PL EN


Preferencje help
Widoczny [Schowaj] Abstrakt
Liczba wyników
2015 | 37 | 08 |

Tytuł artykułu

Photosynthetic activity in relation to chlorophylls, carbohydrates, phenolics and growth of a hybrid Salix purpurea 3 triandra 3 viminalis 2 at various Zn concentrations

Warianty tytułu

Języki publikacji

EN

Abstrakty

EN
The aim of the present study was to determine the effect of various Zn application levels on some physiological, morphological and biochemical parameters of a hybrid Salix purpurea 9 triandra 9 viminalis 2. Plants were cultivated under control conditions with application of Zn in the range 0–5 mM. The effects on net photosynthesis rate (PN), stomatal conductance (gs), transpiration rate (E), intercellular CO2 (Ci), chlorophyll a and b, carotenoids, growth, sugars and phenols were analysed. Our investigations confirmed a dual role of Zn, with benefits at the level 1–2.5 mM, and a decrease of measured photosynthesis activity, carbohydrates and chlorophyll below and above this range. Moreover, the decrease of these parameters at the highest Zn application did not reach the level of control plants. This means that this species may have further potential as an accumulator in polluted areas. However, phenols revealed a continuous increase together with Zn increase in the medium.

Słowa kluczowe

Wydawca

-

Rocznik

Tom

37

Numer

08

Opis fizyczny

fig.,ref.

Twórcy

autor
  • Department of Ecology and Environmental Protection, Poznan University of Life Sciences, Piatkowska 94C, 60-649 Poznan, Poland
autor
  • Department of Chemistry, Poznan University of Life Sciences, Wojska Polskiego 75, 60-625 Poznan, Poland
autor
  • Department of Chemistry, Poznan University of Life Sciences, Wojska Polskiego 75, 60-625 Poznan, Poland
autor
  • Department of Chemistry, Poznan University of Life Sciences, Wojska Polskiego 75, 60-625 Poznan, Poland
  • Department of Plant Physiology, Poznan University of Life Sciences, Wolynska 35, 60-637 Poznan, Poland
autor
  • Department of Chemistry, Poznan University of Life Sciences, Wojska Polskiego 75, 60-625 Poznan, Poland
autor
  • Department of Chemistry, Poznan University of Life Sciences, Wojska Polskiego 75, 60-625 Poznan, Poland
autor
  • Department of Forest Sites and Ecology, Poznan University of Life Sciences, Wojska Polskiego 71E, 60-625 Poznan, Poland
autor
  • Department of Chemistry, Poznan University of Life Sciences, Wojska Polskiego 75, 60-625 Poznan, Poland

