343
Views
5
CrossRef citations to date
0
Altmetric
Research Article

Growth, yield and water productivity of rice as influenced by seed priming under alternate wetting and drying irrigation

, , , ORCID Icon, &
Pages 1515-1529 | Received 27 Jun 2020, Accepted 30 Mar 2021, Published online: 30 May 2021

References

  • Abiri R, Shaharuddin NA, Maziah M, Yusof ZNB, Atabaki N, Saheb M, Azizi P. 2016. Quantitative assessment of indica rice germination to hydropriming, hormonal priming and polyethylen glycol priming. Chil J Agric Res. 76(4):392–400. doi:10.4067/S0718-58392016000400001.
  • Adams E, Shin R. 2014. Transport, signaling, and homeostasis of potassium and sodium in plants. J Integr Plant Biol. 56:231–249.
  • Ahmed M, Qadeer U, Ahmed ZI, Hassan FU. 2016. Improvement of wheat (Triticum aestivum) drought tolerance by seed priming with silicon. Arch Agron Soil Sci. 62(3):299–315. doi:10.1080/03650340.2015.1048235.
  • Alwhibi MS, Hashem A, Abd_Allah EF, Alqarawi AA, Soliman DWK, Wirth S, Egamberdieva D. 2017. Increased resistance of drought by Trichoderma harzianum fungal treatment correlates with increased secondary metabolites and proline content. J Integr Agric. 16(8):1751–1757. doi:10.1016/S2095-3119(17)61695-2.
  • Anjum NA, Aref IM, Duarte AC, Pereira E, Ahmad I, Iqbal M. 2017. Glutathione and proline can coordinately make plants withstand the joint attack of metal(loid) and salinity stresses. Front Plant Sci. 5:662.
  • Basra SMA, Farooq M, Tabassum R, Ahmad N. 2005. Physiological and biochemical aspects of pre-sowing seed treatments in fine rice (Oryza sativa L.). Seed Sci Technol. 33(3):623–628. doi:10.15258/sst.2005.33.3.09.
  • Bhardwaj D, Ansari MW, Sahoo RK, Tuteja N. 2014. Biofertilizers function as key player in sustainable agriculture by improving soil fertility, plant tolerance and crop productivity. Microb Cell Fact. 13(1):66. doi:10.1186/1475-2859-13-66.
  • Borges Chagas LF, Chagas JAF, Rodrigues De Carvalho M, De Oliveira Miller L, Orozco CBS. 2015. Evaluation of the phosphate solubilization potential of Trichoderma strains (Trichoplus JCO) and effects on rice biomass. J Soil Sci Plant Nutr. 15:794–804.
  • Cheng J, Wang L, Zeng P, He Y, Zhou R, Zhang H, Wang Z. 2017. Identification of genes involved in rice seed priming in the early imbibition stage. Plant Biol. 19:61–69. doi:10.1111/plb.12438.
  • Contreras-Cornejo HA, Macías-Rodríguez L, Cortés-Penagos C, López-Bucio J. 2009. Trichoderma virens, a plant beneficial fungus, enhances biomass production and promotes lateral root growth through an auxin-dependent mechanism in Arabidopsis. Plant Physiol. 149(3):1579–1592. doi:10.1104/pp.108.130369.
  • Dasgupta P, Das BS, Sen SK. 2015. Soil water potential and recoverable water stress in drought tolerant and susceptible rice varieties. Agric Water Manag. 152:110–118. doi:10.1016/j.agwat.2014.12.013.
  • Datta A, Sindel BM, Kristiansen P, Jessop RS, Felton WL. 2009. The Effects of Temperature and Soil Moisture on Chickpea (Cicer arietinum L.) Genotype Sensitivity to Isoxaflutole. J Agron Crop Sci. 195(3):178–185. doi:10.1111/j.1439-037X.2009.00362.x.
