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Plant-Environment Interactions

Cu and Zn Stress affect the photosynthetic and antioxidative systems of alfalfa (Medicago sativa)

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Pages 695-704 | Received 03 Mar 2022, Accepted 02 May 2022, Published online: 17 Jun 2022

References

  • Ali B, Song WJ, Hu WZ, Luo XN, Gill RA, Wang J, Zhou WJ. 2014. Hydrogen sulfide alleviates lead-induced photosynthetic and ultrastructural changes in oilseed rape. Ecotoxicol Environ Saf. 102:25–33.
  • Ambrosini VG, Rosa DJ, Melo GWB, Zalamena J, Cella C, Simao DG, Silva LS, Santos HP, Toselli M, Tiecher TL, Brunetto G. 2018. High copper conten in vineyard soils promotes modifications in photosynthetic parameters and morphological changes in the root system of ‘Red niagara’ plantlets. Plant Physiol Biochem. 128:89–98.
  • Ann C, Jaco V, Herman C. 2001. The redox status of plant cells (AsA and GSH) is sensitive to zinc imposed oxidative stress in roots and primary leaves of Phaseolus vulgaris. Plant Physiol Biochem. 39(7):657–664.
  • Baker NR. 2008. Chlorophyll fluorescence: a probe of photosynthesis in vivo. Annu Rev Plant Biol. 59(1):89–113.
  • Baxter A, Mittler R, Suzuki N. 2014. ROS as key players in plant stress signalling. J Exp Bot. 65:1229–1240.
  • Baycu G, Gevrek-Kurum N, Moustaka J, Csatari I, Rognes SE, Moustakas M. 2016. Cadmium-zinc accumulation and photosystem II responses of noccaea caerulescens to Cd and Zn exposure. Environmental Science and Pollution Research. 24(3):2840–2850.
  • Boojar MMA G. 2007. The copper tolerance strategies and the role of antioxidative enzymes in three plant species grown on copper mine. Chemosphere. 67(11):2138–2147.
  • Broadley MR, Hammond JP, Zelko I, Lux A, White PJ. 2007. Zinc in plants. New Phytol. 173(4):677–702.
  • Brune A, Urbach W, Dietz KJ. 2010. Compartmentation and transport of zinc in barley primary leaves as basic mechanisms involved in zinc tolerance. Plant Cell Environ. 17(2):153–162.
  • Bu F. 2019. Physiological and biochemical response of ‘hanfu’ apple seedlings to heavy metal copper stress. Shenyang Agricultural University.
  • Buapet P, Mohammadi NS, Pernice M, Kumar M, Kuzhiumparambil U, Ralph PJ. 2018. Excess copper promotes photoinhibition and modulates the expression of antioxidant-related genes in zostera muelleri. Aquat Toxicol. 207:91–100.
  • Chaabene Z, Hakim IR, Rorat A, Elleuch A, Mejdoub H, Vandenbulcke F. 2018. Copper toxicity and date palm (phoenix dactylifera) seedling tolerance: Monitoring of related biomarkers. Environ Toxicol Chem. 37(3):797–806.
  • Chen JR, Shafi M, Li S, Wang Y, Wu JS, Ye ZQ, Peng DL, Yan WB, Liu D. 2015. Copper induced oxidative stresses, antioxidant responses and phytoremediation potential of moso bamboo (Phyllostachys pubescens). Sci Rep. 5:13554.
  • Deng F, Yamaji N, Xia J, Ma JF. 2013. A member of the heavy metal P-type ATPase OsHMA5 is involved in xylem loading of copper in rice. Plant Physiol. 163(3):1353–1362.
  • Elstner EF, Heupel A. 1976. Inhibition of nitrite formation from hydroxylammoniumchloride: a simple assay for superoxide dismutase. Anal Biochem. 70(2):616–620.
  • Ernster L, Nordenbrand K. 1977. Microsomal lipid peroxidation. Methods in Enzymol. 52(11):302–310.
  • Essemine J, Govindachary S, Ammar S, Bouzid S, Carpentier R. 2012. Enhanced sensitivity of the photosynthetic apparatus to heat stress in digalactosyl-diacylglycerol deficient arabidopsis. Environ Exp Bot. 80:16–26.
