Published December 31, 2022 | Version v1
Journal article Open

Does silicon help to alleviate water deficit stress and in the recovery of Dipteryx alata seedlings?

  • 1. Universidade Federal da Grande Dourados - UFGD, Faculty of Agricultural Sciences, Dourados, MS, Brazil

Description

Silva, M. S., Scalon, S. P. Q., Santos, C. C., Silverio, J. M., Santos, J. K. V., Dresch, D. M. (2022): Does silicon help to alleviate water deficit stress and in the recovery of Dipteryx alata seedlings? Brazilian Journal of Biology (e259016) 82: 1-10, DOI: 10.1590/1519-6984.259016, URL: http://dx.doi.org/10.1590/1519-6984.259016

Files

source.pdf

Files (1.5 MB)

Name Size Download all
md5:f05079f6377b30da906b870a9f6387d8
1.5 MB Preview Download

Linked records

Additional details

Identifiers

LSID
urn:lsid:plazi.org:pub:F050FFF6377BFFDA906B870A9F63FFD8

References

  • ADREES, M., ALI, S., RIZWAN, M., ZIA-UR-REHMAN, M., IBRAHIM, M., ABBAS, F., FARID, M., QAYYUM, M.F. and IRSHAD, M.K., 2015. Mechanisms of silicon-mediated alleviation of heavy metal toxicity in plants: a review. Environmental Science and Pollution Research International, vol. 22, no. 11, pp. 8148-8162. http://dx.doi.org/10.1007/s11356-015-4496-5. PMid:25874438.
  • AHMED, M., KAMRAN, A., ASIF, M., QADEER, U., AHMED, Z.I. and GOYAL, A., 2013 [viewed 9 December 2021]. Silicon priming: a potential source to impart abiotic stress tolerance in wheat: a review. Australian Journal of Crop Science [online], vol. 7, no. 4, pp. 484-491. Available from: https://www.cropj.com/ ahmed742013484491.pdf
  • AJALLA, A.C.A., VOLPE, E., VIEIRA, M.C. and ZARATE, N.A.H., 2012. Production of baru (Dipteryx alata Vog.) seedlings under three levels of shading and four textural classes of soil. Revista Brasileira de Fruticultura, vol. 34, no. 3, pp. 888-896. http:// dx.doi.org/10.1590/S0100-29452012000300031.
  • ARAKAKI, A.A., SCHEIDT, G.N., PORTELLA, A.C., ARRUDA, E.J. and COSTA, R.B., 2009.O baru (Dipteryx alata Vogel.) como alternativa de sustentabilidade em area de fragmento florestal do Cerrado, no Mato Grosso do Sul. Revista Interacoes, vol. 10, no. 1, pp. 31- 39. http://dx.doi.org/10.20435/interacoes.v10i1.400.
  • BARTIERES, E.M.M., DRESCH, D.M., REIS, L.C., PEREIRA, Z.V., MUSSURY, R.M. and SCALON, S.P.Q., 2021. Shading minimizes the effects of water deficit in Campomanesia xanthocarpa (Mart.) O. Berg seedlings.Brazilian Journal of Biology = Revista Brasileira de Biologia, vol.83, pp. e244718.http://dx.doi.org/10.1590/1519- 6984.244718. PMid:34161459.
  • BELTRAMIN, F.A., SILVA, W.C., SANTOS, C.C., SCALON, S.P.Q. and VIEIRA, M.C., 2020. Water-retaining polymer mitigates the water deficit in Schinus terebinthifolia: photosynthetic metabolism and initial growth. Engenharia Agricola, vol. 40, no. 6, pp. 684-691. http://dx.doi.org/10.1590/1809-4430-eng. agric.v40n6p684-691/2020.
  • CAPUZZO, J.P.,ROSSATTO , D.R. and FRANCO , A.C.,2012.Differences in morphological and physiological leaf characteristics between Tabebuia aurea and T. impetiginosa is related to their typical habitats of occurrence.Acta Botanica Brasilica, vol.26, no. 3, pp. 519-526.http://dx.doi.org/10.1590/S0102-33062012000300002.
  • CHEN, D., WANG, S., YIN, L. and DENG, X., 2018. How does silicon mediate plant water uptake and loss under water deficiency? Frontiers in Plant Science, vol. 9, pp. 281. http://dx.doi. org/10.3389/fpls.2018.00281. PMid:29556247.
