Influence of foliar application of silicon on chlorophyll fluorescence, photosynthetic pigments, and growth in water-stressed wheat cultivars differing in drought tolerance

The influence of foliar application of silicon (Si) on chlorophyll contents, chlorophyll fluorescence, and growth of four wheat cultivars differing in drought tolerance (Sirvan and Chamran, as relatively drought tolerant, and Shiraz and Marvdasht, as drought sensitive) was examined under water deficit (100% and 40% F.C.) created in a greenhouse. The results showed that water deficit decreased shoot and root lengths, shoot dry weight, root dry weight, water utilization efficiency, chlorophyll a and b, and chlorophyll stability index. In contrast, foliar application of Si improved plant growth parameters and chlorophyll pigment concentration under water deficit; however, it did not significantly affect wheat growth under control conditions. Limited water supply reduced the values of minimal fluorescence from dark-adapted leaf (F0), maximal fluorescence from dark-adapted leaf (Fm), maximum quantum yield of PSII (Fv/Fm), effective quantum yield of PSII (PSII), photochemical quenching (qP), and apparent photosynthetic electron transport rate (ETR). However, under water deficit, foliar application of Si application increased the earlier mentioned parameters. In contrast, nonphotochemical quenching (qN) and F0/ Fm increased under water deficit, and application of Si further improved these parameters. Chlorophyll fluorescence analysis suggested that Si alleviated water deficit-induced adverse effects by reducing nonphotochemical quenching, while increasing Fv/Fm and qP, so that it improved the light use efficiency in the four wheat cultivars under stress. Overall, we concluded that drought-sensitive cultivars (Shiraz and Marvdasht) could resemble resistant cultivars upon foliar application of silicon.

Influence of foliar application of silicon on chlorophyll fluorescence, photosynthetic pigments, and growth in water-stressed wheat cultivars differing in drought tolerance

The influence of foliar application of silicon (Si) on chlorophyll contents, chlorophyll fluorescence, and growth of four wheat cultivars differing in drought tolerance (Sirvan and Chamran, as relatively drought tolerant, and Shiraz and Marvdasht, as drought sensitive) was examined under water deficit (100% and 40% F.C.) created in a greenhouse. The results showed that water deficit decreased shoot and root lengths, shoot dry weight, root dry weight, water utilization efficiency, chlorophyll a and b, and chlorophyll stability index. In contrast, foliar application of Si improved plant growth parameters and chlorophyll pigment concentration under water deficit; however, it did not significantly affect wheat growth under control conditions. Limited water supply reduced the values of minimal fluorescence from dark-adapted leaf (F0), maximal fluorescence from dark-adapted leaf (Fm), maximum quantum yield of PSII (Fv/Fm), effective quantum yield of PSII (PSII), photochemical quenching (qP), and apparent photosynthetic electron transport rate (ETR). However, under water deficit, foliar application of Si application increased the earlier mentioned parameters. In contrast, nonphotochemical quenching (qN) and F0/ Fm increased under water deficit, and application of Si further improved these parameters. Chlorophyll fluorescence analysis suggested that Si alleviated water deficit-induced adverse effects by reducing nonphotochemical quenching, while increasing Fv/Fm and qP, so that it improved the light use efficiency in the four wheat cultivars under stress. Overall, we concluded that drought-sensitive cultivars (Shiraz and Marvdasht) could resemble resistant cultivars upon foliar application of silicon.

