Kiến Thức Nông Nghiệp

Silicon và độ mặn (Phần 3)

14/02/2026 Agmin Việt Nam 0 Nhận xét

Tài liệu tham khảo cho bài viết:

Abbas, T., Balal, R. M., Shahid, M. A., Pervez, M. A., Ayyub, C. M., Aqueel, M. A., et al. (2015). Silicon-induced  alleviation of NaCl toxicity in okra (Abelmoschus esculentus) is associated with enhanced photosynthesis, osmoprotectants and antioxidant metabolism. Acta Physiol. Plant. 37, 6. doi: 10.1007/s11738-014-1768-5 

Abbas, T., Sattar, A., Ijaz, M., Aatif, M., Khalid, S., Sher, A. (2017). Exogenous silicon application alleviates  salt stress in okra. Horticult. Environ. Biotechnol. 58, 342–349. doi: 10.1007/s13580-017-0247-5 

Acosta-Motos, J., Ortuño, M., Bernal-Vicente, A., Diaz-Vivancos, P., Sanchez-Blanco, M., Hernandez, J.  (2017). Plant responses to salt stress: adaptive mechanisms. Agronomy 7, 18. doi: 10.3390/agronomy7010018 

Ahanger, M. A., Alyemeni, M. N., Wijaya, L., Alamri, S. A., Alam, P., Ashraf, M., et al. (2018). Potential of  exogenously sourced kinetin in protecting Solanum lycopersicum from NaCl-induced oxidative stress through  up-regulation of the antioxidant system, ascorbate-glutathione cycle and glyoxalase system. PloS One 13,  e0202175. doi: 10.1371/journal.pone.0202175 

Ahanger, M. A., Agarwal, R. (2017). Salinity stress induced alterations in antioxidant metabolism and nitrogen  assimilation in wheat (Triticum aestivum L) as influenced by potassium supplementation. Plant Physiol.  Biochem. 115, 449–460. doi: 10.1016/j.plaphy.2017.04.017 

Ahanger, M. A., Tomar, N. S., Tittal, M., Argal, S., Agarwal, R. (2017). Plant growth under water/salt stress:  ROS production; antioxidants and significance of added potassium under such conditions. Physiol. Mol. Biol.  Plants 23, 731–744. doi: 10.1007/s12298-017-0462-7 

Ahmad, P., Abass Ahanger, M., Nasser Alyemeni, M., Wijaya, L., Alam, P., Ashraf, M. (2018). Mitigation of  sodium chloride toxicity in Solanum lycopersicum L. by supplementation of jasmonic acid and nitric oxide. J.  Plant Interact. 13, 64–72. doi: 10.1080/17429145.2017.1420830 

Ahmad, P., Ahanger, M. A., Alam, P., Alyemeni, M. N., Wijaya, L., Ali, S., et al. (2019a). Silicon (Si)  supplementation alleviates NaCl toxicity in mung bean [Vigna radiata (L.) Wilczek] through the modifications  of physio-biochemical attributes and key antioxidant enzymes. J. Plant Growth Regul. 38, 70–82. doi:  10.1007/s00344-018-9810-2 

Ahmad, P., Rasool, S. (Eds.). (2014). Emerging technologies and management of crop stress tolerance: Volume  1-Biological Techniques (Vol. 1). Academic Press. 

Ahmad, R., Hussain, S., Anjum, M.A., Khalid, M.F., Saqib, M., Zakir, I., Hassan, A., Fahad, S., Ahmad, S.  (2019b). "Oxidative Stress and Antioxidant Defense Mechanisms in Plants Under Salt Stress," in Plant Abiotic  Stress Tolerance. Springer), 191–205. doi: 10.1007/978-3-030-06118-0_8 

Al-Aghabary, K., Zhu, Z., Shi, Q. (2005). Influence of silicon supply on chlorophyll content, chlorophyll  fluorescence, and antioxidative enzyme activities in tomato plants under salt stress. J. Plant Nutr. 27, 2101– 2115. doi: 10.1081/PLN-200034641 

Al-Huqail, A. A., Alqarawi, A. A., Hashem, A., Malik, J. A., Abd-Allah, E. F. (2017). Silicon supplementation  modulates antioxidant system and osmolyte accumulation to balance salt stress in Acacia gerrardii Benth. Saudi  J. Biol. Sci. doi: 10.1016/j.sjbs.2017.11.049 

Ali, A., Basra, S., Ahmad, R., Wahid, A. (2009). Optimizing silicon application to improve salinity tolerance in  wheat. Soil Environ. 28, 136–144. 

Almeida, D. M., Oliveira, M. M., Saibo, N. J. (2017). Regulation of Na+ and K+ homeostasis in plants: towards  improved salt stress tolerance in crop plants. Genet. Mol. Biol. 40, 326–345. doi: 10.1590/1678-4685-gmb 2016-0106 

Artyszak, A. (2018). Effect of silicon fertilization on crop yield quantity and quality-a literature review in  Europe. Plants 7, 54. doi: 10.3390/plants7030054

Ashraf, M. (2004). Some important physiological selection criteria for salt tolerance in plants. Flora-Morphol.  Distrib. Funct. Ecol. Plants 199, 361–376. doi: 10.1078/0367-2530-00165 

Ashraf, M. F. M. R., Foolad, M. (2007). Roles of glycine betaine and proline in improving plant abiotic stress  resistance. Environ. Exp. Bot. 59(2), 206–216. 