  • Datta A, Ullah H, Ferdous Z. 2017. Water management in rice. In: Chauhan BS, Jabran K, Mahajan G, editors. Rice production worldwide. Cham: Springer;p. 255–277. doi: 10.1007/978-3-319-47516-5_11.
  • Doni F, Isahak A, Zain CRCM, Yusoff WMW. 2014. Physiological and growth response of rice plants (Oryza sativa L.) to Trichoderma spp. inoculants. AMB Express. 4(1):45. doi:10.1186/s13568-014-0045-8.
  • Doni F, Zain CRCM, Isahak A, Fathurrahman F, Sulaiman N, Uphoff N, Yusoff WMW. 2017. Relationships observed between Trichoderma inoculation and characteristics of rice grown under System of Rice Intensification (SRI) vs. conventional methods of cultivation. Symbiosis. 72(1):45–59. doi:10.1007/s13199-016-0438-3.
  • Ellis RH, Roberts EH. 1981. The quantification of ageing and survival in orthodox seeds. Seed Sci Technol. 9:373–409.
  • Farooq M, Aziz T, Basra SMA, Cheema MA, Rehman H. 2008. Chilling tolerance in hybrid maize induced by seed priming with salicylic acid. J Agron Crop Sci. 194(2):161–168. doi:10.1111/j.1439-037X.2008.00300.x.
  • Farooq M, Basra SMA, Hafeez K. 2006a. Seed invigoration by osmohardening in coarse and fine rice. Seed Sci Technol. 34(1):181–187. doi:10.15258/sst.2006.34.1.19.
  • Farooq M, Basra SMA, Tabassum R, Afzal I. 2006c. Enhancing the performance of direct seeded fine rice by seed priming. Plant Prod Sci. 9(4):446–456. doi:10.1626/pps.9.446.
  • Farooq M, Basra SMA, Wahid A. 2006b. Priming of field-sown rice seed enhances germination, seedling establishment, allometry and yield. Plant Growth Regul. 49(2–3):285–294. doi:10.1007/s10725-006-9138-y.
  • Farooq M, Basra SMA, Wahid A, Ahmad N. 2010. Changes in nutrient-homeostasis and reserves metabolism during rice seed priming: consequences for germination and seedling growth. Agric Sci China. 9(2):101–108. doi:10.1016/S1671-2927(09)60083-3.
  • Farooq M, Irfan M, Aziz T, Ahmad I, Cheema SA. 2013. Seed priming with ascorbic acid improves drought resistance of wheat. J Agron Crop Sci. 199(1):12–22. doi:10.1111/j.1439-037X.2012.00521.x.
  • Gallardo K, Job C, Groot SPC, Puype M, Demol H, Vandekerckhove J, Job D. 2001. Proteomic analysis of Arabidopsis seed germination and priming. Plant Physiol. 126(2):835–848. doi:10.1104/pp.126.2.835.
  • Gattward JN, Almeida AA, Souza JO, Gomes FP, Kronzucker HJ. 2012. Sodium-potassium synergism i Theobroma cacao : stimulation of photosynthesis, water-use efficiency and mineral nutrition. Physiol Plant. 146(3):350–362. doi:10.1111/j.1399-3054.2012.01621.x.
  • Gomez KA, Gomez AA. 1984. Statistical Procedures for Agricultural Research. 2nd ed. New York: John Wiley & Sons; p. 680.
  • Harman GE. 2000. Myths and Dogmas of Biocontrol Changes in Perceptions Derived from Research on Trichoderma harzinum T-22. Plant Dis. 84(4):377–393. doi:10.1094/PDIS.2000.84.4.377.
  • Harman GE, Doni F, Khadka RB, Uphoff N. 2021. Endophytic strains of Trichoderma increase plants’ photosynthetic capability. J Appl Microbiol. 130(2):529–546. doi:10.1111/jam.14368.