  • Facchinelli A, Sacchi E, Mallen L. 2001. Multivariate statistical and GIS-based approach to identify heavy metal sources in soils. Environ Pollut. 114(3):313–324.
  • Fan LM, Ma ZQ, Liang JQ, Li HF, Wang ET, Wei GH. 2011. Characterization of a copper-resistant symbiotic bacterium isolated from Medicago lupulina growing in mine tailings. Bioresour Technol. 102(2):703–709.
  • Foyer CH. 2018. Reactive oxygen species, oxidative signaling and the regulation of photosynthesis. Environ Exp Bot. 154:134–142.
  • Gong Q, Wang L, Dai TW, Zhou JY, Kang Q, Chen HB, Li K, Li ZH. 2019. Effects of copper on the growth, antioxidant enzymes and photosynthesis of spinach seedlings. Ecotoxicol Environ Saf. 171:771–780.
  • Govindje E. 1995. Sixty-three years since kautsky: chlorophyll a fluorescence. Aust J Plant Physiol. 22(2):131–160.
  • Govindjee G, Papageorgiou G. 2004. Chlorophyll a Fluorescence: A Signature of Photosynthesis.
  • Haldimann P, Strasser RJ. 1999 Effects of anaerobiosis as probed by the polyphasic chlorophyll a fluorescence rise kinetic in pea (pisum sativum L.). Photosynth Res. 62(1):67–83.
  • Halliwell B, Gutteridge JMC. 1985. Free radicals in biology and medicine. Journal of Free Radicals in Biology and Medicine. 1(4):331–332.
  • Hammerschmitt RK, Tiecher TL, Facco DB, Silva LOS, Schwalbert R, Drescher GL, Trentin E, Somavilla LM, Kulmann MSS, Silva ICB, et al. 2020. Copper and zinc distribution and toxicity in ‘jade’/ ‘genovesa’ young peach tree. Sci Hortic. 259:1–9.
  • He GQ, Zhang HB, Liu SQ, Li HQ, Huo YZ, Guo KW, Xu ZS, Zhang HH. 2021. Exogenous γ-glutamic acid (GABA) induces proline and glutathione synthesis in alleviating Cd-induced photosynthetic inhibition and oxidative damage in tobacco leaves. Journal of Plant Interactions. 16(1):296–306.
  • Huang Z, Yu L, Zeng C, Yan F, Wu GL. 2018. Soil water storage deficit of alfalfa (Medicago sativa) grasslands along ages in arid area (China). Field Crops Res. 221:1–6.
  • Kavamura VN, Esposito E. 2010. Biotechnological strategies applied to the decontamination of soils polluted with heavy metals. Biotechnol Adv. 28(1):61–69.
  • Kupper H, Kupper FC, Spiller M. 1998. In situ detection of heavy metal substituted chlorophylls in water plants. Photosynth Res. 58(2):123–133.
  • Lee HJ, Lee JH, Wi S, Jang Y, An S, Choi CK, Jang S. 2021. Exogenously applied glutamic acid confers improved yield through increased photosynthesis efficiency and antioxidant defense system under chilling stress condition in solanum lycopersicum L. cv. dotaerang Dia. Sci Hortic. 277(5):109817.
  • Leitao I, Sales J, Martins LL, Mourato MP. 2021. Response to stress induced by different potentially toxic elements (As, Cd, Cu and Na) in rapeseed leaves. Plant Physiology Reports. 26(3):478–490.
  • Li L. 2019. Physio-biochemical and molecular mechanism of exogenous brassinosteroids in regulating growth of Brassica napus under copper and chromium stress. Zhejiang University.
  • Li PM, Gao HY, Strasser RJ. 2005. Application of the fast chlorophyll fluorescence induction dynamics analysis in photosynthesis study. Acta Photophysiologica Sinica. 31(6):559.
  • Liu Y, Hallenbeck PC. 2016. A kinetic study of hydrogen production by a calvin-benson-bassham cycle mutant, PRK (phosphoribulose kinase), of the photosynthetic bacterium rhodobacter capsulatus. Int J Hydrogen Energy. 41(26):11081–11089.
  • Madhava Rao KS. 2000. Antioxidative parameters in the seedlings of pigeonpea (Cajanus cajan (L.) Millspaugh) in response to Zn and Ni stresses. Plant Sci. 157(1):113–128.