Ashraf, M., Afzal, M., Ahmed, R., Mujeeb, F., Sarwar, A., Ali, L. (2010a). Alleviation of detrimental effects of  NaCl by silicon nutrition in salt-sensitive and salt-tolerant genotypes of sugarcane (Saccharum officinarum L.).  Plant Soil 326, 381–391. doi: 10.1007/s11104-009-0019-9 

Ashraf, M., Akram, N. A., Al-Qurainy, F., Foolad, M. R. (2011). Drought tolerance: roles of organic osmolytes,  growth regulators, and mineral nutrients. In Advances in Agronomy (Vol. 111, pp. 249–296). Academic Press.  doi: 10.1016/B978-0-12-387689-8.00002-3 

Ashraf, M., Akram, N., Arteca, R., Foolad, M. (2010b). The physiological, biochemical and molecular roles of  brassinosteroids and salicylic acid in plant processes and salt tolerance. Crit. Rev. Plant Sci. 29, 162–190. doi:  10.1080/07352689.2010.483580 

Assaha, D. V., Ueda, A., Saneoka, H., Al-Yahyai, R., Yaish, M. W. (2017). The role of Na+ and K+ transporters  in salt stress adaptation in glycophytes. Front. Physiol. 8, 509. doi: 10.3389/fphys.2017.00509 

Bae, E. J., Lee, K. S., Huh, M. R., Lim, C. S. (2012). Silicon significantly alleviates the growth inhibitory effects  of NaCl in salt-sensitive 'Perfection'and 'Midnight'Kentucky bluegrass (Poa pratensis L.). Horticult. Environ.  Biotechnol. 53, 477–483. doi: 10.1007/s13580-012-0094-3 

Bajguz, A. (2014). Nitric oxide: role in plants under abiotic stress. In Physiological mechanisms and adaptation  strategies in plants under changing environment (pp. 137-159). (New York, NY: Springer) doi: 10.1007/978-1- 4614-8600-8_5 

Bakhat, H. F., Bibi, N., Zia, Z., Abbas, S., Hammad, H. M., Fahad, S., et al. (2018). Silicon mitigates biotic  stresses in crop plants: a review. Crop Prot. 104, 21–34. doi: 10.1016/j.cropro.2017.10.008 

Barcelo, J., Guevara, P., Poschenrieder, C. (1993). Silicon amelioration of aluminium toxicity in teosinte (Zea  mays L. ssp. mexicana). Plant Soil 154, 249–255. doi: 10.1007/BF00012530 

Besson-Bard, A., Pugin, A., Wendehenne, D. (2008). New insights into nitric oxide signaling in plants. Annu.  Rev. Plant Biol. 59, 21–39. doi: 10.1146/annurev.arplant.59.032607.092830 

Bohnert, H. J., Shen, B. (1998). Transformation and compatible solutes. Scientia Hortic. 78, 237–260. doi:  10.1016/S0304-4238(98)00195-2 

Bozza, D. C., Freire, C. A., Prodocimo, V. (2019). Osmo-ionic regulation and carbonic anhydrase, Na+/K+- ATPase and V-H+-ATPase activities in gills of the ancient freshwater crustacean Aegla schmitti (Anomura)  exposed to high salinities. Comp. Biochem. Physiol. Part A: Mol. Integr. Physiol. 231, 201–208. doi:  10.1016/j.cbpa.2019.02.024 

Bhatnagar-Mathur, P., Vadez, V., Sharma, K. K. (2008). Transgenic approaches for abiotic stress tolerance in  plants: retrospect and prospects. Plant Cell Rep. 27(3), 411–424. 

Caverzan, A., Casassola, A., Brammer, S. P. (2016). Reactive oxygen species and antioxidant enzymes involved  in plant tolerance to stress. Embrapa Trigo-Capítulo Em Livro Científico (ALICE). 463–480. doi:  10.5772/61368 

Chanchal Malhotra, C., Kapoor, R., Ganjewala, D. (2016). Alleviation of abiotic and biotic stresses in plants by  silicon supplementation. Scientia 13, 59–73. doi: 10.15192/PSCP.SA.2016.13.2.5973 

Chen, H., Jiang, J. G. (2010). Osmotic adjustment and plant adaptation to environmental changes related to  drought and salinity. Environ. Rev. 18, 309–319. 

Chen, Q., Zhang, M., Shen, S. (2011). Effect of salt on malondialdehyde and antioxidant enzymes in seedling  roots of Jerusalem artichoke (Helianthus tuberosus L.). Acta Physiol. Plantarum 33, 273–278. doi:  10.1007/s11738-010-0543-5 

Chen, S., Li, J., Wang, S., Hüttermann, A., Altman, A. (2001). Salt, nutrient uptake and transport, and ABA of  Populus euphratica; a hybrid in response to increasing soil NaCl. Trees 15, 186–194. doi:  10.1007/s004680100091

Chiba, Y., Mitani, N., Yamaji, N., Ma, J. F. (2009). HvLsi1 is a silicon influx transporter in barley. Plant J. 57,  810–818. doi: 10.1111/j.1365-313X.2008.03728.x 

Cho, S. H., Von Schwartzenberg, K., Quatrano, R. (2018). The role of abscisic acid in stress tolerance. Annu.  Plant Rev. Online, 15, 282–297. doi: 10.1002/9781119312994.apr0394 

Cocker, K. M., Evans, D. E., Hodson, M. J. (1998). The amelioration of aluminium toxicity by silicon in wheat  (Triticum aestivum L.): malate exudation as evidence for an in planta mechanism. Planta 204, 318–323. doi:  10.1007/s004250050262 

Conceição, S. S., Oliveira Neto, C. F. D., Marques, E. C., Barbosa, A. V. C., Galvão, J. R., Oliveira, T. B. D., et  al. (2019). Silicon modulates the activity of antioxidant enzymes and nitrogen compounds in sunflower plants  under salt stress. Arch. Agron. Soil Sci. 65, 1237–1247. doi: 10.1080/03650340.2018.1562272 

