Analysis of interactions of nitric oxide and polyamine under cadmium stress in wheat

Wheat cultivars chosen for their cadmium (Cd) tolerance (Sönmez-2001) and sensitivity (Quality) were grown in Hoagland solution for 20 days and then they were treated with 100 μM 2-(4-carboxyphenyl)-4,4,5,5-tetramethylylimidazoline-1-oxyl (cPTIO), a nitric oxide (NO) scavenger, or with 100 μM sodium nitroprusside (SNP), a NO donor, with and without 9 mM Cd. NO, free polyamines, and Cd levels were analysed by using leaf and root samples taken 24 and 72 h after treatment. There was a significant increase in NO level in the Cd+SNP treatment in cv. Quality cultivars at 24 and 72 h. The NO level recorded in cv. Quality was higher in the Cd and Cd+SNP treatments at 24 h and in the SNP and Cd+SNP treatments at 72 h compared to cv. Sönmez-2001. Spermidine (Spd) had the highest amount of amine. In almost all treatments, the sensitive cultivar Quality included higher contents of Spd, putrescine, and spermine compared to cv. Sönmez-2001. Quality presented higher levels of Cd accumulation in root and leaf tissues in all treatments compared to Sönmez-2001.

Analysis of interactions of nitric oxide and polyamine under cadmium stress in wheat

Wheat cultivars chosen for their cadmium (Cd) tolerance (Sönmez-2001) and sensitivity (Quality) were grown in Hoagland solution for 20 days and then they were treated with 100 μM 2-(4-carboxyphenyl)-4,4,5,5-tetramethylylimidazoline-1-oxyl (cPTIO), a nitric oxide (NO) scavenger, or with 100 μM sodium nitroprusside (SNP), a NO donor, with and without 9 mM Cd. NO, free polyamines, and Cd levels were analysed by using leaf and root samples taken 24 and 72 h after treatment. There was a significant increase in NO level in the Cd+SNP treatment in cv. Quality cultivars at 24 and 72 h. The NO level recorded in cv. Quality was higher in the Cd and Cd+SNP treatments at 24 h and in the SNP and Cd+SNP treatments at 72 h compared to cv. Sönmez-2001. Spermidine (Spd) had the highest amount of amine. In almost all treatments, the sensitive cultivar Quality included higher contents of Spd, putrescine, and spermine compared to cv. Sönmez-2001. Quality presented higher levels of Cd accumulation in root and leaf tissues in all treatments compared to Sönmez-2001.