___

  • Aiken RM (1996). Root system regulation of whole plant growth. Annu Rev Phytopathol 34: 325–346.
  • Al-aghabary K, Zhu Z, Shi Q (2004). Influence of silicon supply on chlorophyll content, chlorophyll fluorescence, and antioxidative enzyme activities in tomato plants under salt stress. J Plant Physiol 27: 2101–2115.
  • Ashraf M, Rahmatullah R, Ahmad M, Afzal M, Tahir A, Kanwal S, Maqsood MA (2009). Potassium and silicon improve yield and juice quality in sugarcane (Saccharum officinarum L.) under salt stress. J Agron Crop Sci 195: 284–291.
  • Atal N, Saradhi PP, Mohanty K (1991). Inhibition of the chloroplast photochemical reactions by treatment of wheat seedlings with low concentrations of Cd: analysis of electron transport activities and changes in fluorescence yield. Plant Cell Physiol 32: 943–951.
  • Baker NR, Rosenqvist E (2004). Applications of chlorophyll fluorescence can improve crop production strategies: an examination of future possibilities. J Exp Bot 55: 1607–1621.
  • Chen W, Yao X, Cai K, Chen J (2011). Silicon alleviates drought stress of rice plants by improving plant water status, photosynthesis and mineral nutrient absorption. Biol Trace Elem Res 142: 67–76.
  • DeEll JR, Toivonen PMA (2003). Use of chlorophyll fluorescence in postharvest quality assessments of fruits and vegetables. In: DeEll JR, Tiovonen PMA, eds. Practical Applications of Chlorophyll Fluorescence in Plant Biology. Boston, MA, USA: Kluwer Academic Publishers.
  • Emam Y (2011). Cereal Production. 4th ed. Shiraz, Iran: Shiraz University Press.
  • Genty B, Briantais JM, Baker NR (1989). The relationship between the quantum yield of photosynthetic electron transport and quenching of chlorophyll fluorescence. Biochimica et Biophysica Acta 99: 87–92.
  • Gong H, Chen K (2012). The regulatory role of Si on water relations, photosynthetic gas exchange, and carboxylation activities of wheat leaves in field drought conditions. Acta Physiol Plant 34: 1589–1594.
  • Guével MH, Menzies JG, Bélanger RR (2007). Effect of root and foliar applications of soluble silicon on powdery mildew control and growth of wheat plants. Eur J Plant Pathol 119: 429–436.
  • Habibi G, Hajiboland R (2013). Alleviation of drought stress by silicon supplementation in pistachio (Pistacia vera L.) plants. Folia Horticulturae 25: 21–29.
  • Hattori T, Inanagaa S, Arakib H (2005). Application of silicon enhanced drought tolerance in Sorghum bicolor. Physiol Plant 123: 459–466.
  • Hellal FA, Abdelhameid M, Abo-BashaDoaa M, Zewainy RM (2012). Alleviation of the adverse effects of soil salinity stress by foliar application of silicon on faba bean (Vica faba L.). J Applied Sci Res 8: 4428–4433.
  • Huang ZA, Jiang DA, Yang Y, Sun JW, Jin SH (2004). Effects of nitrogen deficiency on gas exchange, chlorophyll fluorescence, and antioxidant enzymes in leaves of rice plants. Photosynthetica 42: 357–364.
  • Kastori R, Plesnicar M, Arsenijevic-Maksimovic I, Petrovic N, Pankovic D, Sakac Z (2000). Photosynthesis, chlorophyll fluorescence and water relations in young sugar beet plants as affected by sulfur supply. J Plant Nutr 23: 1037–1049.
  • Kaufman PB, Takeoka Y, Carlson TJ, Bigelow WC, Jones JD, Moore PH, Ghosheh NS (1979). Studies on silica deposition in sugarcane (Saccharum spp.) using scanning electron microscopy, energydispersive X-ray analysis, neutron activation analysis and light microscopy. Phytomorphology 29: 185–193.
  • Kaya C, Tuna L, Higgs D (2006). Effect of silicon on plant growth and mineral nutrition of maize grown under water-stress conditions. J Plant Nutr 29: 1469–1480.
  • Krause GH, Weis E (1991). Chlorophyll fluorescence and photosynthesis: the basics. Annu Rev Plant Physiol Plant Mol Biol 42: 313–349.
  • Li QF, Ma CC, Ji J (2009). Effect of silicon on water metabolism in maize plants under drought stress. Acta Ecol Sinica 29: 4163– 4168.
  • Liang YC, Sun WC, Si J, Romheld V (2005). Effects of foliar- and root-applied silicon on the enhancement of induced resistance to powdery mildew in Cucumis sativus. Plant Pathol 54: 678– 685.
  • Liang YC, Sun WC, Zhu YG (2007). Mechanisms of silicon-mediated alleviation of abiotic stresses in higher plants: a review. Environ Pollut 147: 422–428.
  • Liang YC, Zhu J, Li ZJ (2008). Role of silicon in enhancing resistance to freezing stress in two contrasting winter wheat cultivars. Environ Exp Bot 64: 286–294.
  • Lichtenthaler H, Wellburn AR (1983). Determination of total carotenoids and chlorophyll a and chlorophyll b leaf extracts in different solvents. Biochem Soc Trans 603: 591–592.
  • Ma JF, Takahashi E (2002). Functions of silicon in plant growth. In: Ma JF, Takahashi E (eds) Soil, Fertilizer, and Plant Silicon Research in Japan, 1st ed. Amsterdam, the Netherlands: Elsevier Science.
  • Maxwell K, Johnson GN (2000). Chlorophyll fluorescencea practical guide. J Exp Bot 51: 659–668.
  • Naumann JC, Bissett SN, Young DR, Edwards J, Anderson JE (2010). Diurnal patterns of photosynthesis, chlorophyll fluorescence, and PRI to evaluate water stress in the invasive species, Elaeagnusum bellata Hub. Trees 24: 237–245.
  • Nedbal L, Soukupova J, Whitmarsh J, Trtılek M (2000). Postharvest imaging of chlorophyll fluorescence from lemons can be used to predict fruit quality. Photosynthetica 38: 571–579.
  • Ohashi Y, Nakayama N, Saneokai H, Fujita K (2006). Effects of drought stress on photosynthetic gas exchange, chlorophyll fluorescence and stem diameter of soybean plants. Biol Plant 50: 138–141.
  • Parveen N, Ashraf M (2010). Role of silicon in mitigating the adverse effects of salt stress on growth and photosynthetic attributes of two maize (Zea mays L.) cultivars grown hydroponically. Pak J Bot 42: 1675–1684.
  • Perks JP, Monaghan S, O’Reilly C, Osborne BA, Mitchell DT (2001). Chlorophyll fluorescence characteristics, performance and survival of freshly lifted and cold stored Douglas fir seedlings. Ann Forest Sci 58: 225–235.
  • Rohacek K (2002). Chlorophyll fluorescence parameters: the definitions, photosynthetic meaning, and mutual relationships. Photosynthetica 40: 13–29.
  • Rosenqvist E, van Kooten O (2003). Chlorophyll fluorescence: a general description and nomenclature. In: DeEll JR, Tiovonen PMA, eds. Practical Applications of Chlorophyll Fluorescence in Plant Biology, Boston, MA, USA: Kluwer Academic Publishers.
  • Sairam RK, Deshmukh PS, Shukla DS (1997). Tolerance of drought and temperature stress in relation to increased antioxidant enzyme activity in wheat. J Agron Crop Sci 178: 171–178.
  • Shangguan ZP, Shao MA, Dyckmans J (2000). Effects of nitrogen nutrition and water deficit on net photosynthetic rate and chlorophyll fluorescence in winter wheat. J Plant Physiol 156: 46–51.
  • Shen X, Zhou Y, Duan L, Li Z, Eneji AE, Li J (2010). Si effects on photosynthesis and antioxidant parameters of soybean seedlings under drought and ultraviolet-B radiation. J Plant Physiol 167: 1248–1252.
  • Shi XH, Zhang CC, Wang H (2005). Effect of Si on the distribution of Cd in rice seedlings. Plant Soil 272: 53–60.
  • Souza RP, Machado EC, Silva JAB, Lagoa AMMA, Silveira JAG (2004). Photosynthetic gas exchange, chlorophyll fluorescence and some associated metabolic changes in cowpea (Vignaun guiculata) during water stress and recovery. Environ Exp Bot 51: 45–56.
  • Toivonen PMA, DeEll JR (2001). Chlorophyll fluorescence, fermentation product accumulation, and quality of stored broccoli in modified atmosphere packages and subsequent air storage. Postharvest Biol Technol 23: 61–69.
  • Yao XQ, Chu JZ, Wang GY (2009). Effects of drought stress and selenium supply on growth and physiological characteristics of wheat seedlings. Acta Physiol Plant 5: 1031–1036.
  • Yordanov I, Velikova V, Tsonev T (2000). Plant response to drought, acclimation, and stress tolerance. Photosynthetica 38: 171–186.
Turkish Journal of Botany-Cover
  • ISSN: 1300-008X
  • Yayın Aralığı: Yılda 6 Sayı
  • Yayıncı: TÜBİTAK
Sayıdaki Diğer Makaleler