  • Manu M, Bancila RI, Iordache V. 2016. Impact assessment of heavy metal pollution on soil mite communities (acari: mesostigmata) from zlatna depression - transylvania. transactions of The institution of chemical engineers. Process Safety and Environmental Protection, Part B. 108:121–134.
  • Martin WF, Sies H. 2017. Genomic redox footprints. Nat Plants. 3(6):17071.
  • Maxwell K, Johnson GN. 2000. Chlorophyll fluorescence–a practical guide. J Exp Bot. 51(345):659–668.
  • Mi YL, Shin HW. 2003. Cadmium-induced changes in antioxidant enzymes from the marine alga nannochloropsis oculata. J Appl Phycol. 15(1):13–19.
  • Miller G, Shulaev V, Mittler R. 2008. Reactive oxygen signaling and abiotic stress. Physiol Plant. 133(3):481–489.
  • Montalvo C, Aguilar CA, Amador LE, Ceron JG, Ceron RM, Anguebes F, Cordova AV. 2014. Metal contents in sediments (Cd, Cu, Mg, Fe, Mn) as indicators of pollution of palizada river, Mexico. Environment and Pollution. 3(4):89–98.
  • Muzammal R, Liu LJ, Bashir S, Saleem MH, Chen C, Peng DX, Siddique KHM. 2019. Influence of rice straw biochar on growth, antioxidant capacity and copper uptake in ramie (boehmeria nivea L.) grown as forage in aged copper-contaminated soil. Plant Physiol Biochem. 138(1):121–129.
  • Noctor G, Reichheld JP, Foyer CH. 2017. ROS-related redox regulation and signaling in plants. Seminars in Cell and Developmental Biology. 80:3–12.
  • Pandey N, Pathak GC, Singh AK, Sharma CP. 2002. Enzymic changes in response to zinc nutrition. J Plant Physiol. 159(10):1151–1153.
  • Patterson BD, Macrae EA, Ferguson IB. 1984. Estimation of hydrogen peroxide in plant extracts using titanium (IV). Anal Biochem. 139(2):487–492.
  • Pirie A, Mullins MG. 1976. Changes in anthocyanin and phenolics content of grapevine leaf and fruit tissues treated with sucrose, nitrate, and abscisic acid. Plant Physiol. 58(4):472–486.
  • Popov BB, Hristova VK, Ahmad MA, Petrovska M. 2014. Monitoring of heavy metals and trace elements contamination in the soil and vegetables and air pollution in the Republic of Macedonia. Chemistry. 3:205–214.
  • Prasad KVSK, Saradhi PP, Sharmila P. 1999. Concerted action of antioxidant enzymes and curtailed growth under zinc toxicity in Brassica juncea. Environ Exp Bot. 42(1):1–10.
  • Sagardoy R, Morales F, Lopez-Millan AF, Abadia A, Abadia J. 2009. Effects of zinc toxicity on sugar beet (Beta vulgaris L.) plants grown in hydroponics. Plant Biology. 11(3):339–350.
  • Salau AW, Olasantan FO, Bodunde JG, Makinde EA. 2015. Soil temperature and moisture content changes with growth and yield of cassava/vegetable intercrops. Archives of Agronomy and Soil Science. 61(4):447–460.
  • Scandalios JG. 2002. The rise of ROS. Trends Biochem Sci. 27(9):483–486.
  • Schwalbert R, Silva LOS, Schwalbert RA, Tarouco CP, Fernandes GS, Marques ACR, Costa CC, Hammerschmitt RK, Brunetto G, Nicoloso FT. 2019. Physiological responses of soybean (glycine max (L.) merrill) cultivars to copper excess. Anais da Academia Brasileira de Ciências. 91(4):1–15.
  • Schwalbert R, Stefanello OL, Schwalbert RA, Tarouco CP, Drescher GL, Trentin E, Tassinari A, Silva IB, Brunetto G, Nicoloso FT. 2021. Soil tillage affects soybean growth and promotes heavy metal accumulation in seeds. Ecotoxicol Environ Saf. 216:112191.
  • Stasolla C, Yeung EC. 2010. Ascorbic acid metabolism during white spruce somatic embryo maturation and germination. Physiol Plant. 111(2):196–205.
  • Strasser BJ. 1997. Donor side capacity of photosystem II probed by chlorophyll a fluorescence transients. Photosynth Res. 52(2):147–155.
