Phytocyanin-encoding genes confer enhanced ozone tolerance in Arabidopsis thaliana

  • Hough, AM & Derwent, RG Changes in the global concentration of tropospheric ozone due to human activities. Nature 344645–648 (1990).

    Article ADS CAS Google Scholar

  • Montes, CM, Demler, HJ, Li, S., Martin, DG & Ainsworth, EA Approaches to investigate crop responses to ozone pollution: From O3-FACE to satellite-enabled modeling. Plant J. 109432–446 (2021).

    Article Google Scholar

  • Pell, EJ, Schlagnhaufer, CD & Arteca, RN Ozone-induced oxidative stress: Mechanisms of action and reaction. Physiol. Plant. 100264–273 (1997).

    Article CAS Google Scholar

  • Fiscus, EL, Booker, FL & Burkey, KO Crop responses to ozone: uptake, modes of action, carbon assimilation and partitioning. Plant Cell Environment. 28997–1011 (2005).

    Article CAS Google Scholar

  • Kangasjärvi, J., Jaspers, P. & Kollist, H. Signaling and cell death in ozone-exposed plants. Plant Cell Environment. 281021–1036 (2005).

    Article Google Scholar

  • Tamaoki, M. The role of phytohormone signaling in ozone-induced cell death in plants. plant signal. Behav. 3166–174 (2008).

    Article Google Scholar

  • Saji, S. et al. Disruption of a gene encoding C4-Dicarboxylate transporter-like protein increases ozone sensitivity through deregulation of the stomatal response in Arabidopsis thaliana. Plant Cell Physiol. 492–10 (2008).

    Article CAS Google Scholar

  • Vahisalu, T. et al. SLAC1 is required for plant guard cell S-type anion channel function in stomatal signaling. Nature 452483–486 (2008).

    Article ADS Google Scholar

  • Broche, M. et al. Natural variation in ozone sensitivity among Arabidopsis thaliana accessions and its relation to stomatal conductance. Plant Cell Environment. 33914–925 (2010).

    Article Google Scholar

  • Monda, K. et al. Environmental regulation of stomatal response in the Arabidopsis Cvi-0 ecotype. Planta 234555–563 (2011).

    Article CAS Google Scholar

  • Conklin, PL, Williams, EH & Last, RL Environmental stress sensitivity of an ascorbic acid-deficient Arabidopsis mutant. Proc. Natl. Acad. Sci. USA 939970–9974 (1996).

    Article ADS CAS Google Scholar

  • Yoshida, S. et al. Cytosolic dehydroascorbate reductase is important for ozone tolerance in Arabidopsis thaliana. Plant Cell Physiol. 47304–308 (2006).

    Article CAS Google Scholar

  • Saji, S. et al. Ozone-sensitive Arabidopsis mutants with deficiencies in photorespiratory enzymes. Plant Cell Physiol. 58914–924 (2017).

    Article CAS Google Scholar

  • Overmyer, K. et al. Ozone-sensitive Arabidopsis rcd1 mutant reveals opposite roles for ethylene and jasmonate signaling pathways in regulating superoxide-dependent cell death. plant cell 121849–1862 (2000).

    Article CAS Google Scholar

  • Rao, MV, Lee, HI & Davis, KR Ozone-induced ethylene production is dependent on salicylic acid, and both salicylic acid and ethylene act in concert to regulate ozone-induced cell death. Plant J. 32447–456 (2002).

    Article CAS Google Scholar

  • Kanna, M. et al. Isolation of an ozone-sensitive and jasmonate-semi-insensitive Arabidopsis mutant (oji1). Plant Cell Physiol. 441301–1310 (2003).

    Article CAS Google Scholar

  • Ahlfors, R., Brosché, M., Kollist, H. & Kangasjärvi, J. Nitric oxide modulates ozone-induced cell death, hormone biosynthesis and gene expression in Arabidopsis thaliana. Plant J. 581–12 (2009).

    Article CAS Google Scholar

  • Joo, JH, Wang, S., Chen, JG, Jones, AM & Fedoroff, NV Different signaling and cell death roles of heterotrimeric G protein alpha and beta subunits in the Arabidopsis oxidative stress response to ozone. plant cell 17957–970 (2005).

    Article CAS Google Scholar

  • Samuel, MA & Ellis, BE Double Jeopardy: Both overexpression and suppression of a redox-activated plant mitogen-activated protein kinase render tobacco plants ozone sensitive. plant cell 142059–2069 (2002).

    Article CAS Google Scholar

  • Gomi, K. et al. A mitogen-activated protein kinase NtMPK4 activated by SIPKK is required for jasmonic acid signaling and involved in ozone tolerance via stomatal movement in tobacco. Plant Cell Physiol. 461902–1914 (2005).

    Article CAS Google Scholar

  • Yanagawa, Y. et al. Mitogen-activated protein kinase 4-like carrying an MEY motif instead of a TXY motif is involved in ozone tolerance and regulation of stomatal closure in tobacco. J.Exp. Bot. 673471–3479 (2016).

    Article CAS Google Scholar

  • Vainonen, JP & Kangasjärvi, J. Plant signaling in acute ozone exposure. Plant Cell Environment. 38240–252 (2014).

    Article Google Scholar

  • Castro, B. et al. Stress-induced reactive oxygen species compartmentalization, perception and signaling. Nat. Plants 7403–412 (2021).

