Micronutrient deficiency-induced oxidative stress in plants.

Antioxidants Lipid peroxidation Micronutrient deficiency Oxidative stress ROS signaling Reactive oxygen species

Journal

Plant cell reports
ISSN: 1432-203X
Titre abrégé: Plant Cell Rep
Pays: Germany
ID NLM: 9880970

Informations de publication

Date de publication:
12 Aug 2024
Historique:
received: 11 01 2024
accepted: 01 08 2024
medline: 12 8 2024
pubmed: 12 8 2024
entrez: 12 8 2024
Statut: epublish

Résumé

Micronutrients like iron (Fe), zinc (Zn), copper (Cu), manganese (Mn), boron (B), nickel (Ni), and molybdenum (Mo) perform significant roles in the regulation of plant metabolism, growth, and development. Micronutrients, namely Fe, Zn, Cu, Mn, and Ni, are involved in oxidative stress and antioxidant defense as they are cofactors or activators of various antioxidant enzymes, viz., superoxide dismutase (Fe, Cu/Zn, Mn, and Ni), catalase (Fe), and ascorbate peroxidase (Fe). An effort has been made to incorporate recent advances along with classical work done on the micronutrient deficiency-induced oxidative stress and associated antioxidant responses of plants. Deficiency of a micronutrient produces ROS in the cellular compartments. Enzymatic and non-enzymatic antioxidant defense systems are often modulated by micronutrient deficiency to regulate redox balance and scavenge deleterious ROS for the safety of cellular constituents. ROS can strike cellular constituents such as lipids, proteins, and nucleic acids and can destruct cellular membranes and proteins. ROS might act as a signaling molecule and activate the antioxidant proteins by interacting with signaling partners such as respiratory burst oxidase homolog (RBOH), G-proteins, Ca

Identifiants

pubmed: 39133336
doi: 10.1007/s00299-024-03297-6
pii: 10.1007/s00299-024-03297-6
doi:

Substances chimiques

Micronutrients 0
Reactive Oxygen Species 0
Antioxidants 0

Types de publication

Journal Article Review

Langues

eng

Sous-ensembles de citation

IM

Pagination

213

Subventions

Organisme : SERB
ID : TAR/2019/000064

Informations de copyright

© 2024. The Author(s), under exclusive licence to Springer-Verlag GmbH Germany, part of Springer Nature.