Cooke, J., Leishman, M. R. (2011). Silicon concentration and leaf longevity: is silicon a player in the leaf dry  mass spectrum? Funct. Ecol. 25, 1181–1188. doi: 10.1111/j.1365-2435.2011.01880.x 

Coskun, D., Britto, D. T., Huynh, W. Q., Kronzucker, H. J. (2016). The role of silicon in higher plants under  salinity and drought stress. Front. Plant Sci. 7, 1072. doi: 10.3389/fpls.2016.01072 

Cotterill, J. V., Watkins, R. W., Brennon, C. B., Cowan, D. P. (2007). Boosting silica levels in wheat leaves  reduces grazing by rabbits. Pest Manage. Sci.: Formerly Pesticide Sci. 63, 247–253. doi: 10.1002/ps.1302 

Cuin, T. A., Shabala, S. (2007). Amino acids regulate salinity-induced potassium efflux in barley root epidermis.  Planta 225, 753. doi: 10.1007/s00425-006-0386-x 

Debona, D., Rodrigues, F. A., Datnoff, L. E. (2017). Silicon's role in abiotic and biotic plant stresses. Annu.  Rev. Phytopathol. 55, 85–107. doi: 10.1146/annurev-phyto-080516-035312 

Deshmukh, R. K., Vivancos, J., Guérin, V., Sonah, H., Labbé, C., Belzile, F., et al. (2013). Identification and  functional characterization of silicon transporters in soybean using comparative genomics of major intrinsic  proteins in Arabidopsis and rice. Plant Mol. Biol. 83, 303–315. doi: 10.1007/s11103-013-0087-3 

Detmann, K. C., Araújo, W. L., Martins, S. C., Sanglard, L. M., Reis, J. V., Detmann, E., et al. (2012). Silicon  nutrition increases grain yield, which, in turn, exerts a feed-forward stimulation of photosynthetic rates via  enhanced mesophyll conductance and alters primary metabolism in rice. New Phytol. 196, 752–762. doi:  10.1111/j.1469-8137.2012.04299.x 

Dodd, I. C., Davies, W. J. (2010). Hormones and the regulation of water balance. In Plant Hormones  (Dordrecht: Springer). pp. 519–548. doi: 10.1007/978-1-4020-2686-7_23 

Dubos, C., Plomion, C. (2003). Identification of water-deficit responsive genes in maritime pine (Pinus pinaster  Ait.) roots. Plant Mol. Biol. 51, 249–262. doi: 10.1023/1021168811590 

Dunlap, J. R., Binzel, M. L. (1996). NaCI reduces indole-3-acetic acid levels in the roots of tomato plants  independent of stress-induced abscisic acid. Plant Physiol. 112, 379–384. doi: 10.1104/pp.112.1.379 

El-Mashad, A.a.A., Mohamed, H. I. (2012). Brassinolide alleviates salt stress and increases antioxidant activity  of cowpea plants (Vigna sinensis). Protoplasma 249, 625–635. doi: 10.1007/s00709-011-0300-7 

El-Shintinawy, F., El-Shourbagy, M. (2001). Alleviation of changes in protein metabolism in NaCl-stressed  wheat seedlings by thiamine. Biol. Plant. 44, 541–545. doi: 10.1023/A:1013738603020 

Epstein, E. (1999). Silicon. Annu. Rev. Plant Biol. 50, 641–664. doi: 10.1146/annurev.arplant.50.1.641 

Etesami, H., Jeong, B. R. (2018). Silicon (Si): review and future prospects on the action mechanisms in  alleviating biotic and abiotic stresses in plants. Ecotoxicol. Environ. Saf. 147, 881–896. doi:  10.1016/j.ecoenv.2017.09.063 

Eyidogan, F., Oz, M. T., Yucel, M., Oktem, H. A. (2012). Signal transduction of phytohormones under abiotic  stresses. In Phytohormones and Abiotic Stress Tolerance in Plants. (Berlin, Heidelberg: Springer) pp. 1-48. doi:  10.1007/978-3-642-25829-9_1 

Fahad, S., Hussain, S., Matloob, A., Khan, F. A., Khaliq, A., Saud, S., et al. (2015). Phytohormones and plant  responses to salinity stress: a review. Plant Growth Regul. 75, 391–404. doi: 10.1007/s10725-014-0013-y 

Fan, Y., Yin, X., Xie, Q., Xia, Y., Wang, Z., Song, J., et al. (2019). Co-expression of SpSOS1 and SpAHA1 in  transgenic Arabidopsis plants improves salinity tolerance. BMC Plant Biol. 19, 74. doi: 10.1186/s12870-019- 1680-7

Farhangi-Abriz, S., Ghassemi-Golezani, K. (2018). How can salicylic acid and jasmonic acid mitigate salt  toxicity in soybean plants? Ecotoxicol. Environ. Saf. 147, 1010–1016. doi: 10.1016/j.ecoenv.2017.09.070 

Feng, J., Yamaji, N., Mitani-Ueno, N. (2011). Transport of silicon from roots to panicles in plants. Proc. Japan  Acad. Ser. B 87, 377–385. doi: 10.2183/pjab.87.377 

Ford, C. W. (1984). Accumulation of low molecular weight solutes in water-stressed tropical legumes.  Phytochemistry 23, 1007–1015. doi: 10.1016/S0031-9422(00)82601-1 

Foyer, C. H. (2018). Reactive oxygen species, oxidative signaling and the regulation of photosynthesis. Environ.  Exp. Bot. 154, 134–142. doi: 10.1016/j.envexpbot.2018.05.003 