  • Hernández-Herrera RM, Santacruz-Ruvalcaba F, Ruiz-López MA, Norrie J, Hernández-Carmona G. 2014. Effect of liquid seaweed extracts on growth of tomato seedlings (Solanum lycopersicum L.). J Appl Phycol. 26(1):619–628. doi:10.1007/s10811-013-0078-4.
  • Huang S, Leng G, Huang Q, Xie Y, Liu S, Meng E, Li P. 2017. The asymmetric impact of global warming on US drought types and distributions in a large ensemble of 97 hydro-climatic simulations. Sci Rep. 7(1):5891. doi:10.1038/s41598-017-06302-z.
  • Hussain S, Khan F, Cao W, Wu L, Geng M. 2016. Seed priming alters the production and detoxification of reactive oxygen intermediates in rice seedlings grown under sub-optimal temperature and nutrient supply. Front Plant Sci. 7:439. doi:10.3389/fpls.2016.00439.
  • Hussain S, Zheng M, Khan F, Khaliq A, Fahad S, Peng S. 2015. Benefits of rice seed priming are offset permanently by prolonged storage and the storage conditions. Sci Rep. 5(1):8101. doi:10.1038/srep08101.
  • Jiang X, Geng A, He N, Li Q. 2011. New isolate of Trichoderma viride strain for enhanced cellulolytic enzyme complex production. J Biosci Bioeng. 111(2):121–127. doi:10.1016/j.jbiosc.2010.09.004.
  • Jisha KC, Vijayakumari K, Puthur JT. 2013. Seed priming for abiotic stress tolerance: an overview. Acta Physiol Plant. 35(5):1381–1396. doi:10.1007/s11738-012-1186-5.
  • Khadka RB, Uphoff N. 2019. Effects of Trichoderma seedling treatment with system of rice intensification management and with conventional management of transplanted rice. Peer J. 7:e5877. doi:10.7717/peerj.5877.
  • La Hue GT, Chaney RL, Adviento-Borbe MA, Linquist BA. 2016. Alternate wetting and drying in high yielding direct-seeded rice systems accomplishes multiple environmental and agronomic objectives. Agric Ecosyst Environ. 229:30–39. doi:10.1016/j.agee.2016.05.020.
  • Li Z, Xu J, Gao Y, Wang C, Guo G, Luo Y, Huang Y, Hu W, Sheteiwy MS, Guan Y, et al. 2017. The synergistic priming effect of exogenous salicylic acid and H2O2 on chilling tolerance enhancement during maize (Zea mays L.) seed germination. Front Plant Sci. 8:1153. doi:10.3389/fpls.2017.01153.
  • Liang KM, Zhong XH, Huang NR, Lampayan RM, Pan JF, Tian K, Liu YZ. 2016. Grain yield, water productivity and CH4 emission of irrigated rice in response to water management in south China. Agric Water Manag. 163:319–331. doi:10.1016/j.agwat.2015.10.015.
  • Liu Z, Azeem S, Zhang Z, Li Z, Zhao H, Lin W. 2016. Promising role of moderate soil drying and subsequent recovery through moderate wetting at grain-filling stage for rice yield enhancement. J Plant Growth Regul. 35(3):838–850. doi:10.1007/s00344-016-9587-0.
  • Lv Y, Zhang S, Wang J, Hu Y. 2016. Quantitative proteomic analysis of wheat seeds during artificial ageing and priming using the isobaric tandem mass tag labeling. Plos One. 11(9):e0162851. doi:10.1371/journal.pone.0162851.
  • Maneepitak S, Ullah H, Datta A, Shrestha RP, Shrestha S, Kachenchart B. 2019a. Effects of water and rice straw management practices on water savings and greenhouse gas emissions from a double-rice paddy field in the Central Plain of Thailand. Eur J Agron. 107:18–29. doi:10.1016/j.eja.2019.04.002.
  • Maneepitak S, Ullah H, Paothong K, Kachenchart B, Datta A, Shrestha RP. 2019b. Effect of water and rice straw management practices on yield and water productivity of irrigated lowland rice in the Central Plain of Thailand. Agric Water Manag. 211:89–97. doi:10.1016/j.agwat.2018.09.041.
