1,075
Views
2
CrossRef citations to date
0
Altmetric
Research Article

Conyza blinii responds to the changes of exogenous iron through auxin-terpenoids metabolism pathway

, , , , , , ORCID Icon, , & show all
Pages 485-495 | Received 22 Nov 2021, Accepted 10 Mar 2022, Published online: 24 Mar 2022

References

  • A, C. S., B, R. Y., A, T. S., C, L. Z., A, Y. Y., & A, H. W. 2015. OsARF16, a transcription factor regulating auxin redistribution, is required for iron deficiency response in rice (Oryza sativa L.). Plant Sci. 231(231):148–158.
  • Albano JP, Miller WB, Halbrooks MC. 1996. Iron toxicity stress causes bronze speckle, a specific physiological disorder of marigold (Tagetes erecta L.). Am Soc Horticult Sci. 121(3):8.
  • Asch F, Becker M, Kpongor DS. 2010. A quick and efficient screen for resistance to iron toxicity in lowland rice. J Plant Nutr Soil Sci = Zeitschrift fuer Pflanzenernaehrung und Bodenkunde. 168(6):764–773.
  • Audebert A, Sahrawat KL. 2000. Mechanisms for iron toxicity tolerance in lowland rice. J Plant Nutr. 23(11-12):1877–1885.
  • Bacaicoa E, Mora V, Zamarreno AM, Fuentes M, Casanova E, Garcia-Mina JM. 2011. Auxin: a major player in the shoot-to-root regulation of root Fe-stress physiological responses to Fe deficiency in cucumber plants. Plant Physiol Biochem. 49(5):545–556. doi:10.1016/j.plaphy.2011.02.018.
  • Barber J, Barber J. 1995. Molecular basis of the vulnerability of photosystem II to damage by light. Funct Plant Biol. 22(2):201–208.
  • Becker M, Asch F. 2010. Iron toxicity in rice: conditions and management concepts. J Plant Nutr Soil Sci = Zeitschrift fuer Pflanzenernaehrung und Bodenkunde. 168(4):558–573.
  • Brown JC, Ambler JE. 2010. Iron-stress response in tomato (Lycopersicon esculentum) 1. Sites of Fe reduction, absorption and transport. Physiol Plantarum. 31(3):221–224.
  • Chen WW, Yang JL, Qin C, Jin CW, Mo JH, Ye T, Zheng SJ. 2010. Nitric oxide acts downstream of auxin to trigger root ferric-chelate reductase activity in response to iron deficiency in Arabidopsis. Plant Physiol. 154(2):810–819. doi:10.1104/pp.110.161109.
  • Davis SJ, Kurepa J, Vierstra RD. 1999. The Arabidopsis thaliana HY1 locus, required for phytochrome-chromophore biosynthesis, encodes a protein related to heme oxygenases. Proc Natl Acad Sci U S A. 96(11):6541–6546. doi:10.1073/pnas.96.11.6541.
  • Eva B. 2003. Local, efflux-dependent auxin gradients as a common module for plant organ formation. Cell. 5:115.
  • Fett-Neto AG, Fett JP, Veira Goulart LW, Pasquali G, Termignoni RR, Ferreira AG. 2001. Distinct effects of auxin and light on adventitious root development in Eucalyptus saligna and Eucalyptus globulus. Tree Physiol. 21(7):457–464. doi:10.1093/treephys/21.7.457.
  • Guerinot ML, Yi Y. 1994. Iron: nutritious, noxious, and not readily available. Plant Physiol. 104(3):815–820.
  • Hameed A, Rasool S, Azooz MM, Hossain MA, Hanger A, & Ahmad MA. 2016. Heavy metal stress. Plant Met Inter. 557–583.
  • Kong WW, Zhang LP, Guo K, Liu ZP, Yang ZM. 2010. Carbon monoxide improves adaptation of Arabidopsis to iron deficiency. Plant Biotechnol J. 8(1):88–99. doi:10.1111/j.1467-7652.2009.00469.x.
  • la MSG, Briat J-FO, Vert GG, Curie C. 2010. Cytokinins negatively regulate the root iron uptake machinery in Arabidopsis through a growth-dependent pathway. Plant J. 55(2):289–300.
  • Li G, Xu W, Kronzucker HJ, Shi W. 2015. Ethylene is critical to the maintenance of primary root growth and Fe homeostasis under Fe stress in Arabidopsis. J Exp Bot. 66(7):2041–2054. doi:10.1093/jxb/erv005.
  • Li J, Wang Y, Dong Y, Zhang W, Shi L. 2021. Correction: The chromosome-based lavender genome provides new insights into Lamiaceae evolution and terpenoid biosynthesis. Horticult Res. 8(1):90.
  • Lobreaux S, Briat JF. 1991. Ferritin accumulation and degradation in different organs of pea (Pisum sativum) during development. Biochem J. 274(2):601–606.