Références

Abdel-Ghany SE, Müller-Moulé P, Niyogi KK, Pilon M, Shikanai T (2005) Two P-type ATPases are required for copper delivery in Arabidopsis thaliana chloroplasts. Plant Cell 17:1233
pubmed: 15772282 pmcid: 1087999 doi: 10.1105/tpc.104.030452
Agarwala SC, Bisht SS, Sharma CP (1977) Relative effectiveness of certain heavy metals in producing toxicity and symptoms of iron deficiency in barley. Canad J Bot 55:1299–1307
doi: 10.1139/b77-151
Agarwala SC, Sharma CP, Farrooq S, Chatterjee C (1978) Effect of molybdenum deficiency on the growth and metabolism of corn plants raised in sand culture. Canad J Bot 56:1905–1908
doi: 10.1139/b78-227
Agarwala SC, Chatterjee C, Sharma PN, Sharma CP, Nautiyal N (1979) Pollen development in maize plants subjected to molybdenum deficiency. Canad J Bot 57:1946–1950
doi: 10.1139/b79-244
Agarwala SC, Sharma PN, Chatterjee C, Sharma CP (1981) Development and enzymatic changes during pollen development in boron deficient maize plants. J Plant Nutr 3:329–336
doi: 10.1080/01904168109362841
Agarwal S, Sairam RK, Meena RC, Tyagi A, Srivastava GC (2006) Effect of excess and deficient levels of iron and copper on oxidative stress and antioxidant enzymes activity in wheat. J Plant Sci 1:86–97
doi: 10.3923/jps.2006.86.97
Ahmed N, Zhang B, Chachar Z, Li J, Xiao G, Wang Q, Hayat F, Deng L, Bozdar B, Tu P (2024) Micronutrients and their effects on horticultural crop quality, productivity and sustainability. Sci Hortic 323:112512
doi: 10.1016/j.scienta.2023.112512
Akther MS, Das U, Tahura S, Prity SA, Islam M, Kabir AH (2020) Regulation of Zn uptake and redox status confers Zn deficiency tolerance in tomato. Sci Hortic 273:109624
doi: 10.1016/j.scienta.2020.109624
Alejandro S, Höller S, Meier B, Peiter E (2020) Manganese in plants: from acquisition to subcellular allocation. Front Plant Sci 11:300
pubmed: 32273877 pmcid: 7113377 doi: 10.3389/fpls.2020.00300
Allen MD, Kropat J, Tottey S, Del Campo JA, Merchant SS (2007) Manganese deficiency in Chlamydomonas results in loss of photosystem II and MnSOD function, sensitivity to peroxides, and secondary phosphorus and iron deficiency. Plant Physiol 143:263–277
pubmed: 17085511 pmcid: 1761973 doi: 10.1104/pp.106.088609
Alscher RG, Donahue JL, Cramer CL (1997) Reactive oxygen species and antioxidants: relationships in green cells. Physiol Plant 100:224–233
doi: 10.1111/j.1399-3054.1997.tb04778.x
Anonymous (2001) 100 and 50 years ago. Nature 412:30–30
doi: 10.1038/35083667
Apel K, Hirt H (2004) Reactive oxygen species: metabolism, oxidative stress, and signal transduction. Annu Rev Plant Biol 55:373–399
pubmed: 15377225 doi: 10.1146/annurev.arplant.55.031903.141701
Apostolova P, Yaneva I (2006) Antioxidative defence in winter wheat plants during early cold acclimation. Gen Appl Plant Physiol Spec Issue 2006:101–108
Arnon DI, Stout P (1939) The essentiality of certain elements in minute quantity for plants with special reference to copper. Plant Physiol 14:371
pubmed: 16653564 pmcid: 437744 doi: 10.1104/pp.14.2.371
Asai T, Tena G, Plotnikova J, Willmann MR, Chiu W-L, Gomez-Gomez L, Boller T, Ausubel FM, Sheen J (2002) MAP kinase signalling cascade in Arabidopsis innate immunity. Nature 415:977–983
pubmed: 11875555 doi: 10.1038/415977a
Asai S, Ichikawa T, Nomura H, Kobayashi M, Kamiyoshihara Y, Mori H, Kadota Y, Zipfel C, Jones JDG, Yoshioka H (2013) The variable domain of a plant calcium-dependent protein kinase (CDPK) confers subcellular localization and substrate recognition for NADPH oxidase. J Biol Chem 288:14332–14340
pubmed: 23569203 pmcid: 3656289 doi: 10.1074/jbc.M112.448910
Assunção AGL, Herrero E, Lin Y-F, Huettel B, Talukdar S, Smaczniak C, Immink RGH, van Eldik M, Fiers M, Schat H, Aarts MGM (2010) Arabidopsis thaliana transcription factors bZIP19 and bZIP23 regulate the adaptation to zinc deficiency. Proc Natl Acad Sci USA 107:10296–10301
pubmed: 20479230 pmcid: 2890486 doi: 10.1073/pnas.1004788107
Astolfi S, Zuchi S, Neumann G, Cesco S, di Toppi LS, Pinton R (2012) Response of barley plants to Fe deficiency and Cd contamination as affected by S starvation. J Exp Bot 63:1241–1250
pubmed: 22090437 doi: 10.1093/jxb/err344
Ayala MB, Sandmann G (1988) Activities of copper containing proteins in copper depleted pea leaves. Physiol Plant 72:801–806
doi: 10.1111/j.1399-3054.1988.tb06382.x
Balazadeh S, Jaspert N, Arif M, Mueller-Roeber B, Maurino V (2012) Expression of ROS-responsive genes and transcription factors after metabolic formation of H
doi: 10.3389/fpls.2012.00234 pubmed: 23125844 pmcid: 3485569
Balparda M, Schmitz J, Duemmel M, Wuthenow IC, Schmidt M, Alseekh S, Fernie AR, Lercher MJ, Maurino VG (2023) Viridiplantae-specific GLXI and GLXII isoforms co-evolved and detoxify glucosone in planta. Plant Physiol 191:1214–1233
pubmed: 36423222 doi: 10.1093/plphys/kiac526
Barberon M, Zelazny E, Robert S, Conéjéro G, Curie C, Friml J, Vert G (2011) Monoubiquitin-dependent endocytosis of the iron-regulated transporter 1 (IRT1) transporter controls iron uptake in plants. Proc Natl Acad Sci USA 108:E450–E458
pubmed: 21628566 pmcid: 3156158 doi: 10.1073/pnas.1100659108
Barberon M, Dubeaux G, Kolb C, Isono E, Zelazny E, Vert G (2014) Polarization of iron-regulated transporter 1 (IRT1) to the plant-soil interface plays crucial role in metal homeostasis. Proc Natl Acad Sci USA 111:8293–8298
pubmed: 24843126 pmcid: 4050562 doi: 10.1073/pnas.1402262111
Bashir K, Nagasaka S, Itai RN, Kobayashi T, Takahashi M, Nakanishi H, Mori S, Nishizawa NK (2007) Expression and enzyme activity of glutathione reductase is upregulated by Fe-deficiency in graminaceous plants. Plant Mol Biol 65:277–284
pubmed: 17710555 doi: 10.1007/s11103-007-9216-1
Bashir K, Hanada K, Shimizu M, Seki M, Nakanishi H, Nishizawa NK (2014) Transcriptomic analysis of rice in response to iron deficiency and excess. Rice 7:18
pubmed: 26224551 pmcid: 4884027 doi: 10.1186/s12284-014-0018-1
Batova Y, Kaznina N, Repkina N, Titov A (2022) Effect of zinc deficiency and excess on catalase activity and HvCAT2 gene expression in barley. Vegetos 35:833–838
doi: 10.1007/s42535-022-00370-x
Becana M, Klucas RV (1992) Transition metals in legume root nodules: iron-dependent free radical production increases during nodule senescence. Proc Natl Acad Sci USA 89:8958–8962
pubmed: 11607326 pmcid: 50043 doi: 10.1073/pnas.89.19.8958
Begum RA, Messenger DJ, Fry SC (2023) Making and breaking of boron bridges in the pectic domain rhamnogalacturonan-II at apoplastic pH in vivo and in vitro. Plant J 113:1310–1329
pubmed: 36658763 pmcid: 10952590 doi: 10.1111/tpj.16112
Benschop JJ, Mohammed S, Flaherty M, Heck AJR, Slijper M, Menke FLH (2007) Quantitative phosphoproteomics of early elicitor signaling in Arabidopsis. Mol Cell Prot 6:1198
doi: 10.1074/mcp.M600429-MCP200
Bernal M, Casero D, Singh V, Wilson GT, Grande A, Yang H, Dodani SC, Pellegrini M, Huijser P, Connolly EL, Merchant SS, Krämer U (2012) Transcriptome sequencing identifies SPL7-regulated copper acquisition genes FRO4/FRO5 and the copper dependence of iron homeostasis in Arabidopsis. Plant Cell 24:738–761
pubmed: 22374396 pmcid: 3315244 doi: 10.1105/tpc.111.090431
Blasco B, Navarro-León E, Ruiz JM (2018) Oxidative stress in relation with micronutrient deficiency or toxicity. In: Hossain MA, Kamiya T, Burritt DJ, Tran LSP, Fujiwara T (eds) Plant micronutrient use efficiency molecular and genomic perspectives in crop plants. Elsevier, Amsterdam, pp 181–194
Blevins DG, Lukaszewski KM (1998) Boron in plant structure and function. Annu Rev Plant Physiol Plant Mol Biol 49:481–500
pubmed: 15012243 doi: 10.1146/annurev.arplant.49.1.481
Bouche N, Yellin A, Snedden WA, Fromm H (2005) Plant-specific calmodulin-binding proteins. Annu Rev Plant Biol 56:435–466
pubmed: 15862103 doi: 10.1146/annurev.arplant.56.032604.144224
Bourdais G, Burdiak P, Gauthier A, Nitsch L, Salojärvi J, Rayapuram C, Idänheimo N, Hunter K, Kimura S, Merilo E, Vaattovaara A, Oracz K, Kaufholdt D, Pallon A, Anggoro DT, Glów D, Lowe J, Zhou J, Mohammadi O, Puukko T, Albert A, Lang H, Ernst D, Kollist H, Brosché M, Durner J, Borst JW, Collinge DB, Karpiński S, Lyngkjær MF, Robatzek S, Wrzaczek M, Kangasjärvi J (2015) Large-scale phenomics identifies primary and fine-tuning roles for CRKs in responses related to oxidative stress. PLOS Gen 11:e1005373
doi: 10.1371/journal.pgen.1005373
Broadley MR, White PJ, Hammond JP, Zelko I, Lux A (2007) Zinc in plants. New Phytol 173:677–702
