plant immune response
    • Yun BW, Spoel SH, Loake GJ. 2012. Synthesis of and signalling by small, redox active molecules in the plant immune response. Biochimica et Biophysica Acta 6: 770-776.
    • (2012) Biochimica et Biophysica Acta , vol.6 , pp. 770-776
    • Yun, B.W.1    Spoel, S.H.2    Loake, G.J.3
  • 158
    • 34249781699 scopus 로고    scopus 로고
    • Nitric oxide induced by hydrogen peroxide mediates abscisic acid-induced activation of the mitogen-activated protein kinase cascade involved in antioxidant defense in maize leaves
    • Zhang A, Jiang M, Zhang J, Ding H, Xu S, Hu X, Tan M. 2007. Nitric oxide induced by hydrogen peroxide mediates abscisic acid-induced activation of the mitogen-activated protein kinase cascade involved in antioxidant defense in maize leaves. New Phytologist 175: 36-50.
    • (2007) New Phytologist , vol.175 , pp. 36-50
    • Zhang, A.1    Jiang, M.2    Zhang, J.3    Ding, H.4    Xu, S.5    Hu, X.6    Tan, M.7
  • 159
    • 0345376974 scopus 로고    scopus 로고
    • Knockout analysis of Arabidopsistranscription factors TGA2, TGA5, and TGA6 reveals their redundant and essential roles in systemic acquired resistance
    • Zhang Y, Tessaro MJ, Lassner M, Li X. 2003. Knockout analysis of Arabidopsistranscription factors TGA2, TGA5, and TGA6 reveals their redundant and essential roles in systemic acquired resistance. Plant Cell 15: 2647-2653.
    • (2003) Plant Cell , vol.15 , pp. 2647-2653
    • Zhang, Y.1    Tessaro, M.J.2    Lassner, M.3    Li, X.4


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