Bibliografia

  • Aggarwal A, Sharma I, Tripathi BN, Munjal AK, Baunthiyal M, Sharma V (2012) Metal toxicity and photosynthesis in photosynthesis: overviews on recent progress and future perspectives. IK International Publishing House (Pvt) Limited, New Delhi
  • Ali G, Srivastava PS, Iqbal M (2000) Influence of cadmium and zinc on growth and photosynthesis of Bacopa monniera cultivated in vitro. Biol Plant 43(4):599–601
  • Alloway BJ (2008) Zinc in soils and crop nutrition, 2nd edn. IZA and IFA, Brussels and Paris
  • Barabasz A, Krämer U, Hanikenne M, Rudzka J, Antosiewicz DM (2010) Metal accumulation in tobacco expressing Arabidopsis halleri metal hyperaccumulation gene depends on external supply. J Exp Bot 61:3057–3067
  • Baszyński T, Tukendorf A, Ruszkowska M, Skórzyńska E, Maksymiec W (1988) Characteristics of the photosynthetic apparatus of copper non-tolerant spinach exposed to excess copper. J Plant Physiol 132:708–713
  • Białońska D, Zobel AM, Kuraś M, Tykarska T, Sawicka-Kapusta K (2007) Phenolic compounds and cell structure in bilberry leaves affected by emissions from a Zn–Pb smelter. Water Air Soil Pollut 181(1–4):123–133
  • Broadley MR, White PJ, Hammond JP, Zelko I, Lux A (2007) Zinc in plants. New Phytol 173:677–702
  • Cenkci S, Cigerci IH, Yildiz M, Ozay C, Bozdag A, Terzi H (2010) Lead contamination reduces chlorophyll biosynthesis and genome template stability in Brassica rapa L. Environ Exp Bot 67:467–473
  • Chaney RL (1993) Zinc phytotoxicity. In: Robson AD (ed) Zinc in soils and plants. Kluwer Academic Publishers, Dordrecht, pp 131–150
  • Choi Y, Lee SM, Chun J, Lee HB, Lee J (2006) Influence of heat treatment on the antioxidant activities and polyphenolic compounds of Shiitake (Lentinus edodes) mushroom. Food Chem 99(2):381–387
  • Clemens S (2006) Toxic metal accumulation, responses and mechanisms of tolerance in plants. Biochimie 88:1707–1719
  • Clijsters H, van Assche F (1985) Inhibition of photosynthesis by heavy metals. Photosynth Res 7:31–40
  • Cuypers A, Vangronsve J, Clijsters H (2001) The redox status of plantcells (AsA and GSH) is sensitive to zinc imposed oxidative stress in roots and primary leaves of Phaseolus vulgaris. Plant Physiol Biochem 39:657–664
  • Deng H, Ye ZH, Wong MH (2006) Lead and zinc accumulation and tolerance in populations of six wetland plants. Environ Pollut 141:69–80
  • Dewanto V, Wu X, Liu RH (2002) Processed sweet corn has higher antioxidant activity. J Agric Food Chem 50:4959–4964
  • Dhir B, Sharmila P, Pardha Saradhi P (2008) Photosynthetic performance of Salvinia natans exposed to chromium and zinc rich wastewater. Braz J Plant Physiol 20:61–70
  • Dhir B, Sharmila P, Pardha Saradhi P, Sharma S, Kumar R, Mehta D (2011) Heavy metal induced physiological alterations in Salvinia natans. Ecotox Environ Safe 74:1284–1678
  • Dobroviczká T, Piršelová B, Mészáros P, Blehová A, Iibantová J, Moravčíková J, Matušíková I (2013) Effects of cadmium and arsenic ions on content of photosynthetic Pigments in the leaves of Glycine max (l.) Merrill. Pak J Bot 45(1):105–110
  • Drzewiecka K, Mleczek M, Gąsecka M, Magdziak Z, Goliński P (2012) Changes in Salix viminalis L. cv. ‘Cannabina’ morphology and physiology in response to nickel ions—hydroponic investigations. J Hazard Mater 217–218:429–438
  • Dudka S, Piotrowska M, Terelak H (1996) Transfer of cadmium, lead and zinc from industrially contaminated soil to crop: a field study. Environ Pollut 994:181–188
  • Erice G, Louahliac S, Irigoyenb JJ, Sánchez-Díazb M, Alamid IT, Avicea J-C (2011) Water use efficiency, transpiration and net CO2 exchange of four alfalfa genotypes submitted to progressive drought and subsequent recovery. Environ Exp Bot 72:123–130
  • Fernandez J, Zacchini M, Fleck I (2012) Photosynthetic and growth responses of Populus clones Eridano and I-214 submitted to elevated Zn concentrations. J Geochem Explor 123:77–86
  • Gąsecka M, Mleczek M, Drzewiecka K, Magdziak Z, Rissmann I, Hadzinikolau T, Goliński P (2012) Physiological and morphological changes in Salix viminalis L. as a result of plant exposure to copper. J Environ Sci Health A 47(4):548–557
  • Goliński P, Mleczek M, Magdziak Z, Ga˛secka M, Borowiak K, Dąbrowski J, Kaczmarek Z, Rutkowski P (2015) Efficiency of Zn phytoextraction, biomass yield and formation of lowmolecular-weight organic acids in S 9 rubens—a hydroponic experiment. Chem Ecol 31(4):345–364