Frew, A., Weston, L. A., Reynolds, O. L., Gurr, G. M. (2018). The role of silicon in plant biology: a paradigm  shift in research approach. Ann. Bot. 121, 1265–1273. doi: 10.1093/aob/mcy009 

Fricke, W., Akhiyarova, G., Veselov, D., Kudoyarova, G. (2004). Rapid and tissue-specific changes in ABA and  in growth rate in response to salinity in barley leaves. J. Exp. Bot. 55, 1115–1123. doi: 10.1093/jxb/erh117 

Galvez, L., Clark, R. (1991). “Effects of silicon on growth and mineral composition of sorghum (Sorghum  bicolor) grown with toxic levels of aluminium,” in Plant-Soil Interactions at Low pH (Springer), 815–823. doi:  10.1007/978-94-011-3438-5_92 

Garg, N., Bhandari, P. (2016). Silicon nutrition and mycorrhizal inoculations improve growth, nutrient status,  K+/Na+ ratio and yield of Cicer arietinum L. genotypes under salinity stress. Plant Growth Regul. 78, 371– 387. doi: 10.1007/s10725-015-0099-x 

Gibson, T., Speirs, J., Brady, C. (1984). Salt-tolerance in plants. II. In vitro translation of m-RNAs from salt tolerant and salt-sensitive plants on wheat germ ribosomes. Responses to ions and compatible organic solutes.  Plant Cell Environ. 7, 579–587. doi: 10.1111/j.1365-3040.1984.tb01858.x 

Gill, S. S., Tuteja, N. (2010). Reactive oxygen species and antioxidant machinery in abiotic stress tolerance in  crop plants. Plant Physiol. Biochem. 48, 909–930. doi: 10.1016/j.plaphy.2010.08.016 

Godfray, H. C. J., Beddington, J. R., Crute, I. R., Haddad, L., Lawrence, D., Muir, J. F., et al. (2010). Food  security: the challenge of feeding 9 billion people. science 327, 812–818. doi: 10.1126/science.1185383 

Gong, H., Blackmore, D., Clingeleffer, P., Sykes, S., Jha, D., Tester, M., et al. (2010). Contrast in chloride  exclusion between two grapevine genotypes and its variation in their hybrid progeny. J. Exp. Bot. 62, 989–999.  doi: 10.1093/jxb/erq326 

Gong, H., Randall, D., Flowers, T. (2006). Silicon deposition in the root reduces sodium uptake in rice (Oryza  sativa L.) seedlings by reducing bypass flow. Plant Cell Environ. 29, 1970–1979. doi: 10.1111/j.1365- 3040.2006.01572.x 

Gong, H., Zhu, X., Chen, K., Wang, S., Zhang, C. (2005). Silicon alleviates oxidative damage of wheat plants in  pots under drought. Plant Sci. 169, 313–321. doi: 10.1016/j.plantsci.2005.02.023 

Graus, D., Konrad, K. R., Bemm, F., Patir Nebioglu, M. G., Lorey, C., Duscha, K., et al. (2018). High V-PPase  activity is beneficial under high salt loads, but detrimental without salinity. New Phytol. 219, 1421–1432. doi:  10.1111/nph.15280 

Gregory, P. J., Ismail, S., Razaq, I. B., Wahbi, A. (2018). Soil salinity: current status and in depth analyses for  sustainable use. Chapter 2 (No. IAEA-TECDOC--1841). 

Gunes, A., Inal, A., Bagci, E. G., Coban, S. (2007a). Silicon-mediated changes on some physiological and  enzymatic parameters symptomatic of oxidative stress in barley grown in sodic-B toxic soil. J. Plant Physiol.  164, 807–811. doi: 10.1016/j.jplph.2006.07.011 

Gunes, A., Inal, A., Bagci, E. G., Pilbeam, D. J. (2007b). Silicon-mediated changes of some physiological and  enzymatic parameters symptomatic for oxidative stress in spinach and tomato grown in sodic-B toxic soil. Plant  Soil 290, 103–114. doi: 10.1007/s11104-006-9137-9 

Guo, Y., Tian, Z., Yan, D., Zhang, J., Qin, P. (2005). Effects of nitric oxide on salt stress tolerance in  Kosteletzkya virginica. LifeSci. J. 6. 

Gupta, B., Huang, B. (2014). Mechanism of salinity tolerance in plants: physiological, biochemical, and  molecular characterization. Int. J. Genomics 2014 (18). doi: 10.1155/2014/701596

Gurmani, A., Bano, A., Khan, S., Din, J., Zhang, J. (2011). Alleviation of salt stress by seed treatment with  abscisic acid (ABA), 6-benzylaminopurine (BA) and chlormequat chloride (CCC) optimizes ion and organic  matter accumulation and increases yield of rice ('Oryza sativa'L.). Aust. J. Crop Sci. 5, 1278. 

Haddad, C., Arkoun, M., Jamois, F., Schawarzbenberg, A., Yvin, J.-C., Etienne, P., et al. (2018). Silicon  Promotes Growth of Brassica napus L. and Delays Leaf Senescence Induced by Nitrogen Starvation. Front.  Plant Sci. 9, 516. doi: 10.3389/fpls.2018.00516 

Halperin, S. J., Lynch, J. P. (2003). Effects of salinity on cytosolic Na+ and K+ in root hairs of Arabidopsis  thaliana: in vivo measurements using the fluorescent dyes SBFI and PBFI. J. Exp. Bot. 54, 2035–2043. doi:  10.1093/jxb/erg219 

Hamayun, M., Sohn, E.-Y., Khan, S. A., Shinwari, Z. K., Khan, A. L., Lee, I.-J. (2010). Silicon alleviates the  adverse effects of salinity and drought stress on growth and endogenous plant growth hormones of soybean  (Glycine max L.). Pak. J. Bot. 42, 1713–1722. 