    Article CAS Google Scholar

  • Ma, H., Zhao, H., Liu, Z. & Zhao, J. The phytocyanin gene family in rice (Oryza sativa L.): Genome-wide identification, classification and transcriptional analysis. PLoS One 6(10), e25184 (2011).

    Article ADS CAS Google Scholar

  • Nersissian, AM et al. Uclacyanins, stellacyanins, and plantacyanins are distinct subfamilies of phytocyanins: plant-specific mononuclear blue copper proteins. Protein Sci. 71915–1929 (1998).

    Article CAS Google Scholar

  • Janero, DR Malondialdehyde and thiobarbituric acid-reactivity as diagnostic indices of lipid peroxidation and peroxidative tissue injury. Free Radic. Biol. Med. 9515–540 (1990).

    Article CAS Google Scholar

  • Borner, GHH, Lilley, KS, Stevens, TJ & Dupree, P. Identification of glycosylphosphatidylinositol-anchored proteins in Arabidopsis. A proteomic and genomic analysis. Plant Physiol. 132568–577 (2003).

    Article CAS Google Scholar

  • The Arabidopsis Information Resource (2022) Phoenix Bioinformatics. https://www.arabidopsis.org/index.jsp.

  • Hasan, MM et al. Ozone induced stomatal regulation, MAPK and phytohormone signaling in plants. Int. J.Mol. Sci. 226304 (2021).

    Article CAS Google Scholar

  • Ranieri, A., Castagna, J., Pacini, B., Baldan, AMS & Soldatini, GF Early production and scavenging of hydrogen peroxide in the apoplast of sunflower plants exposed to ozone. J.Exp. Bot. 542529–2540 (2003).

    Article CAS Google Scholar

  • Cona, A., Rea, G., Angelini, R., Federico, R. & Tavladoraki, P. Functions of amine oxidases in plant development and defence. Trends Plant Sci. 1180–88 (2006).

    Article CAS Google Scholar

  • Yoda, H., Yamaguchi, Y. & Sano, H. Induction of hypersensitive cell death by hydrogen peroxide produced through polyamine degradation in tobacco plants. Plant Physiol. 1321973–1981 (2003).

    Article CAS Google Scholar

  • An, Z., Jing, W., Liu, Y. & Zhang, W. Hydrogen peroxide generated by copper amine oxidase is involved in abscisic acid-induced stomata closure in Vicia faba. J.Exp. Bot. 59815–825 (2008).

    Article CAS Google Scholar

  • Drew, JE & Gatehouse, JA Isolation and characterization of a pea pod cDNA encoding a putative blue copper protein correlated with lignin deposition. J.Exp. Bot. 451873–1884 (1994).

    Article CAS Google Scholar

  • Wise, MJ & Tunnacliffe, A. POPP the question: What do LEA proteins do?. Trends Plant Sci. 913–17 (2004).

    Article CAS Google Scholar

  • Tunnacliffe, A. & Wise, MJ. The continuing conundrum of the LEA proteins. Naturwissenschaften 94791–812 (2007).

    Article ADS CAS Google Scholar

  • Hara, M., Fujinaga, M. & Kuboi, T. Radical scavenging activity and oxidative modification of citrus dehydrin. Plant Physiol. Biochem. 42657–662 (2004).

    Article CAS Google Scholar

  • Mowla, SB et al. Yeast complementation reveals a role for an Arabidopsis thaliana late embryogenesis abundant (LEA)-like protein in oxidative stress tolerance. Plant J. 48743–756 (2006).

    Article CAS Google Scholar

  • Richards, KD, Schott, EJ, Sharma, YK, Davis, KR & Gardner, RC Aluminum induces oxidative stress genes in Arabidopsis thaliana. Plant Physiol. 116409–418 (1998).

    Article CAS Google Scholar

  • Miller, JD, Arteca, RN & Pell, EJ Senescence-associated gene expression during ozone-induced leaf senescence in Arabidopsis. Plant Physiol. 1201015–1023 (1999).

    Article CAS Google Scholar

  • Ezaki, B., Sivaguru, M., Ezaki, Y., Matsumoto, H. & Gardner, RC Acquisition of aluminum tolerance in Saccharomyces cerevisiae by expression of the BCB or ntGDI1 gene derived from plants. FEMS Microbiol. Lett. 17181–87 (1999).

    Article CAS Google Scholar

  • Ezaki, B., Gardner, RC, Ezaki, Y. & Matsumoto, H. Expression of aluminum-induced genes in transgenic Arabidopsis plants can ameliorate aluminum stress and/or oxidative stress. Plant Physiol. 122657–665 (2000).

    Article CAS Google Scholar

  • Ezaki, B., Sasaki, K., Matsumoto, H. & Nakashima, S. Functions of two genes in aluminum (Al) stress resistance: Repression of oxidative damage by the AtBCB gene and promotion of efflux of Al ions by the ntGDI1 gene. J.Exp. Bot. 562661–2671 (2005).

    Article CAS Google Scholar

  • Cabane, M. et al. Condensed lignins are synthesized in poplar leaves exposed to ozone. Plant Physiol. 134586–594 (2004).

    Article Google Scholar

  • Underwood, W. The plant cell wall: A dynamic barrier against pathogen invasion. Front. plant science. 385 (2012).

    Article CAS Google Scholar

  • Liu, Q., Luo, L. & Zheng, L. Lignins: biosynthesis and biological functions in plants. Int. J.Mol. Sci. 19335 (2018).

    Article Google Scholar

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