pubmed: 17286818 doi: 10.1111/j.1469-8137.2007.01996.x
Broadley M, Brown P, Cakmak I, Rengel Z, Zhao F (2012) Chapter 7–function of nutrients: micronutrients. In: Marschner P (ed) Marschner’s mineral nutrition of higher plants, 3rd edn. Academic Press, San Diego, pp 191–248
doi: 10.1016/B978-0-12-384905-2.00007-8
Burkhead JL, Gogolin Reynolds KA, Abdel-Ghany SE, Cohu CM, Pilon M (2009) Copper homeostasis. New Phytol 182:799–816
pubmed: 19402880 doi: 10.1111/j.1469-8137.2009.02846.x
Cakmak I (2000) Possible roles of zinc in protecting plant cells from damage by reactive oxygen species. New Phytol 146:185–205
pubmed: 33862977 doi: 10.1046/j.1469-8137.2000.00630.x
Cakmak I, Marschner H (1988) Zinc-dependent changes in ESR signals, NADPH oxidase and plasma membrane permeability in cotton roots. Physiol Plant 73:182–186
doi: 10.1111/j.1399-3054.1988.tb09214.x
Cakmak I, Romheld V (1997) Boron deficiency-induced impairments of cellular functions in plants. Plant Soil 193:71–83
doi: 10.1023/A:1004259808322
Cakmak I, Brown P, Colmenero-Flores JM, Husted S, Kutman BY, Nikolic M, Rengel Z, Schmidt SB, Zhao FJ (2023) Micronutrients. Marschner’s mineral nutrition of plants. Elsevier, Amsterdam, pp 283–385
doi: 10.1016/B978-0-12-819773-8.00017-4
Camacho-Cristóbal JJ, Herrera-Rodríguez MB, Beato VM, Rexach J, Navarro-Gochicoa MT, Maldonado JM, González-Fontes A (2008) The expression of several cell wall-related genes in Arabidopsis roots is down-regulated under boron deficiency. Environ Exp Bot 63:351–358
doi: 10.1016/j.envexpbot.2007.12.004
Camacho-Cristóbal JJ, Martín-Rejano EM, Herrera-Rodríguez MB, Navarro-Gochicoa MT, Rexach J, González-Fontes A (2015) Boron deficiency inhibits root cell elongation via an ethylene/auxin/ROS-dependent pathway in Arabidopsis seedlings. J Exp Bot 66:3831–3840
pubmed: 25922480 pmcid: 4473985 doi: 10.1093/jxb/erv186
Camp WV, Willekens H, Bowler C, Montagu MV, Inzé D, Reupold-Popp P, Sandermann H, Langebartels C (1994) Elevated levels of superoxide dismutase protect transgenic plants against ozone damage. Bio/technol 12:165–168
Candan N, Tarhan L (2011) Influence of manganese deficiency on metal ion uptake, antioxidant defense mechanism and lipid peroxidation levels in mentha piperita leaves. Acta Biol Cracov Ser Bot 53:20–25
Ceballos-Laita L, Gutierrez-Carbonell E, Takahashi D, Abadía A, Uemura M, Abadía J, López-Millán AF (2018) Effects of Fe and Mn deficiencies on the protein profiles of tomato (Solanum lycopersicum ) xylem sap as revealed by shotgun analyses. J Proteom 170:117–129
doi: 10.1016/j.jprot.2017.08.018
Charlier JB, Polese C, Nouet C, Carnol M, Bosman B, Kramer U, Motte P, Hanikenne M (2015) Zinc triggers a complex transcriptional and post-transcriptional regulation of the metal homeostasis gene FRD3 in Arabidopsis relatives. J Exp Bot 66:3865–3878
pubmed: 25900619 pmcid: 4473987 doi: 10.1093/jxb/erv188
Chatterjee C, Nautiyal N, Agarwala SC (1985) Metabolic changes in mustard plants associated with molybdenum deficiency. New Phytol 100:511–518
doi: 10.1111/j.1469-8137.1985.tb02797.x
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 154:810–819
pubmed: 20699398 pmcid: 2948983 doi: 10.1104/pp.110.161109
Chen M, Mishra S, Heckathorn SA, Frantz JM, Krause C (2014) Proteomic analysis of Arabidopsis thaliana leaves in response to acute boron deficiency and toxicity reveals effects on photosynthesis, carbohydrate metabolism, and protein synthesis. J Plant Physiol 171:235–242
pubmed: 23988561 doi: 10.1016/j.jplph.2013.07.008
Chen L, Xia F, Wang M, Mao P (2021) Physiological and proteomic analysis reveals the impact of boron deficiency and surplus on alfalfa (Medicago sativa L.) reproductive organs. Ecotoxicol Environ Saf 214:112083
pubmed: 33676054 doi: 10.1016/j.ecoenv.2021.112083
Chen X, Smith SM, Shabala S, Yu M (2023) Phytohormones in plant responses to boron deficiency and toxicity. J Exp Bot 74:743–754
pubmed: 36398724 doi: 10.1093/jxb/erac443
Chen X, Ru Y, Takahashi H, Nakazono M, Shabala S, Smith SM, Yu M (2024) Single-cell transcriptomic analysis of pea shoot development and cell-type-specific responses to boron deficiency. Plant J 117:302–322
pubmed: 37794835 doi: 10.1111/tpj.16487
Cheng L, Zhang S, Yang L, Wang Y, Yu B, Zhang F (2019) Comparative proteomics illustrates the complexity of Fe, Mn and Zn deficiency-responsive mechanisms of potato (Solanum tuberosum L.) plants in vitro. Planta 250:199–217
pubmed: 30976909 doi: 10.1007/s00425-019-03163-w
Choi W-G, Toyota M, Kim S-H, Hilleary R, Gilroy S (2014) Salt stress-induced Ca
pubmed: 24706854 pmcid: 4035928 doi: 10.1073/pnas.1319955111
Cobine PA, Billard V, Ourry A, Maillard A, Garnica M, Coquet L, Jouenne T, Cruz F, Garcia-Mina J-M, Yvin J-C, Etienne P (2014) Copper-deficiency in brassica napus induces copper remobilization, molybdenum accumulation and modification of the expression of chloroplastic proteins. PLoS ONE 9:e109889
doi: 10.1371/journal.pone.0109889
Cohu CM, Pilon M (2007) Regulation of superoxide dismutase expression by copper availability. Physiol Plant 129:747–755
doi: 10.1111/j.1399-3054.2007.00879.x
Cohu CM, Abdel-Ghany SE, Gogolin Reynolds KA, Onofrio AM, Bodecker JR, Kimbrel JA, Niyogi KK, Pilon M (2009) Copper delivery by the copper chaperone for chloroplast and cytosolic copper/zinc-superoxide dismutases: regulation and unexpected phenotypes in an Arabidopsis mutant. Mol Plant 2:1336–1350
pubmed: 19969519 doi: 10.1093/mp/ssp084
Desikan R, Mackerness SAH, Hancock JT, Neill SJ (2001) Regulation of the Arabidopsis transcriptome by oxidative stress. Plant Physiol 127:159–172
pubmed: 11553744 pmcid: 117972 doi: 10.1104/pp.127.1.159
Donnini S, Prinsi B, Negri AS, Vigani G, Espen L, Zocchi G (2010) Proteomic characterization of iron deficiency responses in Cucumis sativus L. roots. BMC Plant Biol 10:268
pubmed: 21122124 pmcid: 3016405 doi: 10.1186/1471-2229-10-268
Dordas C, Brown PH (2005) Boron deficiency affects cell viability, phenolic leakage and oxidative burst in rose cell cultures. Plant Soil 268:293–301
doi: 10.1007/s11104-004-0309-1
Droppa M, Masojidek J, Rózsa Z, Wolak A, Horváth L, Farkas T, Horváth G (1987) Characteristics of Cu deficiency-induced inhibition of photosynthetic electron transport in spinach chloroplasts. Biochim Biophys Acta BBA Bioenerg 891:75–84
doi: 10.1016/0005-2728(87)90085-5
Dubiella U, Seybold H, Durian G, Komander E, Lassig R, Witte C-P, Schulze WX, Romeis T (2013) Calcium-dependent protein kinase/NADPH oxidase activation circuit is required for rapid defense signal propagation. Proc Natl Acad Sci USA 110:8744
pubmed: 23650383 pmcid: 3666735 doi: 10.1073/pnas.1221294110
Feng YL, Lei YB, Li Z (2012) Micronutrient deficiencies accelerate leaf senescence in Amomum villosum. Bot Stud 53:345–352
Fenton HJH (1876) On a new reaction of tartaric acid. Chem News 33:190
Fichman Y, Mittler R (2021) Integration of electric, calcium, reactive oxygen species and hydraulic signals during rapid systemic signaling in plants. Plant J 107:7–20
pubmed: 34058040 doi: 10.1111/tpj.15360
Forner-Giner MA, Llosa MJ, Carrasco JL, Perez-Amador MA, Navarro L, Ancillo G (2009) Differential gene expression analysis provides new insights into the molecular basis of iron deficiency stress response in the citrus rootstock Poncirus trifoliata (L.) Raf. J Exp Bot 61:483–490
pubmed: 19914969 pmcid: 2803221 doi: 10.1093/jxb/erp328
Fox TC, Guerinot ML (1998) Molecular biology of cation transport in plants. Annu Rev Plant Physiol Plant Mol Biol 49:669–696
pubmed: 15012250 doi: 10.1146/annurev.arplant.49.1.669
Frei M, Wang Y, Ismail AM, Wissuwa M (2010) Biochemical factors conferring shoot tolerance to oxidative stress in rice grown in low zinc soil. Funct Plant Biol 37:74–84
doi: 10.1071/FP09079
García MJ, Romera FJ, Lucena C, Alcántara E, Pérez-Vicente R (2015) Ethylene and the regulation of physiological and morphological responses to nutrient deficiencies. Plant Physiol 169:51–60
pubmed: 26175512 pmcid: 4577413 doi: 10.1104/pp.15.00708
Gilroy S, Trewavas A (2001) Signal processing and transduction in plant cells: the end of the beginning? Nature Rev Mol Cell Biol 2:307–314
doi: 10.1038/35067109
Gilroy S, Białasek M, Suzuki N, Górecka M, Devireddy AR, Karpiński S, Mittler R (2016) ROS, calcium, and electric signals: key mediators of rapid systemic signaling in plants. Plant Physiol 171:1606–1615
pubmed: 27208294 pmcid: 4936577 doi: 10.1104/pp.16.00434