___

  • Anjum N, Umar A, Iqbal SM, Khan NA (2011). Cadmium causes oxidative stress in mung bean by affecting the antioxidant enzyme system and ascorbate-glutathione cycle metabolism. Russ J Plant Physl 58: 92–99.
  • Arasimowicz-Jelonek M, Floryszak-Wieczorek J, Gwózdza EA (2011). The message of nitric oxide in cadmium challenged plants. Plant Sci 181: 612–620.
  • Basu R, Ghosh B (1991). Polyamines in various rice (Oryza sativa) genotypes with respect to sodium chloride salinity. Physiol Plantarum 82: 575–581.
  • Corpas FJ, Barroso JB, Carreras A, Quirós M, León AM, Romero- Puertas MC, Esteban FJ, Valderrama R, Palma JM, Sandalio LM et al. (2004). Cellular and subcellular localization of endogenous nitric oxide in young and senescent pea plants. Plant Physiol 136: 2722–2733.
  • Doğanlar ZBP, Yürekli F (2009). Interactions between cadmium and phytochelatin accumulation in two different sunflower cultivars. Fresen Environ Bull 18: 304–310.
  • Fan HF, Du CX, Guo SR (2013). Nitric oxide enhances salt tolerance in cucumber seedlings by regulating free polyamine content. Environ Exp Bot 86: 52–59.
  • Filippou P, Antoniou C, Fotopoulos V. (2013). The nitric oxide donor sodium nitroprusside regulates polyamines and proline metabolism in leaves of Medicago truncatula plants. Free Radical Bio Med 56: 172–183.
  • Garcia-Mata C, Lamattina L (2001). Nitric induces stomatal closure and enhances the adaptive plant responses against drought stress. Plant Physiol 126: 1196–1204.
  • Garcia-Mata C, Lamattina L (2002). Nitric oxide and abscisic acid cross talk in guard cells. Plant Physiol 128: 790–792.
  • Gill SS, Hasanuzzamanb M, Naharc K, Macoveid A, Tuteja N (2013). Importance of nitric oxide in cadmium stress tolerance in crop plants. Plant Physiol Bioch 63: 254–261.
  • Groppa MD, Benavides MP, Tomaro ML (2003). Polyamine metabolism in sunflower and wheat leaf discs under cadmium or copper stress. Plant Sci 164: 293–299.
  • Groppa MD, Rosales EP, Iannone MF, Benavides MP (2008). Nitric oxide, polyamines and Cd-induced phytotoxicity in wheat roots. Phytochemistry 69: 2609–2615.
  • Grün S, Lindermayr C, Sell S, Durner J (2006). Nitric oxide and gene regulation in plants. J Exp Bot 57: 507–516.
  • Hoagland DR, Arnon DI (1938). The water-culture method for growing plants without soil. California Agricultural Experiment Station 347: 4–9.
  • Jiang Q, Yang H, Sun X, Li Q, Ran K, Zhang X (2012). Relationship between polyamines metabolism and cell death in roots of Malus hupehensis Rehd. under cadmium stress. Journal of Integrative Agriculture 11: 1129–1136.
  • Katiyar S, Dubey RS (1990). Changes in polyamines titer in rice seedlings following NaCl salinity stress. J Agron Crop Sci 165: 19–27.
  • Kolbert Z, Bartha B, Erdei L (2008). Osmotic stress- and indole–3- butyric acid induced NO generation are partially distinct processes in root growth and development in Pisum sativum. Physiol Plantarum 133: 406–416.
  • Kusano T, Yamaguchi K, Berberich T, Takahashi Y (2007). Advances in polyamine research in 2007. J Plant Res 120: 345–350.
  • Langerbartels C, Kerner K, Leonardi S, Schraudner M, Trost M, Heller W, Sandermann H (1991). Differential induction of polyamine and ethylene biosynthesis in tobacco. Plant Physiol 95: 882–889.
  • Lefevre I, Gratia E, Lutts S (2001). Discrimination between the ionic and osmotic components of salt stress in relation to free polyamine level in rice (Oryza sativa L.). Plant Sci 161: 943–52.
  • Leitner M, Vandelle E, Gaupels F, Bellin D, Delledonne M (2009). NO signals in the haze: nitric oxide signalling in plant defence. Curr Opin Plant Biol 12: 451–458.
  • Leshem YY (1996). Nitric oxide in biological systems. Plant Growth Regul 18: 155–159.
  • Mahmood T, Gupta KJ, Kaiser WM (2009). Cadmium stress stimulates nitric oxide production by wheat roots. Pak J Bot 41: 1285–1290.
  • Mutlu F, Bozcuk S (2005). Effects of salinity on contents of polyamine and some other compounds in sunflower plants differing in salt tolerance. Russ J Plant Physl 52: 29–34.
  • Mutlu F, Bozcuk S (2007). Relationship between salt stress and the levels of free and bound polyamines in sunflower plants. Plant Biosyst 141: 31–39.
  • Öztürk L, Eker S, Özkutlu F (2003). Effect of cadmium on growth and concentrations of cadmium, ascorbic acid and sulphydryl groups in durum wheat cultivars. Turk J Agric For 27: 161–168.
  • Rabiti A, Pistocchi R, Bagni N (1989). Putrescine uptake and translocation in higher plants. Physiol Plantarum 77: 225–230.
  • Reggiani R, Bozo S, Bertani A (1994). Changes in polyamine metabolism in seedlings of three wheat (Triticum aestivum L.) cultivars differing in salt sensitivity. Plant Sci 102: 121–126.
  • Rodríguez-Llorente ID, Pérez-Palacios P, Doukkali B, Caviedes MA, Pajuelo E (2010). Expression of the seed-specific metallothionein mt4a in plant vegetative tissues increases Cu and Zn tolerance. Plant Sci 178: 327–332.
  • Rodríguez-Serrano M, Romero-Puertas MC, Zabalza A, Corpas FJ, Gomez M, Del Rio LA, Sandalio LM (2006). Cadmium effect on oxidative metabolism of pea (Pisum sativum L.) roots. Imaging of reactive oxygen species and nitric oxide accumulation in vivo. Plant Cell Environ 29: 1532–1544.
  • Smith MA, Davies PJ (1985). Separation and quantitation of polyamines in plant tissue by high performance liquid chromatography of their dansyl derivatives. Plant Physiol 78: 89–91.
  • Soumitra D, Basu R, Ghosh B (1987). Heat stress induced polyamine accumulation in cereal seedlings. Plant Physiol Bioch 14: 108– 116.
  • Tang CF, Zhang RQ, Wen SZ, Li CF, Guo XF, Liu YG (2009). Effects of exogenous spermidinon subcellular distribution and chemical forms of cadmium in Typha latifolia L. under cadmium stress. Water Sci Technol 59: 1487–1493.
  • Tran TA, Popova LP (2013). Functions and toxicity of cadmium in plants: recent advances and future prospects. Turk J Bot 37: 1–13.
  • Tun NN, Santa-Catarina C, Begum T, Silveira V, Handro W, Floh EIS, Scherer GFE (2006). Polyamines induce rapid biosynthesis of nitric oxide (NO) in Arabidopsis thaliana seedlings. Plant Cell Physiol 47: 346–354.
  • Wang YS, Yang ZM (2005). Nitric oxide reduces aluminum toxicity by preventing oxidative stress in the roots of Cassia tora L. Plant Cell Physiol 46: 1915–1923.
  • Wimalasekera R, Tebartz F, Scherer GF (2011). Polyamines, polyamine oxidases and nitric oxide in development, abiotic and biotic stresses. Plant Sci 181: 593–603.
  • Xiong J, An L, Lu H, Zhu C (2009). Exogenous nitric oxide enhances cadmium tolerance of rice by increasing pectin and hemicellulose contents in root cell wall. Planta 230: 755–765.
  • Yang HY, Shi GX, Qiao XQ, Tian XL (2011). Exogenous spermidin and spermin enhance cadmium tolerance of Potamogeton malaianus. Russ J Plant Phyl 58: 622–628.
  • Yang H, Shi G, Wang H, Xu Q (2010). Involvement of polyamines in adaptation of Potamogeton crispus L. to cadmium stress. Aquat Toxicol 100: 282–288.
  • Young ND, Galston AW (1983). Putrescine and acid stress. Plant Physiol 71: 767–771.
  • Zhang G, Fukami M, Sekimoto H (2002). Influence of cadmium on mineral concentrations and yield components in wheat genotypes differing in Cd tolerance at seedling stage. Field Crop Res 77: 93–98.
  • Zhang X, Shen L, Fujun L (2011). Methyl salicylate-induced arginine catabolism is associated with up-regulation of polyamine and nitric oxide levels and improves chilling tolerance in cherry tomato fruit. J Agr Food Chem 59: 9351–9357.
Turkish Journal of Botany-Cover
  • ISSN: 1300-008X
  • Yayın Aralığı: Yılda 6 Sayı
  • Yayıncı: TÜBİTAK
Sayıdaki Diğer Makaleler