  • Parera CA, Qiao P, Cantliffe DJ. 1993. Enhanced celery germination at stress temperature via solid matrix priming. Hort Sci. 28:20–22.
  • Pouramir-Dashtmiana F, Khajeh-Hosseinia M, Esfahani M. 2014. Improving chilling tolerance of rice seedling by seed priming with salicylic acid. Arch Agron Soil Sci. 60(9):1291–1302. doi:10.1080/03650340.2014.892584.
  • Raj A, Tripathi MP. 2000. Varietal variations in flag leaf area and yield in deep water rice. Indian J Plant Physiol. 5:293–294.
  • Raj AB, Raj SK. 2019. Seed priming: an approach towards agricultural sustainability. J Appl Nat Sci. 11(1):227–234. doi:10.31018/jans.v11i1.2010.
  • Rawat L, Singh Y, Shukla N, Kumar J. 2011. Alleviation of the adverse effects of salinity stress in wheat (Triticum aestivum L.) by seed biopriming with salinity tolerant isolates of Trichoderma harzianum. Plant Soil. 347(1–2):387–400. doi:10.1007/s11104-011-0858-z.
  • Rawat L, Singh Y, Shukla N, Kumar J. 2012. Seed biopriming with salinity tolerant isolates of Trichoderma harzianum alleviates salt stress in rice: growth, physiological and biochemical characteristics. J Plant Pathol. 94:353–365.
  • Ruttanaruangboworn A, Chanprasert W, Tobunluepop P, Onwimol D. 2017. Effect of seed priming with different concentrations of potassium nitrate on the pattern of seed imbibition and germination of rice (Oryza sativa L.). J Integr Agric. 16(3):605–613. doi:10.1016/S2095-3119(16)61441-7.
  • Santiago‐Arenas R, Fanshuri BA, Hadi SN, Ullah H, Datta A. 2020. Nitrogen fertiliser and establishment method affect growth, yield and nitrogen use efficiency of rice under alternate wetting and drying irrigation. Ann Appl Biol. 176(3):314–327. doi:10.1111/aab.12585.
  • Santiago‐Arenas R, Hadi SN, Fanshuri BA, Ullah H, Datta A. 2019. Effect of nitrogen fertiliser and cultivation method on root systems of rice subjected to alternate wetting and drying irrigation. Ann Appl Biol. 175(3):388–399. doi:10.1111/aab.12540.
  • Schwember AR, Bradford KJ. 2010. A genetic locus and gene expression pattern associated with the priming effect on lettuce seed germination at elevated temperature. Plant Mol Biol. 73(1–2):105–118. doi:10.1007/s11103-009-9591-x.
  • Shukla N, Awasthi RP, Rawat L, Kumar J. 2015. Seed biopriming with drought tolerant isolates of Trichoderma harzianu promote growth and drought tolerance i Triticum aestivum. Ann Appl Biol. 166(2):171–182. doi:10.1111/aab.12160.
  • Sirisuntornlak N, Ghafoori S, Datta A, Arirob W. 2019. Seed priming and soil incorporation with silicon influence growth and yield of maize under water-deficit stress. Arch Agron Soil Sci. 65(2):197–207. doi:10.1080/03650340.2018.1492713.
  • Sun H, Lin L, Wang X, Wu S, Wang X. 2011. Ascorbate-glutathione cycle of mitochondria in osmoprimed soybean cotyledons in response to imbibitional chilling injury. J Plant Physiol. 168(3):226–232. doi:10.1016/j.jplph.2010.07.017.
  • Thakur AK, Uphoff N, Antony E. 2010. An assessment of physiological effects of system of rice intensification (SRI) practices compared with recommended rice cultivation practices in India. Exp Agric. 46(1):77–98. doi:10.1017/S0014479709990548.