Glover-Cutter KM, Alderman S, Dombrowski JE, Martin RC (2014) Enhanced oxidative stress resistance through activation of a zinc deficiency transcription factor in Brachypodium distachyon. Plant Physiol 166:1492–1505
pubmed: 25228396 pmcid: 4226367 doi: 10.1104/pp.114.240457
González-Fontes A, Herrera-Rodríguez MB, Martín-Rejano EM, Navarro-Gochicoa MT, Rexach J, Camacho-Cristóbal JJ (2016) Root responses to boron deficiency mediated by ethylene. Front Plant Sci. https://doi.org/10.3389/fpls.2015.01103
doi: 10.3389/fpls.2015.01103 pubmed: 26779202 pmcid: 4705265
Gopal R, Shukla AK (2016) Molybdenum stress modulates enzymes responsive to oxidative stress and affects seeds viability and vigor in chickpea. Commun Soil Sci Plant Anal 48:43–50
doi: 10.1080/00103624.2016.1253718
Gratz R, von der Mark C, Ivanov R, Brumbarova T (2021) Fe acquisition at the crossroad of calcium and reactive oxygen species signaling. Curr Opin Plant Biol 63:102048
pubmed: 34015752 doi: 10.1016/j.pbi.2021.102048
Graziano M, Lamattina L (2007) Nitric oxide accumulation is required for molecular and physiological responses to iron deficiency in tomato roots. Plant J 52:949–960
pubmed: 17892445 doi: 10.1111/j.1365-313X.2007.03283.x
Graziano M, Beligni MV, Lamattina L (2002) Nitric oxide improves internal iron availability in plants. Plant Physiol 130:1852–1859
pubmed: 12481068 pmcid: 166696 doi: 10.1104/pp.009076
Grossman A, Takahashi H (2001) Macronutrient utilization by photosynthetic eukaryotes and the fabric of interactions. Annu Rev Plant Physiol Plant Mol Biol 52:163–210
pubmed: 11337396 doi: 10.1146/annurev.arplant.52.1.163
Gupta B, Pathak GC, Pandey N (2011) Induction of oxidative stress and antioxidant responses in Vigna mungo by zinc stress. Russ J Plant Physiol 58:85–91
doi: 10.1134/S1021443711010079
Gupta R, Kumar V, Tewari RK (2024) Relative effectiveness of iron in complex with organic ligands on functional iron status of maize plants. J Soil Sci Plant Nutr 24:547–560
doi: 10.1007/s42729-023-01564-1
Haber F, Weiss J (1934) The catalytic decomposition of hydrogen peroxide by iron salts. Proc R Soc Lond Ser A Math Phys Sci 147:332–351
Hacisalihoglu G (2003) Zinc efficiency is correlated with enhanced expression and activity of zinc-requiring enzymes in wheat. Plant Physiol 131:595–602
pubmed: 12586883 pmcid: 166835 doi: 10.1104/pp.011825
Hajiboland R (2012) Effect of micronutrient deficiencies on plants stress responses. In: Ahmad P, Prasad MNV (eds) Abiotic stress responses in plants: metabolism, productivity and sustainability. Springer, New York, pp 283–329
doi: 10.1007/978-1-4614-0634-1_16
Hajiboland R, Beiramzadeh N (2008) Growth, gas exchange and function of antioxidant defense system in two contrasting rice genotypes under Zn and Fe deficiency and hypoxia. Acta Biol Szeged 52:283–294
Hajiboland R, Farhanghi F (2010) Remobilization of boron, photosynthesis, phenolic metabolism and anti-oxidant defense capacity in boron-deficient turnip (Brassica rapa L.) plants. Soil Sci Plant Nutr 56:427–437
doi: 10.1111/j.1747-0765.2010.00478.x
Hajiboland R, Bastani S, Rad SB (2011) Effect of light intensity on photosynthesis and antioxidant defense in boron deficient tea plants. Acta Biol Szeged 55:265–272
Hajiboland R, Bastani S (2012) Tolerance to water stress in boron-deficient tea (Camellia sinensis) plants. Folia Hortic 24:41–51
doi: 10.2478/v10245-012-0005-1
Han S, Chen L-S, Jiang H-X, Smith BR, Yang L-T, Xie C-Y (2008) Boron deficiency decreases growth and photosynthesis, and increases starch and hexoses in leaves of citrus seedlings. J Plant Physiol 165:1331–1341
pubmed: 18191499 doi: 10.1016/j.jplph.2007.11.002
Hänsch R, Mendel RR (2009) Physiological functions of mineral micronutrients (Cu, Zn, Mn, Fe, Ni, Mo, B, Cl). Curr Opin Plant Biol 12:259–266
pubmed: 19524482 doi: 10.1016/j.pbi.2009.05.006
Hebbern CA, Laursen KH, Ladegaard AH, Schmidt SB, Pedas P, Bruhn D, Schjoerring JK, Wulfsohn D, Husted S (2009) Latent manganese deficiency increases transpiration in barley (Hordeum vulgare). Physiol Plant 135:307–316
pubmed: 19140891 doi: 10.1111/j.1399-3054.2008.01188.x
Hippler FWR, Cipriano DO, Boaretto RM, Quaggio JA, Gaziola SA, Azevedo RA, Mattos-Jr D (2016) Citrus rootstocks regulate the nutritional status and antioxidant system of trees under copper stress. Environ Exp Bot 130:42–52
doi: 10.1016/j.envexpbot.2016.05.007
Hippler FWR, Boaretto RM, Dovis VL, Quaggio JA, Azevedo RA, Mattos-Jr D (2018) Oxidative stress induced by Cu nutritional disorders in Citrus depends on nitrogen and calcium availability. Sci Rep 8:1641
pubmed: 29374264 pmcid: 5786063 doi: 10.1038/s41598-018-19735-x
Hopkins FG (1925) Glutathione: its influence in the oxidation of fats and proteins. Biochem J 19:787
pubmed: 16743579 pmcid: 1259263 doi: 10.1042/bj0190787
Horemans N, Foyer CH, Potters G, Asard H (2000) Ascorbate function and associated transport systems in plants. Plant Physiol Biochem 38:531–540
doi: 10.1016/S0981-9428(00)00782-8
Hsieh SI, Castruita M, Malasarn D, Urzica E, Erde J, Page MD, Yamasaki H, Casero D, Pellegrini M, Merchant SS, Loo JA (2013) The proteome of copper, iron, zinc, and manganese micronutrient deficiency in Chlamydomonas reinhardtii. Mol Cell Prot 12:65–86
doi: 10.1074/mcp.M112.021840
Husted S, Laursen KH, Hebbern CA, Schmidt SB, Pedas P, Haldrup A, Jensen PE (2009) Manganese deficiency leads to genotype-specific changes in fluorescence induction kinetics and state transitions. Plant Physiol 150:825–833
pubmed: 19369593 pmcid: 2689976 doi: 10.1104/pp.108.134601
Ide Y, Kusano M, Oikawa A, Fukushima A, Tomatsu H, Saito K, Hirai MY, Fujiwara T (2011) Effects of molybdenum deficiency and defects in molybdate transporter MOT1 on transcript accumulation and nitrogen/sulphur metabolism in Arabidopsis thaliana. J Exp Bot 62:1483–1497
pubmed: 21131548 doi: 10.1093/jxb/erq345
Ishimaru CA, Loper JE (1993) Biochemical and genetic analysis of siderophores produced by plant-associated Pseudomonas and Erwinia species. In: Larry L, Barton BCH (eds) Iron chelation in plants and soil microorganisms. Elsevier, Amsterdam
Iturbe-Ormaetxe I, Moran JF, Arrese-Igor C, Gogorcena Y, Klucas RV, Becana M (1995) Activated oxygen and antioxidant defences in iron-deficient pea plants. Plant Cell Environ 18:421–429
doi: 10.1111/j.1365-3040.1995.tb00376.x
Ivanov YV, Pashkovskiy PP, Ivanova AI, Kartashov AV, Kuznetsov VV (2022) Manganese deficiency suppresses growth and photosynthetic processes but causes an increase in the expression of photosynthetic genes in scots pine seedlings. Cells 11:3814
pubmed: 36497074 pmcid: 9739257 doi: 10.3390/cells11233814
Jalmi SK, Sinha AK (2015) ROS mediated MAPK signaling in abiotic and biotic stress–striking similarities and differences. Front Plant Sci. https://doi.org/10.3389/fpls.2015.00769
doi: 10.3389/fpls.2015.00769 pubmed: 26442079 pmcid: 4585162
Jeong J, Guerinot ML (2009) Homing in on iron homeostasis in plants. Trends Plant Sci 14:280–285
pubmed: 19375375 doi: 10.1016/j.tplants.2009.02.006
Jin CW, Du ST, Chen WW, Li GX, Zhang YS, Zheng SJ (2009) Elevated carbon dioxide improves plant iron nutrition through enhancing the iron-deficiency-induced responses under iron-limited conditions in tomato. Plant Physiol 150:272–280
pubmed: 19329565 pmcid: 2675727 doi: 10.1104/pp.109.136721
Kabir AH, Akther MS, Skalicky M, Das U, Gohari G, Brestic M, Hossain MM (2021) Downregulation of Zn-transporters along with Fe and redox imbalance causes growth and photosynthetic disturbance in Zn-deficient tomato. Sci Rep. https://doi.org/10.1038/s41598-021-85649-w
doi: 10.1038/s41598-021-85649-w pubmed: 34921199 pmcid: 8683488
Kaiser BN, Gridley KL, Ngaire Brady J, Phillips T, Tyerman SD (2005) The role of molybdenum in agricultural plant production. Ann Bot 96:745–754
pubmed: 16033776 pmcid: 4247040 doi: 10.1093/aob/mci226
Kar M, Mishra D (1976) Catalase, peroxidase, and polyphenoloxidase activities during rice leaf senescence. Plant Physiol 57:315–319
pubmed: 16659474 pmcid: 542015 doi: 10.1104/pp.57.2.315
Karpinska B, Foyer CH (2024) Superoxide signalling and antioxidant processing in the plant nucleus. J Exp Bot. https://doi.org/10.1093/jxb/erae090/7625012
doi: 10.1093/jxb/erae090/7625012 pubmed: 38460122
Kato Y, Miwa K, Takano J, Wada M, Fujiwara T (2008) Highly boron deficiency-tolerant plants generated by enhanced expression of NIP5; 1, a boric acid channel. Plant Cell Physiol 50:58–66
pubmed: 19017629 pmcid: 2638715 doi: 10.1093/pcp/pcn168
