28 Aboul-Soud MA, Aboul-Enein AM, Loake GJ (2009). Nitric oxide triggers specific and dose-dependent cytosolic calcium transients in Arabidopsis. Plant Signal Behav 4, 191-196.
[29]
29 Ali R, Ma W, Lemtiri-Chlieh F, Tsaltas D, Leng Q, von Bodman S, Berkowitz GA (2007). Death don't have no mercy and neither does calcium: Arabidopsis CYCLIC NUCLEOTIDE GATED CHANNEL2 and innate immunity. Plant Cell 19, 1081-1095.
[30]
30 Besson-Bard A, Courtois C, Gauthier A, Dahan J, Dobrowolska G, Jeandroz S, Pugin A, Wendehenne D (2008). Nitric oxide in plants: production and cross-talk with Ca 2+ signaling. Mol Plant 1, 218-228.
[31]
31 Cheval C, Aldon D, Galaud JP, Ranty B (2013). Calcium/calmodulin-mediated regulation of plant immunity. Biochim Biophys Acta 1833, 1766-1771.
[32]
32 Courtois C, Besson A, Dahan J, Bourque S, Dobrowolska G, Pugin A, Wendehenne D (2008). Nitric oxide signaling in plants: interplays with Ca 2+ and protein kinases. J Exp Bot 59, 155-163.
[33]
33 Furch ACU, van Bel AJE, Fricker MD, Felle HH, Fuchs M, Hafkea JB (2009). Sieve element Ca 2+ channels as relay stations between remote stimuli and sieve tube occlusion in Vicia faba . Plant Cell 21, 2118-2132.
[34]
34 Garcia-Mata C, Gay R, Sokolovski S, Hills A, Lamattina L, Blatt MR (2003). Nitric oxide regulates K + and Cl - channels in guard cells through a subset of abscisic acid-evoked signaling pathways. Proc Natl Acad Sci USA 100, 11116-11121.
[35]
35 Jeandroz S, Lamotte O, Astier J, Rasul S, Trapet P, Besson-Bard A, Bourque S, Nicolas-Francès V, Ma W, Berkowitz GA, Wendehenne D (2013). There's more to the picture than meets the eye: nitric oxide cross talk with Ca 2+ signaling. Plant Physiol 163, 459-470.
[36]
36 Kenton P, Mur LAJ, Draper J (1999). A requirement for calcium and protein phosphatase in the jasmonate- induced increase in tobacco leaf acid phosphatase specific activity. J Exp Bot 50, 1331-1341.
[37]
37 Kudla J, Batistič O, Hashimoto K (2010). Calcium signals: the lead currency of plant information processing. Plant Cell 22, 541-563.
[38]
38 Lamotte O, Courtois C, Dobrowolska G, Besson A, Pugin A, Wendehenne D (2006). Mechanisms of nitric-oxide- induced increase of free cytosolic Ca 2+ concentration in Nicotiana plumbaginifolia cells. Free Radic Biol Med 40, 1369-1376.
[39]
39 Lamotte O, Gould K, Lecourieux D, Sequeira-Legrand A, Lebrun-Garcia A, Durner J, Pugin A, Wendehenne D (2004). Analysis of nitric oxide signaling functions in tobacco cells challenged by the elicitor cryptogein. Plant Physiol 135, 516-529. Hou CY, Wang DM (2010). Calcium influx is required for the initiation of the hypersensitive response of Triticum aestivum to Puccinia recondita f.sp. tritici . Physiol Mol Plant Pathol 74, 267-273.
[40]
40 Ma W, Berkowitz GA (2007). The grateful dead: calcium and cell death in plant innate immunity. Cell Microbiol 9, 2571-2585.
[41]
41 Ma W, Berkowitz GA (2011). Ca 2+ conduction by plant cyclic nucleotide gated channels and associated signaling components in pathogen defense signal transduction cascades. New Phytol 190, 566-572.
[42]
42 Ma Y, Zhao YC, Walker RK, Berkowitz GA (2013). Molecular steps in the immune signaling pathway evoked by plant elicitor peptides: Ca 2+ -dependent protein kinases, nitric oxide, and reactive oxygen species are downstream from the early Ca 2+ signal. Plant Physiol 163, 1459-1471.
[43]
43 Park JH, Lee S, Cho DH, Park YM, Kang DH, Jo I (2013). Far-infrared radiation acutely increases nitric oxide production by increasing Ca 2+ mobilization and Ca 2+ /calmo- dulin-dependent protein kinase II-mediated phos-phory- lation of endothelial nitric oxide synthase at serine 1179. Biochem Biophys Res Commun 436, 601-606.
[44]
44 Vandelle E, Poinssot B, Wendehenne D, Bentéjac M, Pugin A (2006). Integrated signaling network involving calcium, nitric oxide, and active oxygen species but not mitogen-activated protein kinases in BcPG1-elicited gra- pevine defenses. Mol Plant Microbe Interact 19, 429-440.