  • COSTA, A.C.,REZENDE-SILVA, S.L.,MEGGUER , C.A.,MOURA, L.M.F., ROSA , M. and SILVA, A.A., 2015a. The effect of irradiance and water restriction on photosynthesis in young jatoba-do-cerrado (Hymenaea stigonocarpa) plants. Photosynthetica, vol. 53, no. 1, pp. 118-127.http://dx.doi.org/10.1007/s11099-015-0085-6.
  • COSTA, E., DIAS, J.G., LOPES, K.G., BINOTTI, F.F.S. and CARDOSO, E.D., 2015b. Shading screens and substrates for Dipteryx alata Vog. seedling production.Floresta e Ambiente, vol.22, no. 3, pp. 416-425. http://dx.doi.org/10.1590/2179-8087.071714.
  • CRUZ, M.C.M., SIQUEIRA, D.L., SALOMAO, L.C.C. and CECON, P.R., 2009.Chlorophyll a fluorescence in leaves of 'Ponkan' mandarin and the 'Tahiti' acid lime submitted to water stress. Revista Brasileira de Fruticultura, vol. 31, no. 3, pp. 896-901. http:// dx.doi.org/10.1590/S0100-29452009000300037.
  • DICKSON, A., LEAF, A.L. and HOSNER, J.F., 1960. Quality appraisal of white spruce and white pine seedling stock in nurseries. Forestry Chronicle, vol. 36, no. 1, pp. 10-13. http://dx.doi. org/10.5558/tfc36010-1.
  • ETESAMI, H. and JEONG, B.R., 2018. Silicon (Si):review and future prospects on the action mechanisms in alleviating biotic and abiotic stresses in plants. Ecotoxicology and Environmental Safety, vol. 147, pp. 881-896. http://dx.doi.org/10.1016/j. ecoenv.2017.09.063. PMid:28968941.
  • FATIMA, R.T.,JESUS , E.G.,GUERRERO, A.C.,ROCHA , J.L.A.and BRITO , M.E.B., 2019. Silicon fertilization as atenuant of water stress in lettuce growth and gas exchanges. Revista Engenharia na Agricultura, vol.27, no. 2, pp. 170-178.http://dx.doi.org/10.13083/ reveng.v27i2.892.
  • FEI, S.,DESPREZ, J.M.,POTTER, K.M.,JO, I.,KNOTT, J.A.and OSWALT, C.M., 2017.Divergence of species responses to climate change. Science Advances, vol. 3, no. 5, e1603055. http://dx.doi. org/10.1126/sciadv.1603055. PMid:28560343.
  • FERREIRA, D.F., 2019. Sisvar: a computer analysis system to fixed effects Split plot type designs.Revista Brasileira de Biometria, vol. 37, no.4, pp. 529-535.http://dx.doi.org/10.28951/rbb.v37i4.450.
  • FREITAS, V.M.B., SCALON, S.P.Q., DRESCH, D.M., BASTOS, S.S. and SOUZA, A.P.R., 2018. Influence of exogenous application of abscisic acid in gas exchanges of Hymenaea courbaril L.(Fabaceae) seedlings subjected to water deficit.Floresta, vol.48, no. 2, pp. 163-172. http://dx.doi.org/10.5380/rf.v48i2.53076.
  • GONG, H. and CHEN, K., 2012. The regulatory role of silicon on water relations,photosynthetic gas exchange,and carboxylation activities of wheat leaves in field drought. Acta Physiologiae Plantarum, vol. 34, no. 4, pp. 1589-1594. http://dx.doi. org/10.1007/s11738-012-0954-6.
  • HASANUZZAMAN, M., NAHAR, K., ANEE, T.I. and FUJITA, M., 2017. Exogenous silicon attenuates cadmium-induced oxidative stress in Brassica napus L. by modulating ASA-GSH pathway and glyoxalase system.Frontiers in Plant Science, vol.8, pp. 1061. http://dx.doi.org/10.3389/fpls.2017.01061. PMid:28674552.
  • HONORIO, A.B.M.,LOPES, M.B.S.,SIEBENEICHLER, S.C.,SOUZA , C.M. and LEAL, T.C.A.B., 2019. Growth analysis and physiological parameters in Dipteryx alata Vogel seedlings.Pesquisa Aplicada & Agrotecnologia, vol. 12, no. 1, pp. 41-52. http://dx.doi. org/10.5935/PAeT.V12.N1.04.
  • KIM, Y.H.,KHAN, A.L.,WAQAS, M. andLEE, I.J., 2017.Silicon regulates antioxidant activities of crop plants under abiotic-induced oxidative stress: a review.Frontiers in Plant Science, vol. 8, pp. 510.http://dx.doi.org/10.3389/fpls.2017.00510. PMid:28428797.