Keller T, Damude HG, Werner D, Doerner P, Dixon RA, Lamb C (1998) A plant homolog of the neutrophil NADPH oxidase gp91phox subunit gene encodes a plasma membrane protein with Ca
pubmed: 9490748 pmcid: 143990
Kim SA, LaCroix IS, Gerber SA, Guerinot ML (2019) The iron deficiency response in Arabidopsis thaliana requires the phosphorylated transcription factor URI. Proc Natl Acad Sci USA 116:24933–24942
pubmed: 31776249 pmcid: 6911256 doi: 10.1073/pnas.1916892116
Kirkby EA (2023) Introduction, definition, and classification of nutrients. Marschner’s mineral nutrition of plants. Elsevier, Amsterdam, pp 3–9
doi: 10.1016/B978-0-12-819773-8.00016-2
Kneeshaw S, Keyani R, Delorme-Hinoux V, Imrie L, Loake GJ, Bihan TL, Reichheld J-P, Spoel SH (2017) Nucleoredoxin guards against oxidative stress by protecting antioxidant enzymes. Proc Natl Acad Sci USA 14:8414–8419
doi: 10.1073/pnas.1703344114
Kobayashi T, Nishizawa NK (2012) Iron uptake, translocation, and regulation in higher plants. Annu Rev Plant Biol 63:131–152
pubmed: 22404471 doi: 10.1146/annurev-arplant-042811-105522
Kocsy G, Tari I, Vanková R, Zechmann B, Gulyás Z, Poór P, Galiba G (2013) Redox control of plant growth and development. Plant Sci 211:77–91
pubmed: 23987814 doi: 10.1016/j.plantsci.2013.07.004
Koshiba T, Kobayashi M, Matoh T (2009) Boron nutrition of tobacco BY-2 cells. V. Oxidative damage is the major cause of cell death induced by boron deprivation. Plant Cell Physiol 50:26–36
pubmed: 19054807 doi: 10.1093/pcp/pcn184
Koshiba T, Kobayashi M, Ishihara A, Matoh T (2010) Boron nutrition of cultured tobacco BY-2 cells. VI. Calcium is involved in early responses to boron deprivation. Plant Cell Physiol 51:323–327
pubmed: 20008940 doi: 10.1093/pcp/pcp179
Kovtun Y, Chiu W-L, Tena G, Sheen J (2000) Functional analysis of oxidative stress-activated mitogen-activated protein kinase cascade in plants. Proc Natl Acad Sci USA 97:2940
pubmed: 10717008 pmcid: 16034 doi: 10.1073/pnas.97.6.2940
Kroniger W, Rennenberg H, Tadros MH, Polle A (1995) Purification and properties of manganese superoxide dismutase from norway spruce (Picea abies L. Karst). Plant Cell Physiol 36:191–196
Kumar P, Tewari RK, Sharma PN (2010) Sodium nitroprusside-mediated alleviation of iron deficiency and modulation of antioxidant responses in maize plants. AoB Plants 2010:plq002
pubmed: 22476060 pmcid: 2965042 doi: 10.1093/aobpla/plq002
Kumar V, Gupta R, Tewari RK (2022) Zinc deficiency-induced differential biochemical responses of zinc-efficient and zinc-inefficient rice plants. J Soil Sci Plant Nutr 22:3984–3995
doi: 10.1007/s42729-022-01001-9
Lanquar V, Ramos MS, Lelievre F, Barbier-Brygoo H, Krieger-Liszkay A, Kramer U, Thomine S (2010) Export of vacuolar manganese by AtNRAMP3 and AtNRAMP4 is required for optimal photosynthesis and growth under manganese deficiency. Plant Physiol 152:1986–1999
pubmed: 20181755 pmcid: 2850043 doi: 10.1104/pp.109.150946
Larson RA (1988) The antioxidants of higher plants. Phytochem 27:969–978
doi: 10.1016/0031-9422(88)80254-1
Li W, Wang Z, Mi G, Han X, Zhang F (2001) Molybdenum deficiency in winter wheat seedlings as enhanced by freezing temperature. J Plant Nutr 24:1195–1203
doi: 10.1081/PLN-100106975
Li Y, Zhang Y, Shi D, Liu X, Qin J, Ge Q, Xu L, Pan X, Li W, Zhu Y, Xu J (2013) Spatial-temporal analysis of zinc homeostasis reveals the response mechanisms to acute zinc deficiency in Sorghum bicolor. New Phytol 200:1102–1115
pubmed: 23915383 doi: 10.1111/nph.12434
Li J, Liu B, Cheng F, Wang X, Aarts MGM, Wu J (2014a) Expression profiling reveals functionally redundant multiple-copy genes related to zinc, iron and cadmium responses in Brassica rapa. New Phytol 203:182–194
pubmed: 24738937 doi: 10.1111/nph.12803
Li Y, Wang N, Zhao F, Song X, Yin Z, Huang R, Zhang C (2014b) Changes in the transcriptomic profiles of maize roots in response to iron-deficiency stress. Plant Mol Biol 85:349–363
pubmed: 24648157 doi: 10.1007/s11103-014-0189-6
Li S, Han X, Lu Z, Qiu W, Yu M, Li H, He Z, Zhuo R (2022) MAPK cascades and transcriptional factors: regulation of heavy metal tolerance in plants. Int J Mol Sci 23:4463
pubmed: 35457281 pmcid: 9032930 doi: 10.3390/ijms23084463
Licciardello C, Torrisi B, Allegra M, Sciacca F, Roccuzzo G, Intrigliolo F, Recupero GR (2013) A transcriptomic analysis of sensitive and tolerant citrus rootstocks under natural iron deficiency conditions. J Am Soc Hortic Sci 138:487–498
doi: 10.21273/JASHS.138.6.487
Lilay GH, Thiébaut N, du Mee D, Assunção AG, Schjoerring JK, Husted S, Persson DP (2024) Linking the key physiological functions of essential micronutrients to their deficiency symptoms in plants. New Phytol 242:881–902
pubmed: 38433319 doi: 10.1111/nph.19645
Liu X, Zhang J-W, Guo L-X, Liu Y-Z, Jin L-F, Hussain SB, Du W, Deng Z, Peng S-A (2017) Transcriptome changes associated with boron deficiency in leaves of two citrus scion-rootstock combinations. Front Plant Sci 8:317
pubmed: 28352276 pmcid: 5349144
López-Millán AF, Ellis DR, Grusak MA (2005) Effect of zinc and manganese supply on the activities of superoxide dismutase and carbonic anhydrase in Medicago truncatula wild type and raz mutant plants. Plant Sci 168:1015–1022
doi: 10.1016/j.plantsci.2004.11.018
Mager S, Schönberger B, Ludewig U (2018) The transcriptome of zinc deficient maize roots and its relationship to DNA methylation loss. BMC Plant Biol. https://doi.org/10.1186/s12870-018-1603-z
doi: 10.1186/s12870-018-1603-z pubmed: 30587136 pmcid: 6307195
Mai H-J, Pateyron S, Bauer P (2016) Iron homeostasis in Arabidopsis thaliana: transcriptomic analyses reveal novel FIT-regulated genes, iron deficiency marker genes and functional gene networks. BMC Plant Biol 16:1–22
doi: 10.1186/s12870-016-0899-9
Maksymiec W (1998) Effect of copper on cellular processes in higher plants. Photosynthetica 34:321–342
doi: 10.1023/A:1006818815528
Mangano S, Denita-Juarez SP, Choi H-S, Marzol E, Hwang Y, Ranocha P, Velasquez SM, Borassi C, Barberini ML, Aptekmann AA, Muschietti JP, Nadra AD, Dunand C, Cho H-T, Estevez JM (2017) Molecular link between auxin and ROS-mediated polar growth. Proc Natl Acad Sci USA 114:5289–5294
pubmed: 28461488 pmcid: 5441824 doi: 10.1073/pnas.1701536114
Marschner P (2012) Marschner’s mineral nutrition of higher plants, 3rd edn. Elsevier Ltd, Academic Press
McCord JM, Fridovich I (1969) Superoxide dismutase: an enzymic function for erythrocuprein (hemocuprein). J Biol Chem 244:6049–6055
pubmed: 5389100 doi: 10.1016/S0021-9258(18)63504-5
McCormack E, Tsai Y-C, Braam J (2005) Handling calcium signaling: Arabidopsis CaMs and CMLs. Trends Plant Sci 10:383–389
pubmed: 16023399 doi: 10.1016/j.tplants.2005.07.001
McHargue J (1922) The role of manganese in plants1. J Am Chem Soc 44:1592–1598
doi: 10.1021/ja01428a033
Mehlhorn H, Wenzel AA (1996) Manganese deficiency enhances ozone toxicity in bush beans (Phaseolus vulgaris L. cv. Saxa). J Plant Physiol 148:155–159
doi: 10.1016/S0176-1617(96)80308-7
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 Physiol 157:2154–2166
pubmed: 21972265 pmcid: 3327203 doi: 10.1104/pp.111.183285
Melicher P, Dvořák P, Řehák J, Šamajová O, Pechan T, Šamaj J, Takáč T, Foyer C (2024) Methyl viologen-induced changes in the Arabidopsis proteome implicate PATELLIN 4 in oxidative stress responses. J Exp Bot 75:405–421
pubmed: 37728561 doi: 10.1093/jxb/erad363
Mendel RR, Hänsch R (2002) Molybdoenzymes and molybdenum cofactor in plants. J Exp Bot 53:1689–1698
pubmed: 12147719 doi: 10.1093/jxb/erf038
Meng ZB, Chen LQ, Suo D, Li GX, Tang CX, Zheng SJ (2012) Nitric oxide is the shared signalling molecule in phosphorus- and iron-deficiency-induced formation of cluster roots in white lupin (Lupinus albus). Ann Bot 109:1055–1064
pubmed: 22351487 pmcid: 3336943 doi: 10.1093/aob/mcs024
Messant M, Hennebelle T, Guérard F, Gakière B, Gall A, Thomine S, Krieger-Liszkay A (2022) Manganese excess and deficiency affects photosynthesis and metabolism in Marchantia polymorpha. bioRxiv. https://doi.org/10.1101/2022.01.24.477552
doi: 10.1101/2022.01.24.477552
Mhamdi A, Queval G, Chaouch S, Vanderauwera S, Van Breusegem F, Noctor G (2010) Catalase function in plants: a focus on Arabidopsis mutants as stress-mimic models. J Exp Bot 61:4197–4220
pubmed: 20876333 doi: 10.1093/jxb/erq282
Michael PI, Krishnaswamy M (2012) Oxidative stress and antioxidants in cowpea plants subjected to boron and high irradiance stresses. J Plant Nutr 35:2180–2197
doi: 10.1080/01904167.2012.724498