  • Long SP. 1994. Photoinhibition of photosynthesis in nature. Annu Rev Plant Biol. 45(1):633–661.
  • Mao X, Tao C, Olyarchuk JG, Wei L. 2005. Automated genome annotation and pathway identification using the KEGG Orthology (KO) as a controlled vocabulary. Bioinformatics. 21(19):3787–3793.
  • Marie B, Vermeer JEM, De Bellis D, Wang P, Naseer S, Andersen T, Humbel B, Nawrath C, Takano J, Salt DE, et al. 2016. Adaptation of root function by nutrient-induced plasticity of endodermal differentiation. Cell. 164(3):447–459.
  • Peleg Z, Blumwald E. 2011. Hormone balance and abiotic stress tolerance in crop plants. Curr Opin Plant Biol. 14:290–295.
  • Picman AK, Schneider EF, Gershenzon J. 1990. Antifungal activities of sunflower terpenoids. Biochem System Ecol. 18(5):325–328.
  • Ping J, Liu H, Gao T, Hua X. 2013. Glandular trichomes and essential oil of Thymus quinquecostatus. Sci World J. 2013(3):387952.
  • Sakata T. 2010. Auxins reverse plant male sterility caused by high temperatures. Plant Signal Behav. 107(11):8569–8574.
  • Schmidt W, Tittel J, Schikora A. 2000. Role of hormones in the induction of iron deficiency responses in Arabidopsis roots. Plant Physiol. 122(4):1109–1118.
  • Shakirova FM, Sakhabutdinova AR, Bezrukova MV, Fatkhutdinova RA, Fatkhutdinova DR. 2003. Changes in the hormonal status of wheat seedlings induced by salicylic acid and salinity. Plant Sci. 164(3):317–322.
  • Shibasaki K, Uemura M, Tsurumi S, Rahman A. 2009. Auxin response in Arabidopsis under cold stress: underlying molecular mechanisms. Plant Cell. 21(12):3823–3838.
  • Sixue C. 2007. Functional characterization of AtATM1, AtATM2, and AtATM3, a subfamily of Arabidopsis half-molecule ATPbinding cassette transporters implicated in iron homeostasis. J Biol Chem. 282(29):21561–21571.
  • Stefan K. 2005. Plant development: auxin in loops. Current Biol. 15(6):R208–R2010.
  • Tingey DT, Manning M, Grothaus LC, Burns WF. 1980. Influence of light and temperature on monoterpene emission rates from slash pine. Plant Physiol. 65(5):797–801. doi:10.1104/pp.65.5.797.
  • Wu T, Zhang HT, Wang Y, Jia WS, Xu XF, Zhang XZ, Han ZH. 2012. Induction of root Fe(lll) reductase activity and proton extrusion by iron deficiency is mediated by auxin-based systemic signalling in Malus xiaojinensis. J Exp Bot. 63(2):859–870. doi:10.1093/jxb/err314.
  • Xu S, Lin D, Sun H, Yang X, Zhang X. 2015. Excess iron alters the fatty acid composition of chloroplast membrane and decreases the photosynthesis rate: a study in hydroponic pea seedlings. Acta Physiol Plantarum. 37:10.
  • Yan T, Chen M, Shen Q, Li L, Fu X, Pan Q, Tang Y, Shi P, Lv Z, Jiang W, et al. 2016. HOMEODOMAIN PROTEIN 1 is required for jasmonate-mediated glandular trichome initiation in Artemisia annua. New Phytol. 213(3):1145–1155.
  • Yang CR, He ZT, Li XC, Zheng QT, He CH, Jing Y, Morita T. 1989. Blinin, a neoclerodane diterpene from Conyza blinii. Phytochemistry. 28(11):3131–3134.
  • Yang L, Ji J, Wang H, Harris-Shultz KR, Hu X. 2016. Carbon monoxide interacts with auxin and nitric oxide to cope with iron deficiency in Arabidopsis. Front Plant Sci. 7(e44843):112.
  • Young M, Wakefield MJ, Smyth GK, Oshlack A. 2010. Gene ontology analysis for RNA-seq: accounting for selection bias. Genome Biol. 11(2):R14–R14.
  • Zhan J, Yang Q, Lin Z, Zheng T, Wang M, Sun W, Bu T, Tang Z, Li C, Han X, et al. 2021. Enhanced antioxidant capacity and upregulated transporter genes contribute to the UV-B-induced increase in blinin in Conyza blinii. Environ Sci Pollut Res Int. 28(11):13275–13287. doi:10.1007/s11356-020-11502-8.
  • Zheng T, Wang M, Zhan J, Sun W, Yang Q, Lin Z, Bu T, Tang Z, Li C, et al. 2020. Ferrous iron-induced increases in capitate glandular trichome density and upregulation of CbHO-1 contributes to increases in blinin content in Conyza blinii. Planta. 252(5):81. doi:10.1007/s00425-020-03492-1.