Taxonomic studies on some new fungal records from Trabzon, Turkey

ERTUĞRUL SESLİ, PIERRE-ARTHUR MOREAU

Promotive effect of exogenously applied thiourea on key physiological parametersand oxidative defense mechanism in salt-stressed Zea mays L. plants

Cengiz KAYA, Muhammad ASHRAF, Osman SÖNMEZ

Aristolochia altanii (Aristolochiaceae), a new species from Turkey

AHMET İLÇİM, LÜTFİ BEHÇET, AYCAN TOSUNOĞLU

Karyotype analysis in Allium roseum L. (Alliaceae) using fluorescent in situ hybridization of rDNA sites and conventional stainings

Arbi GUETAT, Marcella ROSATO, Josep A. ROSSELLÃ", Mohamed BOUSSAID

Random amplified polymorphic DNA as a method to screen metal-tolerant barley (Hordeum vulgare L.) genotypes

Süleyman CENKCİ, Nevra DOĞAN

New records for Turkey and contributions to the macrofungal diversity of Isparta Province

HALİL GÜNGÖR, MEHMET HALİL SOLAK, HAKAN ALLI, MUSTAFA IŞILOĞLU, ERBİL KALMIŞ

Analysis of interactions of nitric oxide and polyamine under cadmium stress in wheat

Fatma MUTLU, Füsun YÜREKLİ

Molecular phylogeny and biogeography of the South American genus Metrodorea (Rutaceae)

Pedro DIAS, RENATA GIASSI UDULUTSCH, Jose Rubens PIRANI

A new species of Russula (Russulaceae) from India based on morphological and molecular (ITS sequence) data

ARUN KUMAR DUTTA, SOUMITRA PALOI, PRAKASH PRADHAN, KRISHNENDU ACHARYA

Generating salt-tolerant Nicotiana tabacum and identification of stress-responsive miRNAs in transgenics

Ferhunde AYSİN, Ayşe Elif Erson BENSAN, Füsun EYİDOĞAN, Hüseyin Avni ÖKTEM