Millaleo R, Reyes-Díaz M, Alberdi M, Ivanov AG, Krol M, Hüner NPA (2013) Excess manganese differentially inhibits photosystem I versus II in Arabidopsis thaliana. J Exp Bot 64:343–354
pubmed: 23183256 doi: 10.1093/jxb/ers339
Mills GC (1962) Hemoglobin catabolism III. Conversion of hemoglobin to choleglobin by rat liver preparations. J Biochem 51:41–47
pubmed: 14474184 doi: 10.1093/oxfordjournals.jbchem.a127498
Minguillón S, Matamoros MA, Duanmu D, Becana M (2022) Signaling by reactive molecules and antioxidants in legume nodules. New Phytol 236:815–832
pubmed: 35975700 pmcid: 9826421 doi: 10.1111/nph.18434
Mittler R (2002) Oxidative stress, antioxidants and stress tolerance. Trends Plant Sci 7:405–410
pubmed: 12234732 doi: 10.1016/S1360-1385(02)02312-9
Mittler R (2006) Abiotic stress, the field environment and stress combination. Trends Plant Sci 11:15–19
pubmed: 16359910 doi: 10.1016/j.tplants.2005.11.002
Mittler R (2017) ROS are good. Trends Plant Sci 22:11–19
pubmed: 27666517 doi: 10.1016/j.tplants.2016.08.002
Mittler R, Vanderauwera S, Gollery M, Van Breusegem F (2004) Reactive oxygen gene network of plants. Trends Plant Sci 9:490–498
pubmed: 15465684 doi: 10.1016/j.tplants.2004.08.009
Mittler R, Vanderauwera S, Suzuki N, Miller G, Tognetti VB, Vandepoele K, Gollery M, Shulaev V, Van Breusegem F (2011) ROS signaling: the new wave? Trends Plant Sci 16:300–309
pubmed: 21482172 doi: 10.1016/j.tplants.2011.03.007
Mittler R, Zandalinas SI, Fichman Y, Van Breusegem F (2022) Reactive oxygen species signalling in plant stress responses. Nature Rev Mol Cell Biol 23:663–679
doi: 10.1038/s41580-022-00499-2
Monshausen GB, Bibikova TN, Messerli MA, Shi C, Gilroy S (2007) Oscillations in extracellular pH and reactive oxygen species modulate tip growth of Arabidopsis root hairs. Proc Natl Acad Sci USA 104:20996
pubmed: 18079291 pmcid: 2409255 doi: 10.1073/pnas.0708586104
Monshausen GB, Bibikova TN, Weisenseel MH, Gilroy S (2009) Ca
pubmed: 19654264 pmcid: 2751959 doi: 10.1105/tpc.109.068395
Mukherjee S, Corpas FJ (2023) H2O2, NO, and H2S networks during root development and signalling under physiological and challenging environments: beneficial or toxic? Plant Cell Environ 46:688–717
pubmed: 36583401 pmcid: 10108057 doi: 10.1111/pce.14531
Mukhopadhyay M, Ghosh PD, Mondal TK (2013) Effect of boron deficiency on photosynthesis and antioxidant responses of young tea plantlets. Russ J Plant Physiol 60:633–639
doi: 10.1134/S1021443713030096
Murao K, Takamiya M, Ono K, Takano H, Takio S (2004) Copper deficiency induced expression of Fe-superoxide dismutase gene in Matteuccia struthiopteris. Plant Physiol Biochem 42:143–148
pubmed: 15283130 doi: 10.1016/j.plaphy.2003.11.004
Nanda AK, Pujol V, Wissuwa M (2017) Patterns of stress response and tolerance based on transcriptome profiling of rice crown tissue under zinc deficiency. J Exp Bot 68:1715–1729
pubmed: 28369468 doi: 10.1093/jxb/erx039
Naranjo-Arcos MA, Maurer F, Meiser J, Pateyron S, Fink-Straube C, Bauer P (2017) Dissection of iron signaling and iron accumulation by overexpression of subgroup Ib bHLH039 protein. Sci Rep 7:10911
pubmed: 28883478 pmcid: 5589837 doi: 10.1038/s41598-017-11171-7
Nathan R, Ayala L, Yitzhak H, Dosoretz CG (1999) Manganese deficiency can replace high oxygen levels needed for lignin peroxidase formation by Phanerochaete chrysosporium. App Environ Microbiol 65:483–488
doi: 10.1128/AEM.65.2.483-488.1999
Nishimura MT, Dangl JL (2010) Arabidopsis and the plant immune system. Plant J 61:1053–1066
pubmed: 20409278 pmcid: 2859471 doi: 10.1111/j.1365-313X.2010.04131.x
Oláh D, Kondak S, Molnár Á, Adedokun OP, Czékus Z, Gémes K, Galbács G, Kolbert Z (2023) Suboptimal zinc supply affects the S-nitrosoglutathione reductase enzyme and nitric oxide signaling in Arabidopsis. Plant Stress 10:100250
doi: 10.1016/j.stress.2023.100250
de Oliveira RLL, de Mello PR, Felisberto G, Checchio MV, Gratão PL (2019) Silicon mitigates manganese deficiency stress by regulating the physiology and activity of antioxidant enzymes in sorghum plants. J Soil Sci Plant Nutr 19:524–534
doi: 10.1007/s42729-019-00051-w
O’Neill MA, Eberhard S, Albersheim P, Darvill AG (2001) Requirement of borate cross-linking of cell wall rhamnogalacturonan II for Arabidopsis growth. Science 294:846–849
pubmed: 11679668 doi: 10.1126/science.1062319
Page MD, Allen MD, Kropat J, Urzica EI, Karpowicz SJ, Hsieh SI, Loo JA, Merchant SS (2012) Fe sparing and Fe recycling contribute to increased superoxide dismutase capacity in iron-starved Chlamydomonas reinhardtii. Plant Cell 24:2649
pubmed: 22685165 pmcid: 3406916 doi: 10.1105/tpc.112.098962
Pandey N, Archana, (2011) Physiological and biochemical changes in Catharanthus roseus in response to boron nutrition. J Plant Nutr 34:1797–1810
doi: 10.1080/01904167.2011.600407
Pandey N, Archana (2013) Membrane damage in an oxygen-free radical-dependant manner induced via boron deficiency and toxicity in maize. Plant Stress 7:45–51
Panter PE, Seifert J, Dale M, Pridgeon AJ, Hulme R, Ramsay N, Contera S, Knight H (2023) Cell wall fucosylation in Arabidopsis influences control of leaf water loss and alters stomatal development and mechanical properties. J Exp Bot 74:2680–2691
pubmed: 36715637 pmcid: 10112686 doi: 10.1093/jxb/erad039
Pätsikkä E, Kairavuo M, Šeršen F, Aro E-M, Tyystjärvi E (2002) Excess copper predisposes photosystem II to photoinhibition in vivo by outcompeting iron and causing decrease in leaf chlorophyll. Plant Physiol 129:1359
pubmed: 12114589 pmcid: 166529 doi: 10.1104/pp.004788
Pedas P, Ytting CK, Fuglsang AT, Jahn TP, Schjoerring JK, Husted S (2008) Manganese efficiency in barley: identification and characterization of the metal ion transporter HvIRT1. Plant Physiol 148:455–466
pubmed: 18614714 pmcid: 2528110 doi: 10.1104/pp.108.118851
Perea-García A, Andrés-Bordería A, Mayo de Andrés S, Sanz A, Davis AM, Davis SJ, Huijser P, Peñarrubia L (2016) Modulation of copper deficiency responses by diurnal and circadian rhythms in Arabidopsis thaliana. J Exp Bot 67:391–403
pubmed: 26516126 doi: 10.1093/jxb/erv474
Pinton R, Cakmak I, Marschner H (1994) Zinc deficiency enhanced NAD(P)H-dependent superoxider radical production in plasma membrane vesicles isolated from roots of bean plants. J Exp Bot 45:45–50
doi: 10.1093/jxb/45.1.45
Polle A, Chakrabarti K, Chakrabarti S, Seifert F, Schramel P, Rennenberg H (1992) Antioxidants and Manganese deficiency in needles of Norway spruce (Picea abies L.) trees. Plant Physiol 99:1084–1089
pubmed: 16668974 pmcid: 1080587 doi: 10.1104/pp.99.3.1084
Polle A, Chakrabarti K (1994) Effects of manganese deficiency on soluble apoplastic peroxidase activities and lignin content in needles of Norway spruce (Picea abies). Tree Physiol 14:1191–1200
pubmed: 14967628 doi: 10.1093/treephys/14.10.1191
Priestley J (1776) Experiments and observations on different kinds of air. J. Johnson, Vol 2.
Prusty S, Sahoo RK, Nayak S, Poosapati S, Swain DM (2022) Proteomic and genomic studies of micronutrient deficiency and toxicity in plants. Plants 11:2424
pubmed: 36145825 pmcid: 9501179 doi: 10.3390/plants11182424
Quartacci MF, Cosi E, Navari-Izzo F (2001) Lipids and NADPH-dependent superoxide production in plasma membrane vesicles from roots of wheat grown under copper deficiency or excess. J Exp Bot 52:77–84
pubmed: 11181715
Quiles-Pando C, Navarro-Gochicoa MT, Herrera-Rodríguez MB, Camacho-Cristóbal JJ, González-Fontes A, Rexach J (2019) Boron deficiency increases cytosolic Ca
pubmed: 31075903 pmcid: 6540140 doi: 10.3390/ijms20092297
Ramamurthy RK, Xiang Q, Hsieh E-J, Liu K, Zhang C, Waters BM (2018) New aspects of iron–copper crosstalk uncovered by transcriptomic characterization of Col-0 and the copper uptake mutant spl7 in Arabidopsis thaliana. Metallomics 10:1824–1840
doi: 10.1039/C8MT00287H
Ranieri A, Castagna A, Baldan B, Soldatini GF (2001) Iron deficiency differently affects peroxidase isoforms in sunflower. J Exp Bot 52:25–35
pubmed: 11181710 doi: 10.1093/jexbot/52.354.25
Rodríguez-Celma J, Lattanzio G, Grusak MA, An A, Abadía J, López-Millán A-F (2011) Root responses of Medicago truncatula plants grown in two different iron deficiency conditions: changes in root protein profile and riboflavin biosynthesis. J Prot Res 10:2590–2601
doi: 10.1021/pr2000623
Römheld V (2012) Chapter 11–diagnosis of deficiency and toxicity of nutrients. In: Marschner P (ed) Marschner’s Mineral nutrition of higher plants, 3rd edn. Academic Press, San Diego, pp 299–312
doi: 10.1016/B978-0-12-384905-2.00011-X