  • Hanson J, Smeekens S (2009) Sugars perception and signalling—an update. Curr Opin Plant Biol 12:562–567
  • Hiscox JD, Israelstam GF (1979) A method for the extraction of chlorophyll from leaf tissue without maceration. Can J Bot 57:1332–1334
  • Hou W, Chen X, Song G, Wang Q, Chang C (2007) Effects of copper and cadmium on heavy metal polluted waterbody restoration by duckweed (Lemna minor). Plant Physiol Bioch 45:62–69
  • Janik E, Maksymiec W, Mazur R, Garstka M, Gruszecki WI (2010) Structural and functional modifications of the major lightharvesting complex II in cadmium- or copper-treated Secale cereal. Plant Cell Physiol 51:1330–1340
  • Johansen HN, Glitso V, Knutsen KEB (1996) Influence of extraction solvent and temperature on the quantitative determination of oligosaccharides from plant materials by high-performance liquid chromatography. J Agric Food Chem 44(6):470–1474
  • Kenneth K, Pallett KE, Young AJ (2000) Carotenoids. In: Ruth GA, Hess JL (eds) Antioxidants in Higher Plants. CRC Press, Boca Raton
  • Kim T, Wetzstein HY (2003) Cytological and ultrastructural evaluations of zinc deficiency in leaves. J Am Soc Hort Sci 128:171–175
  • Kováčik J, Klejdus B (2008) Dynamics of phenolic acids and lignin accumulation in metal-treated Matricaria chamomilla roots. Plant Cell Res 27:605–615
  • Kováčik J, Klejdus B, Hedbavny J, Bačkora M (2010) Effect of copper and salicylic acid on phenolic metabolites and free amino acids in Scenedesmus quadricauda (Chlorophyceae). Plant Sci 178(3):307–311
  • Kováčik J, Klejdus B, Stork F, Hedbavny J (2012) Physiological responses of Tillandsia albida (Bromeliaceae) to long-term foliar metal application. J Hazard Mat 15:239–240
  • Krupa Z, Siedlecka A, Maksymiec W, Baszyński T (1993) In vivo response to photosynthetic apparatus of Phaseolus vulgaris L. to nickel toxicity. J Plant Physiol 142:664–668
  • Krzesłowska M, Samardakiewicz S, Woźny A (2010) Trace metals. In: Woźny A, Goździka-Józefiak A (eds) Cell responses to stress factors. Wydawnictwo Naukowe Uniwersytetu Adama Mickiewicza w Poznaniu, Poznań , pp 90–146 (In Polish)
  • Küpper H, Küpper F, Spiller M (1996) Environmental relevance of heavy metal-substituted chlorophylls using the example of water plants. J Exp Bot 47:259–266
  • Lin JY, Tang CY (2007) Determination of total phenolic and flavonoid contents in selected fruits and vegetables, as well as their stimulatory effects on mouse splenocyte proliferation. Food Chem 101(1):140–147
  • Makinde AM, Akande FI (2012) Effects of lead and simulated acid rain on chlorophyll contents of selected tropical mosses. J Sci 14(2):309
  • Marschner H (1995) Mineral nutrition of higher plants, 2nd edn. Academic Press, London
  • Michalak A (2006) Phenolic compounds and their antioxidant activity in plants growing under heavy metal stress. Pol J Environ Stud 15:523–530
  • Mishra S, Dubey RS (2005) Heavy metal toxicity induced alterations in photosynthetic metabolism in plants. In: Pessarakli M (ed) Handbook of Photosynthesis, 2nd edn. CRC Press, Taylor & Francis Publishing Company, Florida, pp 845–863
  • Monni S, Uhlig C, Hansen E, Magel E (2001) Ecophysiological responses of Empetrum nigrum to heavy metals pollution. Environ Pollut 112(2):121–129
  • Moran JA, Mitchell AK, Goodmanson G, Stockburger KA (2000) Differentiation among effects of nitrogen fertilization treatments on conifer seedlings by foliar reflectance: a comparison of methods. Tree Physiol 20:1113–1120
  • Morkunas I, Marczak Ł, Stachowiak J, Stobiecki M (2005) Sucroseinduced lupine defence against Fusarium oxysporum: sucrosestimulated accumulation of isoflavonoids as a defence response of lupine to Fusarium oxysporum. Plant Physiol Biochem 43:363–373
  • Mukhopadhyay MS, Das A, Subba P, Bantawa P, Sarkar B, Ghosh P, Mondal TK (2013) Structural, physiological, and biochemical profiling of tea plants under zinc stress. Biol Plant 57(3):474–480
  • Myśliwa-Kurdziel B, Strzałka K (2002) Influence of metals on biosynthesis of photosynthetic pigments. In: Prasad MNV, Strzałka K (eds) Physiology and biochemistry of metal toxicity and tolerance in plants. Springer, Netherlands, pp 201–227
  • Nematian MA, Kazemeini F (2013) Accumulation of Pb, Zn, Cu and Fe in plants and hyperaccumulator choice in Galali iron mine area, Iran. Int J Agric Crop Sci 5(4):426–432
  • Niggeweg R, Michael AJ, Martin C (2004) Engineering plants with increased levels of the antioxidant chlorogenic acid. Nat Biotechnol 22(6):746–754
