2,293
Views
9
CrossRef citations to date
0
Altmetric
Mini-Review

Optimal Defense Theory 2.0: tissue-specific stress defense prioritization as an extra layer of complexity

& ORCID Icon
Pages 91-95 | Received 15 May 2019, Accepted 21 May 2019, Published online: 10 Jun 2019

References

  • Pandey P, Irulappan V, Bagavathiannan MV, et al. Impact of combined abiotic and biotic stresses on plant growth and avenues for crop improvement by exploiting physio-morphological traits. Front Plant Sci. 2017 Apr 18;8.
  • Jones JD, Dangl JL. The plant immune system. Nature. 2006 Nov 16;444(7117):323–329.
  • Zhu JK. Abiotic stress signaling and responses in plants. Cell. 2016 Oct 6;167(2):313–324.
  • Mine A, Sato M, Tsuda K. Toward a systems understanding of plant–microbe interactions [Review]. Front Plant Sci. 2014 Aug 25;5(423).
  • Daszkowska-Golec A, Szarejko I. Open or close the gate - stomata action under the control of phytohormones in drought stress conditions. Front Plant Sci. 2013;4:138.
  • Gao J-P, Chao D-Y, Lin H-X. Toward understanding molecular mechanisms of abiotic stress responses in rice. Rice. 2008 sep 1;1(1):36–51.
  • Kim W-Y, Ali Z, Park HJ, et al. Release of SOS2 kinase from sequestration with GIGANTEA determines salt tolerance in Arabidopsis. Nat Commun. 2013;4:1352.
  • Atkinson NJ, Urwin PE. The interaction of plant biotic and abiotic stresses: from genes to the field. J Exp Bot. 2012 Jun;63(10):3523–3543.
  • Nguyen D, Rieu I, Mariani C, et al. How plants handle multiple stresses: hormonal interactions underlying responses to abiotic stress and insect herbivory. Plant Mol Biol. 2016;91(6):727–740.
  • Bostock RM, Pye MF, Roubtsova TV. Predisposition in plant disease: exploiting the nexus in abiotic and biotic stress perception and response. Annu Rev Phytopathol. 2014;52(1):517–549.
  • Berens ML, Berry HM, Mine A, et al. Evolution of hormone signaling networks in plant defense. Annu Rev Phytopathol. 2017;55(1):401–425.
  • Lievens L, Pollier J, Goossens A, et al. Abscisic acid as pathogen effector and immune regulator [Review]. Front Plant Sci. 2017;8(587).
  • Thaler JS, Humphrey PT, Whiteman NK. Evolution of jasmonate and salicylate signal crosstalk. Trends Plant Sci. 2012;17(5):260–270.
  • Spoel SH, Dong X. Making sense of hormone crosstalk during plant immune responses. Cell Host Microbe. 2008;3(6):348–351.
  • Bai Y, Kissoudis C, Yan Z, et al. Plant behaviour under combined stress: tomato responses to combined salinity and pathogen stress. Plant J. 2018;93(4):781–793.
  • Vos IA, Moritz L, Pieterse CMJ, et al. Impact of hormonal crosstalk on plant resistance and fitness under multi-attacker conditions [Original Research]. Front Plant Sci. 2015;6(639).
  • Coolen S, Proietti S, Hickman R, et al. Transcriptome dynamics of Arabidopsis during sequential biotic and abiotic stresses. Plant J. 2016;86(3):249–267.
  • Chandran D, Inada N, Hather G, et al. Laser microdissection of Arabidopsis cells at the powdery mildew infection site reveals site-specific processes and regulators. Proc Natl Acad Sci U S A. 2010;107(1):460–465.
  • Moustaka J, Tanou G, Adamakis I-D, et al. Leaf age-dependent photoprotective and antioxidative response mechanisms to paraquat-induced oxidative stress in arabidopsis thaliana. Int J Mol Sci. 2015;16:6.
  • Zeier J. Age-dependent variations of local and systemic defence responses in Arabidopsis leaves towards an avirulent strain of Pseudomonas syringae. Physiol Mol Plant Pathol. 2005;66(1):30–39.
  • Matsuo M, Oelmüller R. REDOX RESPONSIVE TRANSCRIPTION FACTOR1 is involved in age-dependent and systemic stress signaling. Plant Signal Behav. 2015;10(11):e1051279.
  • Mao Y-B, Liu Y-Q, Chen D-Y, et al. Jasmonate response decay and defense metabolite accumulation contributes to age-regulated dynamics of plant insect resistance. Nat Commun. 2017;8:13925.