Ryan K, Johnson O, Cabelli D, Brunold T, Maroney M (2010) Nickel superoxide dismutase: structural and functional roles of Cys2 and Cys6. J Biol Inorg Chem 15:795–807
pubmed: 20333421 pmcid: 3010328 doi: 10.1007/s00775-010-0645-y
Santos JOd, Fária MEd, Silva DMd, Silveira HRdO, Campos CN, Alves JD (2017) Copper (Cu) stress affects carbon and antioxidant metabolism in Coffea arabica seedlings. Aust J Crop Sci 11:960–967
doi: 10.21475/ajcs.17.11.08.pne445
dos Santos JO, Andrade CA, Dázio de Souza KR, Santos MdO, Brandão IR, Alves JD, Santos IS (2019a) Impact of zinc stress on biochemical and biophysical parameters in Coffea arabica seedlings. J Crop Sci Biotechnol 22:253–264
doi: 10.1007/s12892-019-0097-0
Santos CS, Ozgur R, Uzilday B, Turkan I, Roriz M, Rangel AOSS, Carvalho SMP, Vasconcelos MW (2019b) Understanding the role of the antioxidant system and the tetrapyrrole cycle in iron deficiency chlorosis. Plants (basel) 8:348
pubmed: 31540266
Schafer FQ, Buettner GR (2001) Redox environment of the cell as viewed through the redox state of the glutathione disulfide/glutathione couple. Free Radic Biol Med 30:1191–1212
pubmed: 11368918 doi: 10.1016/S0891-5849(01)00480-4
Schmidt SB, Jensen PE, Husted S (2016) Manganese deficiency in plants: the impact on photosystem II. Trends Plant Sci 21:622–632
pubmed: 27150384 doi: 10.1016/j.tplants.2016.03.001
Sevilla F, Del Río LA, Hellín E (1984) Superoxide dismutases from a citrus plant: presence of two iron-containing isoenzymes in leaves of lemon trees (Citrus limonum L.). J Plant Physiol 116:381–387
pubmed: 23195379 doi: 10.1016/S0176-1617(84)80130-3
Shah A, Wu X, Ullah A, Fahad S, Muhammad R, Yan L, Jiang C (2017) Deficiency and toxicity of boron: alterations in growth, oxidative damage and uptake by citrange orange plants. Ecotoxicol Environ Saf 145:575–582
pubmed: 28800533 doi: 10.1016/j.ecoenv.2017.08.003
Shao JF, Yamaji N, Shen RF, Ma JF (2017) The key to Mn homeostasis in plants: regulation of Mn transporters. Trends Plant Sci 22:215–224
pubmed: 28087151 doi: 10.1016/j.tplants.2016.12.005
Sharma PN, Tripathi A, Bisht SS (1995) Zinc requirement for stomatal opening in cauliflower. Plant Physiol 107:751
pubmed: 12228399 pmcid: 157190 doi: 10.1104/pp.107.3.751
Sharma PN, Kumar P, Tewari RK (2004) Early signs of oxidative stress in wheat plants subjected to zinc deficiency. J Plant Nutr 27:451–463
doi: 10.1081/PLN-120028873
Sharma PN, Tripathi A, Kumar N, Gupta S, Kumar P, Chatterjee J, Tewari RK (2016) Iron plays a critical role in stomatal closure in cauliflower. Environ Exp Bot 131:68–76
doi: 10.1016/j.envexpbot.2016.07.001
Shen C, Yang Y, Liu K, Zhang L, Guo H, Sun T, Wang H (2016) Involvement of endogenous salicylic acid in iron-deficiency responses in Arabidopsis. J Exp Bot 67:4179–4193
pubmed: 27208542 doi: 10.1093/jxb/erw196
Shenker M, Plessner OE, Tel-Or E (2004) Manganese nutrition effects on tomato growth, chlorophyll concentration, and superoxide dismutase activity. J Plant Physiol 161:197–202
pubmed: 15022834 doi: 10.1078/0176-1617-00931
Shi W, Liu Y, Zhao N, Yao L, Li J, Fan M, Zhong B, Bai M-Y, Han C (2024) Hydrogen peroxide is required for light-induced stomatal opening across different plant species. Nat Commun. https://doi.org/10.1038/s41467-024-49377-9
doi: 10.1038/s41467-024-49377-9 pubmed: 39117765 pmcid: 11310482
Shin LJ, Lo JC, Yeh KC (2012) Copper chaperone antioxidant protein1 is essential for copper homeostasis. Plant Physiol 159:1099–1110
pubmed: 22555879 pmcid: 3387697 doi: 10.1104/pp.112.195974
Shinozaki D, Merkulova EA, Naya L, Horie T, Kanno Y, Seo M, Ohsumi Y, Masclaux-Daubresse C, Yoshimoto K (2020) Autophagy increases zinc bioavailability to avoid light-mediated reactive oxygen species production under zinc deficiency. Plant Physiol 182:1284
pubmed: 31941669 pmcid: 7054869 doi: 10.1104/pp.19.01522
Sies H (1985) What is oxidative stress? Oxidative stress and vascular disease. Springer, Cham, pp 1–8
Silber A, Bar-Tal A, Levkovitch I, Bruner M, Yehezkel H, Shmuel D, Cohen S, Matan E, Karni L, Aktas H, Turhan E, Aloni B (2009) Manganese nutrition of pepper (Capsicum annuum L.): growth, Mn uptake and fruit disorder incidence. Sci Hortic 123:197–203
doi: 10.1016/j.scienta.2009.08.005
Sinha P, Dube BK, Chatterjee C (2006) Manganese stress alters phytotoxic effects of chromium in green gram physiology (Vigna radiata L.) cv. PU 19. Environ Exp Bot 57:131–138
doi: 10.1016/j.envexpbot.2005.05.003
Sinha P, Nautiyal N, Khurana N, Gupta S (2009) Development and physiological response of bittergourd to boron level. Int J Veg Sci 15:303–311
doi: 10.1080/19315260902983832
Sinha AK, Jaggi M, Raghuram B, Tuteja N (2011) Mitogen-activated protein kinase signaling in plants under abiotic stress. Plant Signal Behav 6:196–203
pubmed: 21512321 pmcid: 3121978 doi: 10.4161/psb.6.2.14701
Sommer AL, Lipman C (1926) Evidence on the indispensable nature of zinc and boron for higher green plants. Plant Physiol 1:231
pubmed: 16652481 pmcid: 439917 doi: 10.1104/pp.1.3.231
Steinhorst L, Kudla J (2013) Calcium and reactive oxygen species rule the waves of signaling. Plant Physiol 163:471
pubmed: 23898042 pmcid: 3793029 doi: 10.1104/pp.113.222950
Su W-L, Liu N, Mei L, Luo J, Zhu Y-J, Liang Z (2019) Global transcriptomic profile analysis of genes involved in lignin biosynthesis and accumulation induced by boron deficiency in poplar roots. Biomolecules 9:156
pubmed: 31010161 pmcid: 6523340 doi: 10.3390/biom9040156
Sun B, Jing Y, Chen K, Song L, Chen F, Zhang L (2007) Protective effect of nitric oxide on iron deficiency-induced oxidative stress in maize (Zea mays). J Plant Physiol 164:536–543
pubmed: 16690167 doi: 10.1016/j.jplph.2006.02.011
Sun X, Tan Q, Nie Z, Hu C, An Y (2014) Differential expression of proteins in response to molybdenum deficiency in winter wheat leaves under low-temperature stress. Plant Mol Biol Rep 32:1057–1069
doi: 10.1007/s11105-014-0713-5
Suzuki N, Miller G, Morales J, Shulaev V, Torres MA, Mittler R (2011) Respiratory burst oxidases: the engines of ROS signaling. Curr Opin Plant Biol 14:691–699
pubmed: 21862390 doi: 10.1016/j.pbi.2011.07.014
Takano J, Tanaka M, Toyoda A, Miwa K, Kasai K, Fuji K, Onouchi H, Naito S, Fujiwara T (2010) Polar localization and degradation of Arabidopsis boron transporters through distinct trafficking pathways. Proc Natl Acad Sci USA 107:5220–5225
pubmed: 20194745 pmcid: 2841934 doi: 10.1073/pnas.0910744107
Teschner J, Lachmann N, Schulze J, Geisler M, Selbach K, Santamaria-Araujo J, Balk J, Mendel RR, Bittner F (2010) A novel role for Arabidopsis mitochondrial ABC transporter ATM3 in molybdenum cofactor biosynthesis. Plant Cell 22:468–480
pubmed: 20164445 pmcid: 2845412 doi: 10.1105/tpc.109.068478
Tewari RK (2019) Nitric oxide-mediated modulation of functional iron status in iron-deficient maize plants. Int J Plant Environ 5:78–83
doi: 10.18811/ijpen.v5i02.2
Tewari RK, Kumar P, Tewari N, Srivastava S, Sharma PN (2004) Macronutrient deficiencies and differential antioxidant responses—influence on the activity and expression of superoxide dismutase in maize. Plant Sci 166:687–694
doi: 10.1016/j.plantsci.2003.11.004
Tewari RK, Kumar P, Neetu SPN (2005) Signs of oxidative stress in the chlorotic leaves of iron starved plants. Plant Sci 169:1037–1045
doi: 10.1016/j.plantsci.2005.06.006
Tewari RK, Kumar P, Sharma PN (2006) Antioxidant responses to enhanced generation of superoxide anion radical and hydrogen peroxide in the copper-stressed mulberry plants. Planta 223:1145–1153
pubmed: 16292566 doi: 10.1007/s00425-005-0160-5
Tewari RK, Kumar P, Sharma PN (2007) Oxidative stress and antioxidant responses in young leaves of mulberry plants grown under nitrogen, phosphorus or potassium deficiency. J Integr Plant Biol 49:313–322
doi: 10.1111/j.1744-7909.2007.00358.x
Tewari RK, Kumar P, Sharma PN (2008) Morphology and physiology of zinc-stressed mulberry plants. J Plant Nutr Soil Sci 171:286–294
doi: 10.1002/jpln.200700222
Tewari RK, Kumar P, Sharma PN (2010) Morphology and oxidative physiology of boron-deficient mulberry plants. Tree Physiol 30:68–77
pubmed: 19933494 doi: 10.1093/treephys/tpp093
Tewari RK, Hadacek F, Sassmann S, Lang I (2013a) Iron deprivation-induced reactive oxygen species generation leads to non-autolytic PCD in Brassica napus leaves. Environ Exp Bot 91:74–83
pubmed: 23825883 pmcid: 3661939 doi: 10.1016/j.envexpbot.2013.03.006