Hanson, A. D., Rathinasabapathi, B., Rivoal, J., Burnet, M., Dillon, M. O., Gage, D. A. (1994). Osmoprotective  compounds in the Plumbaginaceae: a natural experiment in metabolic engineering of stress tolerance. Proc.  Natl. Acad. Sci. 91, 306–310. doi: 10.1073/pnas.91.1.306 

Hasanuzzaman, M., Nahar, K., Rohman, M., Anee, T., Huang, Y., Fujita, M. (2018). Exogenous silicon protects  brassica napus plants from salinity-induced oxidative stress through the modulation of AsA-GSH pathway,  thiol-dependent antioxidant enzymes and glyoxalase systems. Gesunde Pflanzen 70, 185–194. doi:  10.1007/s10343-018-0430-3 

Hasegawa, P. M. (2013). Sodium (Na+) homeostasis and salt tolerance of plants. Environ. Exp. Bot. 92, 19–31.  doi: 10.1016/j.envexpbot.2013.03.001 

Hoque, M. A., Banu, M. N. A., Okuma, E., Amako, K., Nakamura, Y., Shimoishi, Y., et al. (2007). Exogenous  proline and glycinebetaine increase NaCl-induced ascorbate-glutathione cycle enzyme activities, and proline  improves salt tolerance more than glycinebetaine in tobacco Bright Yellow-2 suspension-cultured cells. J. Plant  Physiol. 164, 1457–1468. doi: 10.1016/j.jplph.2006.10.004 

Horváth, E., Szalai, G., Janda, T. (2007). Induction of abiotic stress tolerance by salicylic acid signaling. J.  Plant Growth Regul. 26, 290–300. doi: 10.1007/s00344-007-9017-4 

Hussain, M., Fatima, H., Khan, A., Ghani, A., Nadeem, M., Aziz, A., et al. (2018). Improving salinity tolerance  in brassica (Brassica napus var. Bsa and Brassica campestris var. Toria) by exogenous application of proline  and glycine betaine. Biol. Sci.-PJSIR 61, 1–8. 

Ibrahim, M., Merwad, A., Elnaka, E., Burras, C., Follett, L. (2016). Application of silicon ameliorated salinity  stress and improved wheat yield. J. Soil Sci. Environ. Manage. 7, 81. doi: 10.5897/JSSEM2016.0571 Iqbal, M., Ashraf, M. (2013). Gibberellic acid mediated induction of salt tolerance in wheat plants: Growth,  ionic partitioning, photosynthesis, yield and hormonal homeostasis. Environ. Exp. Bot. 86, 76–85. doi:  10.1016/j.envexpbot.2010.06.002 

Iqbal, N., Umar, S., Khan, N. A., Khan, M. I. R. (2014). A new perspective of phytohormones in salinity  tolerance: regulation of proline metabolism. Environ. Exp. Bot. 100, 34–42. doi:  

10.1016/j.envexpbot.2013.12.006 

Ishitani, M., Liu, J., Halfter, U., Kim, C.-S., Shi, W., Zhu, J.-K. (2000). SOS3 function in plant salt tolerance  requires N-myristoylation and calcium binding. Plant Cell 12, 1667–1677. doi: 10.1105/tpc.12.9.1667 

James, R. A., Blake, C., Byrt, C. S., Munns, R. (2011). Major genes for Na+ exclusion, Nax1 and Nax2 (wheat  HKT1; 4 and HKT1; 5), decrease Na+ accumulation in bread wheat leaves under saline and waterlogged  conditions. J. Exp. Bot. 62, 2939–2947. doi: 10.1093/jxb/err003 

Javid, M. G., Sorooshzadeh, A., Moradi, F., Modarres Sanavy, S.a.M., Allahdadi, I. (2011). The role of  phytohormones in alleviating salt stress in crop plants. Aust. J. Crop Sci. 5, 726. 

Jayakannan, M., Bose, J., Babourina, O., Rengel, Z., Shabala, S. (2013). Salicylic acid improves salinity  tolerance in Arabidopsis by restoring membrane potential and preventing salt-induced K+ loss via a GORK  channel. J. Exp. Bot. 64, 2255–2268. doi: 10.1093/jxb/ert085 

Kaur, G., Asthir, B. (2015). Proline: a key player in plant abiotic stress tolerance. Biol. Plant. 59, 609–619. doi:  10.1007/s10535-015-0549-3 

Kaur, H., Greger, M. (2019). A review on si uptake and transport system. Plants 8, 81. doi:  10.3390/plants8040081

Khan, M. A., Ungar, I. A., Showalter, A. M. (2000). Effects of sodium chloride treatments on growth and ion  accumulation of the halophyte Haloxylon recurvum. Commun. Soil Sci. Plant Anal. 31, 2763–2774. doi:  10.1080/00103620009370625 

Khan, W., Aziz, T., Maqsood, M., Farooq, M., Abdullah, Y., Ramzani, P., et al. (2018). Silicon nutrition  mitigates salinity stress in maize by modulating ion accumulation, photosynthesis, and antioxidants.  Photosynthetica 56, 1047–1057. doi: 10.1007/s11099-018-0812-x 

Khan, W.-U.-D., Aziz, T., Waraich, E. A., Khalid, M. (2015a). Silicon application improves germination and  vegetative growth in maize grown under salt stress. Pakistan J. Agric. Sci. 52. 

Khan, W. U. D., Faheem, M., Khan, M. Y., Hussain, S., Maqsood, M. A., Aziz, T. (2015b). Zinc requirement for  optimum grain yield and zinc biofortification depends on phosphorus application to wheat cultivars. Roman.  Agric. Res. 32, 1–9. 