  • KIM, Y.H., KHAN, A.L., WAQAS, M., SHAHZAD, R. and LEE, I.J., 2016. Silicon-mediated mitigation of wounding stress acts by up-regulating the rice antioxidant. Cereal Research Communications, vol. 44, no. 1, pp. 111-121. http://dx.doi. org/10.1556/0806.43.2015.031.
  • LIANG, Y., NIKOLIC, M., BELANGER, R., GONG, H. and SONG, A. 2015a. Silicon in agriculture: from theory to practice. 1st ed. Dordrecht: Springer, pp. 233-235.
  • LIANG, Y., NIKOLIC, M., BELANGER, R., GONG, H. and SONG, A. 2015b.Silicon in agriculture: from theory to practice.Dordrecht: Springer.Silicon-mediated tolerance to other abiotic stresses, pp. 161-179.http://dx.doi.org/10.1007/978-94-017-9978-2_8.
  • LIU, P.,YIN , L.,DENG, X.,WANG, S.,TANAKA, K. andZHANG, S., 2014. Aquaporin-mediated increase in root hydraulic conductance is involved in silicon-induced improved root water uptake under osmotic stress in (Sorghum bicolor L.). Journal of Experimental Botany, vol.65, no. 17, pp. 4747-4756.http://dx.doi.org/10.1093/ jxb/eru220. PMid:24879770.
  • MAGHSOUDI, K., EMAM, Y. and PESSARAKLI, M., 2016. Effect of silicon on photosynthetic gas exchange, photosynthetic pigments, cell membrane stability and relative water content of different wheat cultivars under drought stress conditions. Journal of Plant Nutrition, vol. 39, no. 7, pp. 1001-1015. http:// dx.doi.org/10.1080/01904167.2015.1109108.
  • MAKSIMOVIC, J.D.,BOGDANOVIC, J.,MAKSIMOVIC, V. andNIKOLIC, M., 2007. Silicon modulates the metabolism and utilization of phenolic compounds in cucumber (Cucumis sativus L.) grown at excess manganese.Journal of Plant Nutrition and Soil Science, vol.170, no. 6, pp. 739-744.http://dx.doi.org/10.1002/ jpln.200700101.
  • MING, D.F.,PEI, Z.F.,NAEEM, M.S.,GONG, H.J. and ZHOU, W.J., 2012. Silicon alleviates PEG-induced water-deficit stress in upland rice seedlings by enhancing osmotic adjustment. Journal Agronomy & Crop Science, vol. 198, no. 1, pp. 14-26. http:// dx.doi.org/10.1111/j.1439-037X.2011.00486.x.
  • MORAES, W.B., JESUS JUNIOR, W.C., MORAES, W.B., ARAUJO, G.L., SOUZA, A.F. and SILVA, M.V., 2011. Application of potassium silicate and leaf growth of sugarcane.Agraria, vol. 6, no. 1, pp. 59-64. http://dx.doi.org/10.5039/agraria.v6i1a902.
  • MOURA, A.R., NOGUEIRA, R.J.M.C., SILVA, J.A.A. and LIMA, T.V., 2016. Water relations and organic solutes in young plants of Jatropha curcas L. under different water regimes/Relacoes hidricas. Ciencia Florestal, vol. 6, no. 2, pp. 345-354. http:// dx.doi.org/10.5902/1980509822735.
  • NUNES, A.M.C., NUNES, L.R.L., RODRIGUES, A.J.O. and UCHOA, K.S., 2019. Silicon in tolerance to water stress in tomatoes. Revista Cientifica Rural, vol.21, no. 2, pp. 239-258.http://dx.doi. org/10.30945/rcr-v21i2.2658.
  • PEREIRA, W.P.,MELO FILHO, P.A.,ALBUQUERQUE, M.B., NOGUEIRA, R.J.M.C.and SANTOS, R.C., 2012.Biochemical changes in peanut genotypes submitted to moderate water stress.Revista Cienca Agronomica, vol.43, no.4, pp.766-773.http://dx.doi.org/10.1590/ S1806-66902012000400019.
  • RIZWAN, M., ALI, S., IBRAHIM, M., FARID, M., ADREES, M., BHARWANA, S.A., ZIA-UR-REHMAN, M., QAYYUM, M.F. and ABBAS, F., 2015. Mechanisms of silicon-mediated alleviation of drought and salt stress in plants: a review. Environmental Science and Pollution Research International, vol. 22, no. 20, pp. 15416-15431. http://dx.doi.org/10.1007/s11356-015-5305-x. PMid:26335528.
  • SANTOS, C.C.,SILVERIO, J.M.,SCALON, S.P.Q.and VIEIRA , M.C.,2021. Hydrogel and water regimes in the chlorophylL- A fluorescence and growth of Campomanesia xanthocarpa (Mart.) O. Berg.