  • Oláh V, Lakatos G, Bertók C, Kanalas P, Szőllősi E, Kis J, Mészáros I (2010) Short-term chromium (VI) stress induces different photosynthetic responses in two duckwood species, Lemna gibba L. and Lemna minor L. Photosynthetica 48:513–520
  • Paiva L, Oliveira J, Azevedo R, Ribeiro D, Silva M, Vitoria A (2009) Ecophysiological responses of water hyacinth exposed to Cr3? And Cr6?. Environ Exp Bot 65:403–409
  • Pourraut B, Shahid M, Dumat C, Winterton P, Pinelli E (2011) Lead uptake, toxicity and detoxification in plants. Rev Environ Contam T 213:113–136
  • Prasad MNV (2004) Heavy metal stress in plants. From biomolecules to ecosystems. Springer, Berlin
  • Prasad DDK, Prasad ARK (1987) Altered delta-aminolevulinic-acid metabolism by lead and mercury in germinating seedlings of bajra (Pennisetum typhoideum). J Plant Physiol 127:241–249
  • Prasad MNV, Strzalka K (1999) Impact of heavy metals on photosynthesis. In: Prasad MNV, Hagemeyer J (eds) Heavy metal stress in plants. Springer-Verlag, Berlin, pp 117–138
  • Richardson MD, Hoveland CS, Bacon CW (1993) Photosynthesis and stomatal conductance of symbiotic and nonsymbiotic tall fescue. Crop Sci 33:145–149
  • Sengar RK, Gautam M, Sengar RK, Grag SK, Sengar K, Chaudhary R (2008) Lead stress effects on physiobiochemical activities of higher plants. Rev Environ Contam T 196:73–93
  • Singh MV (2009) Micronutrient nutritional problems in soils of India and improvement for human and animal health. Ind J Fertil 5:11–16
  • Stiborova M, Doubravova M, Brezinova A, Friedrich A (1986) Effect of heavy metal ions on growth and biochemical characteristics of photosynthesis of barley. Photosynthetica 20:418–425
  • Taiz RL, Zeiger E (2006) Plant Physiology, 4th edn. Sinauer Associates, Inc., Sunderland, MA
  • Taiz L, Zeiger E (2010) Plant Physiology, 5th edn. Sinauer Associates, Inc., Sunderland, MA
  • Tewari RK, Kumar P, Sharma PN, Bisht SS (2002) Modulation of oxidative stress responsive enzymes by excess cobalt. Plant Sci 162:381–388
  • Tholen D, Pons T, Voesenek L, Poorter H (2007) Ethylene insensitivity results in down-regulation of Rubisco expression and photosynthetic capacity in tobacco. Plant Physiol 144:1305–1315
  • Vaillant N, Monnet F, Hitmi A, Sallanon H, Coudret A (2005) Comparative study of responses in four Datura species to a zinc stress. Chemosphere 59:1005–1013
  • Van Assche FV, Clijsters H (1986) Inhibition of photosynthesis by treatment of Phaseolus vulgaris with toxic concentration of zinc: effects on electron transport and photophosphorylation. Physiol Plantar 66:717–721
  • Van Assche F, Ceulemans R, Clijsters H (1980) Zinc mediated effects on leaf CO2 diffusion conductances and net photosynthesis in Phaseolus vulgaris L. Photosynth Res 1:171–180
  • Vernay P, Gauthier-Moussard C, Hitmi A (2007) Interaction of bioaccumulation of heavy metal chromium with water relation, mineral nutrition and photosynthesis in developed leaves of Lolium perenne L. Chemosphere 68:1563–1575
  • Weich RM, Webb MJ, Loneragan JF (1982) Zinc in membrane function and its role in phosphorus toxicity. In: Scaife A (ed) Proceedings of the ninth plant nutrition coloquium, Warwick. CAB International, Wallingford, pp 710–715
  • Wellburn AR (1994) The spectral determination of chlorophylls a and b, as well as total carotenoids, using various solvents with spectrophotometers of different resolution. J Plant Physiol 144:307–313
  • Wingler A, Purdy S, MacLean A, Pourtau N (2006) The role of sugars in integrating environmental signals during the regulation of leaf senescence. J Exp Bot 57:391–399
  • Yanqun Z, Yuan L, Jianjun C, Haiyan C, Li Q, Schvartz C (2005) Hyperaccumulation of Pb, Zn and Cd in herbaceous grown on lead–zinc mining area in Yunnan, China. Environ Int 31:755–762
  • Zarcinas BA, Pongsakul P, McLaughlin MJ, Cozens G (2004) Heavy metals in soils and crops in Southeast Asia 2, Thailand. Environ Geochem Health 26:359–371
  • Zengin FK, Munzuroglu O (2005) Effect of some heavy metals on content of chlorophyll, proline and some antioxidant chemicals in bean (Phaseolus vulgaris L.) seedlings. Acta Biol Cracov Bot 47(2):157–164

Typ dokumentu

Bibliografia

Identyfikatory

Identyfikator YADDA

bwmeta1.element.agro-9571d8b9-d214-4acf-b1fb-733962896202
JavaScript jest wyłączony w Twojej przeglądarce internetowej. Włącz go, a następnie odśwież stronę, aby móc w pełni z niej korzystać.