Khoshgoftarmanesh, A. H., Khodarahmi, S., Haghighi, M. (2014). Effect of silicon nutrition on lipid  peroxidation and antioxidant response of cucumber plants exposed to salinity stress. Arch. Agron. Soil Sci. 60,  639–653. doi: 10.1080/03650340.2013.822487 

Kidd, P., Llugany, M., Poschenrieder, C., Gunse, B., Barcelo, J. (2001). The role of root exudates in aluminium  resistance and silicon-induced amelioration of aluminium toxicity in three varieties of maize (Zea mays L.). J.  Exp. Bot. 52, 1339–1352. doi: 10.1093/jexbot/52.359.1339 

Kim, Y.-H., Khan, A. L., Lee, I.-J. (2016). Silicon: a duo synergy for regulating crop growth and hormonal  signaling under abiotic stress conditions. Crit. Rev. Biotechnol. 36, 1099–1109. doi:  

10.3109/07388551.2015.1084265 

Kim, Y.-H., Khan, A. L., Hamayun, M., Kang, S. M., Beom, Y. J., Lee, I.-J. (2011). Influence of short-term  silicon application on endogenous physiohormonal levels of Oryza sativa L. under wounding stress. Biol. Trace  Element Res. 144, 1175–1185. doi: 10.1007/s12011-011-9047-4 

Kim, Y.-H., Khan, A. L., Kim, D.-H., Lee, S.-Y., Kim, K.-M., Waqas, M., et al. (2014a). Silicon mitigates heavy  metal stress by regulating P-type heavy metal ATPases, Oryza sativa low silicon genes, and endogenous  phytohormones. BMC Plant Biol. 14, 13. doi: 10.1186/1471-2229-14-13 

Kim, Y.-H., Khan, A. L., Waqas, M., Lee, I.-J. (2017). Silicon regulates antioxidant activities of crop plants  under abiotic-induced oxidative stress: a review. Front. Plant Sci. 8, 510. doi: 10.3389/fpls.2017.00510 

Kim, Y. H., Khan, A. L., Waqas, M., Shim, J. K., Kim, D. H., Lee, K. Y., et al. (2014b). Silicon application to rice  root zone influenced the phytohormonal and antioxidant responses under salinity stress. J. Plant Growth Regul.  33, 137–149. doi: 10.1007/s00344-013-9356-2 

Klotzbucher, A., Klotzbücher, T., Jahn, R., Van Chien, H., Hinrichs, M., Sann, C., et al. (2018). Effects of Si  fertilization on Si in soil solution, Si uptake by rice, and resistance of rice to biotic stresses in Southern Vietnam.  Paddy Water Environ., 16(2), 243–252. doi: 10.1007/s10333-017-0610-2 

Köster, P., Wallrad, L., Edel, K., Faisal, M., Alatar, A., Kudla, J. (2019). The battle of two ions: Ca2+  signalling against Na+ stress. Plant Biol. 21, 39–48. doi: 10.1111/plb.12704 

Kumar, V., Khare, T., Shaikh, S., Wani, S. H. (2018). Compatible solutes and abiotic stress tolerance in plants.  In Metabolic adaptations in plants during abiotic stress (CRC Press.) pp. 213–220. doi: 10.1201/b22206-18 

Lee, S., Sohn, E., Hamayun, M., Yoon, J., Lee, I. (2010). Effect of silicon on growth and salinity stress of  soybean plant grown under hydroponic system. Agroforestry Syst. 80, 333–340. doi: 10.1007/s10457-010-9299- 6 

Li, H., Zhu, Y., Hu, Y., Han, W., Gong, H. (2015). Beneficial effects of silicon in alleviating salinity stress of  tomato seedlings grown under sand culture. Acta Physiol. Plantarum 37, 71. doi: 10.1007/s11738-015-1818-7 

Li, Y.-T., Zhang, W.-J., Cui, J.-J., Lang, D.-Y., Li, M., Zhao, Q.-P., et al. (2016). Silicon nutrition alleviates the  lipid peroxidation and ion imbalance of Glycyrrhiza uralensis seedlings under salt stress. Acta Physiol. Plant.  38, 96. doi: 10.1007/s11738-016-2108-8 

Liang, W., Ma, X., Wan, P., Liu, L. (2018). Plant salt-tolerance mechanism: a review. Biochem. Biophys. Res.  Commun. 495, 286–291. doi: 10.1016/j.bbrc.2017.11.043

Liang, Y. (1999). Effects of silicon on enzyme activity and sodium, potassium and calcium concentration in  barley under salt stress. Plant Soil 209, 217. doi: 10.1023/A:1004526604913 

Liang, Y., Chen, Q., Liu, Q., Zhang, W., Ding, R. (2003). Exogenous silicon (Si) increases antioxidant enzyme  activity and reduces lipid peroxidation in roots of salt-stressed barley (Hordeum vulgareL.). J. Plant Physiol.  160, 1157–1164. doi: 10.1078/0176-1617-01065 

Liang, Y., Hua, H., Zhu, Y. G., Zhang, J., Cheng, C., Römheld, V. (2006). Importance of plant species and  external silicon concentration to active silicon uptake and transport. New Phytol. 172, 63–72. doi:  10.1111/j.1469-8137.2006.01797.x 

Liang, Y., Si, J., Römheld, V. (2005a). Silicon uptake and transport is an active process in Cucumis sativus. New  Phytol. 167, 797–804. doi: 10.1111/j.1469-8137.2005.01463.x 