  • Tuong TP, Bouman BAM. 2003. Rice production in water-scarce environments. Agric Water Manage. 2:13–42.
  • Ullah H, Datta A. 2018a. Root system response of selected lowland Thai rice varieties as affected by cultivation method and potassium rate under alternate wetting and drying irrigation. Arch Agron Soil Sci. 64(14):2045–2059. doi:10.1080/03650340.2018.1476756.
  • Ullah H, Datta A. 2018b. Effect of water saving technologies on growth, yield and water productivity of lowland rice variety. Int J Technol. 7(7):1375–1383. doi:10.14716/ijtech.v9i7.1666.
  • Ullah H, Datta A, Samim NA, Ud Din S. 2019c. Growth and yield of lowland rice as affected by integrated nutrient management and cultivation method under alternate wetting and drying water regime. J Plant Nutr. 42(6):580–594. doi:10.1080/01904167.2019.1567766.
  • Ullah H, Datta A, Shrestha S, Ud Din S. 2017. The effects of cultivation methods and water regimes on root systems of drought-tolerant (RD6) and drought-sensitive (RD10) rice varieties of Thailand. Arch Agron Soil Sci. 63(9):1198–1209. doi:10.1080/03650340.2016.1266077.
  • Ullah H, Giri S, Attia A, Datta A. 2020. Effects of establishment method and water management on yield and water productivity of tropical lowland rice. Exp Agric. 56(3): 331–316. doi:10.1017/S0014479719000395.
  • Ullah H, Luc PD, Gautam A, Datta A. 2018b. Growth, yield and silicon uptake of rice (Oryza sativa) as influenced by dose and timing of silicon application under water-deficit stress. Arch Agron Soil Sci. 64(3):318–330. doi:10.1080/03650340.2017.1350782.
  • Ullah H, Mohammadi A, Datta A. 2018a. Growth, yield and water productivity of selected lowland Thai rice varieties under different cultivation methods and alternate wetting and drying irrigation. Ann Appl Biol. 173(3):302–312. doi:10.1111/aab.12463.
  • Ullah H, Rahimi AZ, Datta A. 2019a. Growth and yield of lowland rice as influenced by potassium application and cultivation method under alternate wetting and drying water regime. J Plant Nutr. 42(13):1529–1542. doi:10.1080/01904167.2019.1628973.
  • Ullah H, Santiago-Arenas R, Ferdous Z, Attia A, Datta A. 2019b. Improving water use efficiency, nitrogen use efficiency, and radiation use efficiency in field crops under drought stress: a review. Adv Agron. 156:109–1457.
  • Vinale F, Sivassithamparam K, Ghisalbert EL, Marra R, Woo SL, Larito M. 2008. Trichoderma –plant–pathogen interactions. Soil Biol Biochem. 40(1):1–10. doi:10.1016/j.soilbio.2007.07.002.
  • Wojtyla L, Lechowska K, Kubala S, Garnczarska M. 2016. Molecular processes induced in primed seeds—increasing the potential to stabilize crop yields under drought conditions. J Plant Physiol. 203:116–126. doi:10.1016/j.jplph.2016.04.008.
  • Wu XH, Wang W, Yin CM, Hou HJ, Xie KJ, Xie XL. 2017. Water consumption, grain yield, and water productivity in response to field water management in double rice systems in China. Plos One. 12(12):e0189280. doi:10.1371/journal.pone.0189280.
  • Yildirim E, Taylor AG, Spittler TD. 2006. Ameliorative effects of biological treatments on growth of squash plants under salt stress. Sci Hortic. 111(1):1–6. doi:10.1016/j.scienta.2006.08.003.
  • Zheng M, Tao Y, Hussain S, Jiang Q, Peng S, Huang J, Nie L. 2016. Seed priming in dry direct-seeded rice: consequences for emergence, seedling growth and associated metabolic events under drought stress. Plant Growth Regul. 78(2):167–178. doi:10.1007/s10725-015-0083-5.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.