  • Wilson DC, Kempthorne CJ, Carella P, et al. Age-related resistance in arabidopsis thaliana involves the MADS-domain transcription factor SHORT VEGETATIVE PHASE and direct action of salicylic acid on pseudomonas syringae. Mol Plant Microbe Interact. 2017 Nov;30(11):919–929.
  • Shigenaga AM, Berens ML, Tsuda K, et al. Towards engineering of hormonal crosstalk in plant immunity. Curr Opin Plant Biol. 2017;38:164–172.
  • Campos ML, Yoshida Y, Major IT, et al. Rewiring of jasmonate and phytochrome B signalling uncouples plant growth-defense tradeoffs. Nat Commun. 2016 Aug;30(7):12570.
  • Meldau S, Erb M, Baldwin IT. Defence on demand: mechanisms behind optimal defence patterns. Ann Bot. 2012 Dec;110(8):1503–1514.
  • Keith RA, Mitchell-Olds T. Testing the optimal defense hypothesis in nature: variation for glucosinolate profiles within plants. PLoS One. 2017;12(7):e0180971.
  • Bielczynski LW, Lacki MK, Hoefnagels I, et al. Leaf and plant age affects photosynthetic performance and photoprotective capacity. Plant Physiol. 2017 Dec;175(4):1634–1648.
  • Thomas H. Senescence, ageing and death of the whole plant. New Phytol. 2013 Feb;197(3):696–711.
  • Haffner E, Konietzki S, Diederichsen E. Keeping control: the role of senescence and development in plant pathogenesis and defense. Plants (Basel). 2015 Jul 13;4(3):449–488.
  • Berens ML, Wolinska KW, Spaepen S, et al. Balancing trade-offs between biotic and abiotic stress responses through leaf age-dependent variation in stress hormone cross-talk. Proc Nat Acad Sci. 2019;116(6):2364–2373.
  • Torrens-Spence MP, Bobokalonova A,Carballo V, et al. PBS3 and EPS1 complete salicylic acid biosynthesis from isochorismate in Arabidopsis. Biorxiv. 2019:601948.
  • Rekhter D, Mohnike L,Feussner K, et al. Enhanced Disease Susceptibility 5 (EDS5) is required for N-hydroxy pipecolic acid formation. Biorxiv. 2019:630723.
  • Wang Y, Jiao Y. Advances in plant cell type-specific genome-wide studies of gene expression. Front Biol. 2011;6(5):384.
  • Li D, Heiling S, Baldwin IT, et al. Illuminating a plant’s tissue-specific metabolic diversity using computational metabolomics and information theory. Proc Nat Acad Sci. 2016. 113(47):E7610–E7618.
  • Giacomello S, Salmen F, Terebieniec BK, et al. Spatially resolved transcriptome profiling in model plant species. Nat Plants. 2017 May;8(3):17061.
  • Sakr S, Wang M, Dedaldechamp F, et al. The sugar-signaling hub: overview of regulators and interaction with the hormonal and metabolic network. Int J Mol Sci. 2018;19:9.
  • Yamada K, Saijo Y, Nakagami H, et al. Regulation of sugar transporter activity for antibacterial defense in Arabidopsis. Science. 2016 Dec 16;354(6318):1427–1430.
  • Rosa M, Prado C, Podazza G, et al. Soluble sugars–metabolism, sensing and abiotic stress: a complex network in the life of plants. Plant Signal Behav. 2009;4(5):388–393.
  • Mhamdi A, Van Breusegem F. Reactive oxygen species in plant development. Development. 2018 Aug 9;145(15).
  • Kadota Y, Shirasu K, Zipfel C. Regulation of the NADPH oxidase RBOHD during plant immunity. Plant Cell Physiol. 2015 Aug;56(8):1472–1480.
  • Qi J, Wang J, Gong Z, et al. Apoplastic ROS signaling in plant immunity. Curr Opin Plant Biol. 2017;38:92–100.
  • Choudhury FK, Rivero RM, Blumwald E, et al. Reactive oxygen species, abiotic stress and stress combination. Plant J. 2017 Jun;90(5):856–867.
  • Srivalli S, Khanna-Chopra R. Delayed wheat flag leaf senescence due to removal of spikelets is associated with increased activities of leaf antioxidant enzymes, reduced glutathione/oxidized glutathione ratio and oxidative damage to mitochondrial proteins. Plant Physiol Biochem. 2009;47(8):663–670.
  • Yuan H-M, Liu W-C, Lu Y-T. CATALASE2 coordinates SA-mediated repression of both auxin accumulation and JA biosynthesis in plant defenses. Cell Host Microbe. 2017;21(2):143–155.