Liang, Y., Zhang, W., Chen, Q., Ding, R. (2005b). Effects of silicon on H+-ATPase and H+-PPase activity, fatty  acid composition and fluidity of tonoplast vesicles from roots of salt-stressed barley (Hordeum vulgare L.).  Environ. Exp. Bot. 53, 29–37. doi: 10.1016/j.envexpbot.2004.02.010 

Lins, U., Barros, C., Da Cunha, M., Miguens, F. C. (2002). Structure, morphology, and composition of silicon  biocomposites in the palm tree Syagrus coronata (Mart.) Becc. Protoplasma 220, 0089–0096. doi:  10.1007/s00709-002-0036-5 

Liu, J.-H., Wang, W., Wu, H., Gong, X., Moriguchi, T. (2015). Polyamines function in stress tolerance: from  synthesis to regulation. Front. Plant Sci. 6, 827. doi: 10.3389/fpls.2015.00827 

Liu, W., Wang, L., Bai, Y. (2003). Research progress in the beneficial elements-silicon for plants. Acta Botanica  Boreali-Occidentalia Sin. 23, 2248–2253. 

Luyckx, M., Hausman, J.-F., Lutts, S., Guerriero, G. (2017). Silicon and plants: current knowledge and  technological perspectives. Front. Plant Sci. 8, 411. doi: 10.3389/fpls.2017.00411 

Ma, J., Yamaji, N. (2008). Functions and transport of silicon in plants. Cell. Mol. Life Sci. 65, 3049–3057. doi:  10.1007/s00018-008-7580-x 

Ma, J. F. (2004). Role of silicon in enhancing the resistance of plants to biotic and abiotic stresses. Soil Sci.  Plant Nutr. 50, 11–18. doi: 10.1080/00380768.2004.10408447

Ma, J. F., Takahashi, E., (2002). Soil, fertilizer, and plant silicon research in Japan. Elsevier. doi:  10.1016/B978-044451166-9/50009-9 

Ma, J. F., Yamaji, N. (2006). Silicon uptake and accumulation in higher plants. Trends Plant Sci. 11, 392–397.  doi: 10.1016/j.tplants.2006.06.007 

Ma, J. F., Tamai, K., Yamaji, N., Mitani, N., Konishi, S., Katsuhara, M., et al. (2006). A silicon transporter in  rice. Nature 440, 688. doi: 10.1038/nature04590 

Ma, J. F., Yamaji, N., Mitani, N., Tamai, K., Konishi, S., Fujiwara, T., et al. (2007). An efflux transporter of  silicon in rice. Nature 448, 209. doi: 10.1038/nature05964 

Maggio, A., Barbieri, G., Raimondi, G., De Pascale, S. (2010). Contrasting effects of GA 3 treatments on  tomato plants exposed to increasing salinity. J. Plant Growth Regul. 29, 63–72. doi: 10.1007/s00344-009-9114- 7 

Mahajan, S., Tuteja, N. (2005). Cold, salinity and drought stresses: an overview. Arch. Biochem. Biophys. 444,  139–158. doi: 10.1016/j.abb.2005.10.018 

Maillard, A., Ali, N., Schwarzenberg, A., Jamois, F., Yvin, J.-C., Hosseini, S. A. (2018). Silicon transcriptionally  regulates sulfur and ABA metabolism and delays leaf senescence in barley under combined sulfur deficiency  and osmotic stress. Environ. Exp. Bot. 155, 394–410. doi: 10.1016/j.envexpbot.2018.07.026 

Malhotra, C., Kapoor, R. T. (2019). “Silicon: a sustainable tool in abiotic stress tolerance in plants,” in Plant  Abiotic Stress Tolerance (Springer). doi: 10.1007/978-3-030-06118-0_14 

Mali, M., Aery, N. (2008). Influence of silicon on growth, relative water contents and uptake of silicon, calcium  and potassium in wheat grown in nutrient solution. J. Plant Nutr. 31, 1867–1876. doi:  10.1080/01904160802402666

Manchanda, G., Garg, N. (2008). Salinity and its effects on the functional biology of legumes. Acta Physiol.  Plantarum 30, 595–618. doi: 10.1007/s11738-008-0173-3 

Marafon, A. C., Endres, L. (2013). Silicon: fertilization and nutrition in higher plants. Embrapa Tabuleiros  Costeiros-Artigo Em Periódico Indexado (ALICE. Rev. Cienc. Agrar. 6, 80–88. doi: 10.4322/rca.2013.057 

Mateos-Naranjo, E., Andrades-Moreno, L., Davy, A. J. (2013). Silicon alleviates deleterious effects of high  salinity on the halophytic grass Spartina densiflora. Plant Physiol. Biochem. 63, 115–121. doi:  10.1016/j.plaphy.2012.11.015 

Meena, V., Dotaniya, M., Coumar, V., Rajendiran, S., Kundu, S., Rao, A. S. (2014). A case for silicon  fertilization to improve crop yields in tropical soils. Proc. Natl. Acad. Sci. India Sec. B: Biol. Sci. 84, 505–518.  doi: 10.1007/s40011-013-0270-y 

Mitani, N., Ma, J. F. (2005). Uptake system of silicon in different plant species. J. Exp. Bot. 56, 1255–1261. doi:  10.1093/jxb/eri121 

Mitani, N., Chiba, Y., Yamaji, N., Ma, J. F. (2009). Identification and characterization of maize and barley Lsi2- like silicon efflux transporters reveals a distinct silicon uptake system from that in rice. Plant Cell 21, 2133– 2142. doi: 10.1105/tpc.109.067884 

Mitani, N., Ma, J. F., Iwashita, T. (2005). Identification of the silicon form in xylem sap of rice (Oryza sativa  L.). Plant Cell Physiol. 46, 279–283. doi: 10.1093/pcp/pci018 