Taxonomic revision of Astragalus L. section Onobrychoidei DC. (Fabaceae) in Turkey

Murat EKİCİ, Hasan AKAN, Hasan AKAN, Zeki AYTAÇ

Differential expression of soluble pyrophosphatase isoforms in Arabidopsis upon external stimuli

Zahide Neslihan ÖZTÜRK, Steffen GREINER, Thomas RAUSCH

Transferability of barley retrotransposon primers to analyze genetic structure in Iranian Hypericum perforatum L. populations

Razea Asadkhani MAMAGHANI, Seyed Abolghasem MOHAMMADI, Saeid AHARIZAD

Towards a new classification of Salvia s.l.: (re)establishing the genus Pleudia Raf.

Maria WILL, Natalie SCHMALZ, Regine CLASSEN-BOCKHOFF

Influence of culture media and carbon sources on biomass productivity and oil content of the algae Sirogonium sticticum, Temnogyra reflexa, Uronema elongatum, and Chroococcus turgidus

Aftab ALAM, Saleem ULLAH, Sahib ALAM, Hamid Ullah SHAH, Saadia AFTAB, Muhammad SIDDIQ, Nazish MANZOOR

Mechanisms of tolerance differences in cucumber seedlings grafted on rootstocks with different tolerance to low temperature and weak light stresses

Yan LI, Xuemei TIAN, Min WEI, Qinghua SHI, Fengjuan YANG, Xiufeng WANG

Responses to cadmium stress in two tomato genotypes differing in heavy metal accumulation

Shouping ZHAO, Yongzhi ZHANG, Xuezhu YE, Qi ZHANG, Wendan XIAO

Floral function in relation to floral structure in two Periploca species (Periplocoideae) Apocynaceae

Samia HENEIDAK, Yougasphree NAIDOO

Phylogeny of Korean Opuntia spp. based on multiple DNA regions

Krishnamoorthy SRIKANTH, Sung Soo WHANG

Genetic diversity and relationships within and among Onobrychis species using molecular markers

Mohammad ZARRABIAN, Mohammad Mahdi MAJIDI