Tewari RK, Kumar P, Sharma PN (2013b) Oxidative stress and antioxidant responses of mulberry (Morus alba) plants subjected to deficiency and excess of manganese. Acta Physiol Plant 35:3345–3356
doi: 10.1007/s11738-013-1367-x
Tewari RK, Bachmann G, Hadacek F (2015) Iron in complex with the alleged phytosiderophore 8-hydroxyquinoline induces functional iron deficiency and non-autolytic programmed cell death in rapeseed plants. Environ Exp Bot 109:151–160
doi: 10.1016/j.envexpbot.2014.07.016
Tewari RK, Kumar P, Sharma PN (2019) An effective antioxidant defense provides protection against zinc deficiency-induced oxidative stress in Zn-efficient maize plants. J Plant Nutr Soil Sci 182:701–707
doi: 10.1002/jpln.201800622
Tewari RK, Horemans N, Watanabe M, Dietz K-J (2021a) Evidence for a role of nitric oxide in iron homeostasis in plants. J Exp Bot 72:990–1006
pubmed: 33196822 doi: 10.1093/jxb/eraa484
Tewari RK, Yadav N, Gupta R, Kumar P (2021b) Oxidative stress under macronutrient deficiency in plants. J Soil Sci Plant Nutr 21:832–859
doi: 10.1007/s42729-020-00405-9
Thiébaut N, Hanikenne M, Kolbert Z (2022) Zinc deficiency responses: bridging the gap between Arabidopsis and dicotyledonous crops. J Exp Bot 73:1699–1716
pubmed: 34791143 doi: 10.1093/jxb/erab491
Thimm O, Essigmann B, Kloska S, Altmann T, Buckhout TJ (2001) Response of arabidopsis to iron deficiency stress as revealed by microarray analysis. Plant Physiol 127:1030–1043
pubmed: 11706184 pmcid: 129273 doi: 10.1104/pp.010191
Tiong J, McDonald GK, Genc Y, Pedas P, Hayes JE, Toubia J, Langridge P, Huang CY (2014) HvZIP7 mediates zinc accumulation in barley (Hordeum vulgare) at moderately high zinc supply. New Phytol 201:131–143
pubmed: 24033183 doi: 10.1111/nph.12468
Vaughan D, DeKock PC, Ord BG (1982) The nature and localization of superoxide dismutase in fronds of Lemna gibba L. and the effect of copper and zinc deficiency on its actiyity. Physiol Plant 54:2S3-2S7
doi: 10.1111/j.1399-3054.1982.tb00256.x
Veljovic-Jovanovic S (2006) Senescence- and drought-related changes in peroxidase and superoxide dismutase isoforms in leaves of Ramonda serbica. J Exp Bot 57:1759–1768
pubmed: 16714303 doi: 10.1093/jxb/erl007
von der Mark C, Ivanov R, Eutebach M, Maurino VG, Bauer P, Brumbarova T, Foyer C (2021) Reactive oxygen species coordinate the transcriptional responses to iron availability in Arabidopsis. J Exp Bot 72:2181–2195
pubmed: 33159788 doi: 10.1093/jxb/eraa522
Warington K (1923) The effect of boric acid and borax on the broad bean and certain other plants. Ann Bot 37:629–672
doi: 10.1093/oxfordjournals.aob.a089871
Waszczak C, Carmody M, Kangasjärvi J (2018) Reactive oxygen species in plant signaling. Annu Rev Plant Biol 69:209–236
pubmed: 29489394 doi: 10.1146/annurev-arplant-042817-040322
Watanabe S, Sato M, Sawada Y, Tanaka M, Matsui A, Kanno Y, Hirai MY, Seki M, Sakamoto A, Seo M (2018) Arabidopsis molybdenum cofactor sulfurase ABA3 contributes to anthocyanin accumulation and oxidative stress tolerance in ABA-dependent and independent ways. Sci Rep 8:16592
pubmed: 30413758 pmcid: 6226459 doi: 10.1038/s41598-018-34862-1
Wei Yang TJ, Perry PJ, Ciani S, Pandian S, Schmidt W (2008) Manganese deficiency alters the patterning and development of root hairs in Arabidopsis. J Exp Bot 59:3453–3464
pmcid: 2529234 doi: 10.1093/jxb/ern195
Weinstein LH, Robbins WR (1955) The effect of different iron and manganese nutrient levels on the catalase and cytochrome oxidase activities of green and albino sunflower leaf tissues. Plant Physiol 30:27–32
pubmed: 16654723 pmcid: 540592 doi: 10.1104/pp.30.1.27
Wu S, Hu C, Tan Q, Xu S, Sun X (2017) Nitric oxide mediates molybdenum-induced antioxidant defense in wheat under drought stress. Front Plant Sci 8:1085
pubmed: 28690625 pmcid: 5481953 doi: 10.3389/fpls.2017.01085
Wu F, Chi Y, Jiang Z, Xu Y, Xie L, Huang F, Wan D, Ni J, Yuan F, Wu X (2020a) Hydrogen peroxide sensor HPCA1 is an LRR receptor kinase in Arabidopsis. Nature 578:577–581
pubmed: 32076270 doi: 10.1038/s41586-020-2032-3
Wu F, Chi Y, Jiang Z, Xu Y, Xie L, Huang F, Wan D, Ni J, Yuan F, Wu X, Zhang Y, Wang L, Ye R, Byeon B, Wang W, Zhang S, Sima M, Chen S, Zhu M, Pei J, Johnson DM, Zhu S, Cao X, Pei C, Zai Z, Liu Y, Liu T, Swift GB, Zhang W, Yu M, Hu Z, Siedow JN, Chen X, Pei Z-M (2020b) Hydrogen peroxide sensor HPCA1 is an LRR receptor kinase in Arabidopsis. Nature 578:577–581
pubmed: 32076270 doi: 10.1038/s41586-020-2032-3
Yamasaki H, Pilon M, Shikanai T (2008) How do plants respond to copper deficiency? Plant Signal Behav 3:231–232
pubmed: 19704637 pmcid: 2634185 doi: 10.4161/psb.3.4.5094
Yruela I (2005) Copper in plants. Braz J Plant Physiol 17:145–156
doi: 10.1590/S1677-04202005000100012
Yruela I (2009) Copper in plants: acquisition, transport and interactions. Funct Plant Biol 36:409–430
pubmed: 32688656 doi: 10.1071/FP08288
Yu Q, Osborne L, Rengel Z (1998) Micronutrient deficiency changes activities of superoxide dismutase and ascorbate peroxidase in tobacco plants. J Plant Nutr 21:1427–1437
doi: 10.1080/01904169809365493
Yu Q, Rengel Z (1999) Micronutrient deficiency influences plant growth and activities of superoxide dismutases in narrow-leafed lupins. Ann Bot 83:175–182
doi: 10.1006/anbo.1998.0811
Yu Q, Osborne LD, Rengel Z (1999) Increased tolerance to Mn deficiency in transgenic tobacco overproducing superoxide dismutase. Ann Bot 84:543–547
doi: 10.1006/anbo.1999.0951
Zaharieva T, Yamashita K, Matsumoto H (1999) Iron deficiency induced changes in ascorbate content and enzyme activities related to ascorbate metabolism in cucumber roots. Plant Cell Physiol 40:273–280
doi: 10.1093/oxfordjournals.pcp.a029538
Zaharieva TB, Abadía J (2003) Iron deficiency enhances the levels of ascorbate, glutathione, and related enzymes in sugar beet roots. Protoplasma 221:269–275
pubmed: 12802634 doi: 10.1007/s00709-002-0051-6
Zaharieva T, Gogorcena Y, Abadia J (2004) Dynamics of metabolic responses to iron deficiency in sugar beet roots. Plant Sci 166:1045–1050
doi: 10.1016/j.plantsci.2003.12.017
Zamboni A, Zanin L, Tomasi N, Avesani L, Pinton R, Varanini Z, Cesco S (2016) Early transcriptomic response to Fe supply in Fe-deficient tomato plants is strongly influenced by the nature of the chelating agent. BMC Genom. https://doi.org/10.1186/s12864-015-2331-5
doi: 10.1186/s12864-015-2331-5
Zanão Júnior LA, Fontes RLF, César J, Neves L, Korndörfer GH, de Ávila VT (2010) Rice grown in nutrient solution with doses of manganese and silicon. Rev Bras De Ciên Do Solo 34:1629–1639
doi: 10.1590/S0100-06832010000500016
Zhang J, Wang S, Song S, Xu F, Pan Y, Wang H (2019) Transcriptomic and proteomic analyses reveal new insight into chlorophyll synthesis and chloroplast structure of maize leaves under zinc deficiency stress. J Proteom 199:123–134
doi: 10.1016/j.jprot.2019.03.001
Zhang S, Zou B, Cao P, Su X, Xie F, Pan X, Li M (2023) Structural insights into photosynthetic cyclic electron transport. Mol Plant 16:187–205
pubmed: 36540023 doi: 10.1016/j.molp.2022.12.014
Zhao HQ, Wang L, Hong J, Zhao XY, Yu XH, Sheng L, Hang CZ, Zhao Y, Lin AA, Si WH, Hong FS (2014) Oxidative stress of maize roots caused by a combination of both salt stress and manganese deprivation. Cereal Res Commun 42:568–577
doi: 10.1556/CRC.2014.0005
Zhou T, Hua Y, Xu F (2017) Involvement of reactive oxygen species and Ca
doi: 10.1007/s11104-017-3337-3
Zottini M, Costa A, De Michele R, Ruzzene M, Carimi F, Lo Schiavo F (2007) Salicylic acid activates nitric oxide synthesis in Arabidopsis. J Exp Bot 58:1397–1405
pubmed: 17317674 doi: 10.1093/jxb/erm001
Zuppini A, Navazio L, Mariani P (2004) Endoplasmic reticulum stress-induced programmed cell death in soybean cells. J Cell Sci 117:2591–2598
pubmed: 15159454 doi: 10.1242/jcs.01126

Auteurs

Roshani Gupta (R)

Department of Botany, University of Lucknow, Lucknow, 226007, India.

Nikita Verma (N)

Department of Botany, University of Lucknow, Lucknow, 226007, India.

Rajesh Kumar Tewari (RK)

Department of Botany, University of Lucknow, Lucknow, 226007, India. rktewari_bot@yahoo.com.

Articles similaires

Psoriasis Humans Magnesium Zinc Trace Elements
Fragaria Light Plant Leaves Osmosis Stress, Physiological

The FGF/FGFR/c-Myc axis as a promising therapeutic target in multiple myeloma.

Arianna Giacomini, Sara Taranto, Giorgia Gazzaroli et al.
1.00
Humans Multiple Myeloma Receptors, Fibroblast Growth Factor Fibroblast Growth Factors Proto-Oncogene Proteins c-myc
Biofilms Candida albicans Quorum Sensing Candida glabrata Menthol

Classifications MeSH