  • Strasserf RJ, Srivastava A, Govindjee G. 2008. Polyphasic chlorophyll a fluorescence transient in plants and cyanobacteria. Photochem Photobiol. 61(1):32–42.
  • Su C, Jiang LQ, Zhang WJ. 2014. A review on heavy metal contamination in the soil worldwide: situation, impact and remediation techniques. Environmental Skeptics and Critics. 3(2):24–38.
  • Tuba Z, Saxena DK, Kajal SR, Shiv OS, Czobel S, Kalaji MH. 2010. Chlorophyll a fluorescence measurements for validating the tolerant bryophytes for heavy metal (Pb) biomapping. Curr Sci. 98(11):1505–1508.
  • Vasi V, Koji D, Krinulovi K, olovi M, Stoji D. 2007. Time-dependent inhibition of Na+/K+-ATPase induced by single and simultaneous exposure to lead and cadmium. Russ J Phys Chem A. 81(9):1402–1406.
  • Wang SH, Yang ZM, Yang H, Lu B, Li SQ, Lu YP. 2004. Copper-induced stress and antioxidative responses in roots of Brassica juncea L. Botanical Bulletin of Academia Sinica. 45(3):203–212.
  • Wang XK, Huang JL. 2015. Principle and technology of plant physiological and biochemical experiment. Higher Education Press.
  • Wang Y, Zhang XL, Hu YB, Teng ZY, Zhang SB, Chi Q, Sun GY. 2019. Phenotypic response of tobacco leaves to simulated acid rain and its impact on photosynthesis. International Journal of Agriculture and Biology. 21:391–398.
  • Wjcik M, Dresler S, Tukiendorf A. 2015. Physiological mechanisms of adaptation of dianthus carthusianorum L. to growth on a Zn-Pb waste deposit - the case of chronic multi-metal and acute Zn stress. Plant Soil. 390(1-2):237–250.
  • Xu HY, Tong ZY, He F, Li XL. 2020. Response of alfalfa (Medicago sativa L. to Abrupt Chilling as Reflected by Changes in Freezing Tolerance and Soluble Sugars. Agronomy. 10(2):255.
  • Yang FW, Zhang HB, Wang Y, He GQ, Wang JC, Guo DD, Li T, Sun GY, Zhang HH. 2021. The role of antioxidant mechanism in photosynthesis under heavy metals Cd or Zn exposure in tobacco leaves. Journal of Plant Interactions. 16(1):354–366.
  • Zhang HH, Li X, Guan YP, Li MB, Wang Y, An MJ, Zhang YH, Liu GJ, Xu N, Sun GY. 2020a. Physiological and proteomic responses of reactive oxygen species metabolism and antioxidant machinery in mulberry (Morus alba L.) seedling leaves to NaCl and NaHCO3 stress. Ecotoxicol Environ Saf. 193:110259.
  • Zhang HH, Li X, Xu N, Sun GY, Sun ML, Cai DJ, Gu SY. 2018. Alkalinity and salinity tolerance during seed germination and early seedling stages of three alfalfa (Medicago sativa L. cultivars. Legume Research. 40(5):853–858.
  • Zhang HH, Li X, Xu ZS, Wang Y, Teng ZY, An MJ, Zhang YH, Zhu WX, Xu N, Sun GY. 2020b. Toxic effects of heavy metals Pb and Cd on mulberry (Morus alba L.) seedling leaves: photosynthetic function and reactive oxygen species (ROS) metabolism responses. Ecotoxicol Environ Saf. 195:110469.
  • Zhang HH, Zhong HX, Wang JF, Sui X, Xu N. 2016. Adaptive changes in chlorophyll content and photosynthetic features to low light in Physocarpus amurensis maxim and Physocarpus opulifolius “diabolo”. PeerJ. 4(3):e2125.
  • Zhang LY, Wen X, Lin YM, Jian L, Chen C, Zhen WC. 2013. Effect of salt stress on photosynthetic and chlorophyll fluorescent characteristics in alnus formosana seedlings. Journal of Fujian College of Forestry. 33(3):193–199.
  • Zhang ZS, Li G, Gao HY, Zhang LT, Yang C, Liu P, Meng QW. 2012. Characterization of photosynthetic performance during senescence in stay-green and quick-leaf-senescence Zea mays L. inbred lines. Plos One. 7(8):e42936.