Mitani, N., Yamaji, N., Ago, Y., Iwasaki, K., Ma, J. F. (2011). Isolation and functional characterization of an  influx silicon transporter in two pumpkin cultivars contrasting in silicon accumulation. Plant J. 66, 231–240.  doi: 10.1111/j.1365-313X.2011.04483.x 

Montpetit, J., Vivancos, J., Mitani-Ueno, N., Yamaji, N., Rémus-Borel, W., Belzile, F., et al. (2012). Cloning,  functional characterization and heterologous expression of TaLsi1, a wheat silicon transporter gene. Plant Mol.  Biol. 79, 35–46. doi: 10.1007/s11103-012-9892-3 

Moussa, H. R. (2006). Influence of exogenous application of silicon on physiological response of salt-stressed  maize (Zea mays L.). Int. J. Agric. Biol. 8, 293–297. 

Munns, R. (2002). Comparative physiology of salt and water stress. Plant Cell Environ. 25, 239–250. doi:  10.1046/j.0016-8025.2001.00808.x 

Najar, R., Aydi, S., Sassi-Aydi, S., Zarai, A., Abdelly, C. (2019). Effect of salt stress on photosynthesis and  chlorophyll fluorescence in Medicago truncatula. Plant Biosys.-An Int. J. Dealing All Aspects Plant Biol. 153,  88–97. doi: 10.1080/11263504.2018.1461701 

Negrao, S., Schmöckel, S., Tester, M. (2017). Evaluating physiological responses of plants to salinity stress.  Ann. Bot. 119, 1–11. doi: 10.1093/aob/mcw191 

Netondo, G. W., Onyango, J. C., Beck, E. (2004). Sorghum and salinity: II. Gas exchange and chlorophyll  fluorescence of sorghum under salt stress. Crop Sci. 44, 806. doi: 10.2135/cropsci2004.0806 

Nilsen, E. T., Orcutt, D. M. (1996). Physiology of plants under stress. Abiotic factors. Physiology of plants  under stress. Abiotic factors. 

Nikolic, D. B., Nesic, S., Bosnic, D., Kostic, L., Nikolic, M., Samardzic, J. T. (2019). Silicon alleviates iron  deficiency in barley by enhancing expression of Strategy II genes and metal redistribution. Front. Plant Sci. 10,  416. doi: 10.3389/fpls.2019.00416 

Nounjan, N., Nghia, P. T., Theerakulpisut, P. (2012). Exogenous proline and trehalose promote recovery of rice  seedlings from salt-stress and differentially modulate antioxidant enzymes and expression of related genes. J.  Plant Physiol. 169, 596–604. doi: 10.1016/j.jplph.2012.01.004 

Numan, M., Bashir, S., Khan, Y., Mumtaz, R., Shinwari, Z. K., Khan, A. L., et al. (2018). Plant growth  promoting bacteria as an alternative strategy for salt tolerance in plants: a review. Microbiol. Res. 209, 21–32.  doi: 10.1016/j.micres.2018.02.003 

Oh, D.-H., Lee, S. Y., Bressan, R. A., Yun, D.-J., Bohnert, H. J. (2010). Intracellular consequences of SOS1  deficiency during salt stress. J. Exp. Bot. 61, 1205–1213. doi: 10.1093/jxb/erp391 

Otoch, M. D. L. O., Sobreira, A. C. M., De Aragão, M. E. F., Orellano, E. G., Lima, M. D. G. S., De Melo, D. F.  (2001). Salt modulation of vacuolar H+-ATPase and H+-Pyrophosphatase activities in Vigna unguiculata. J.  Plant Physiol. 158, 545–551. doi: 10.1078/0176-1617-00310

Parida, A. K., Das, A. B. (2005). Salt tolerance and salinity effects on plants: a review. Ecotoxicol. Environ. Saf.  60, 324–349. doi: 10.1016/j.ecoenv.2004.06.010 

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. 

Peleg, Z., Blumwald, E. (2011). Hormone balance and abiotic stress tolerance in crop plants. Curr. Opin. Plant  Biol. 14, 290–295. doi: 10.1016/j.pbi.2011.02.001 

Pontigo, S., Godoy, K., Jiménez, H., Gutiérrez-Moraga, A., Mora, M. D. L. L., Cartes, P. (2017). Silicon Mediated Alleviation of Aluminum Toxicity by Modulation of Al/Si Uptake and Antioxidant Performance in  Ryegrass Plants. Front. Plant Sci. 8, 642. doi: 10.3389/fpls.2017.00642 

Pontigo, S., Ribera, A., Gianfreda, L., La Luz Mora, M., Nikolic, M., Cartes, P. (2015). Silicon in vascular  plants: uptake, transport and its influence on mineral stress under acidic conditions. Planta 242, 23–37. doi:  10.1007/s00425-015-2333-1 

Qiu, Q.-S., Guo, Y., Dietrich, M. A., Schumaker, K. S., Zhu, J.-K. (2002). Regulation of SOS1, a plasma  membrane Na+/H+ exchanger in Arabidopsis thaliana, by SOS2 and SOS3. Proc. Natl. Acad. Sci. 99, 8436– 8441. doi: 10.1073/pnas.122224699 

Rahimi, R., Mohammakhani, A., Roohi, V., Armand, N. (2012). Effects of salt stress and silicon nutrition on  cholorophyll content, yield and yield components in fennel (Foeniculum vulgar Mill.). Int. J. Agric. Crop Sci. 4,  1591–1595. 

Rahman, M. S., Miyake, H., Takeoka, Y. (2002). Effects of exogenous glycinebetaine on growth and  ultrastructure of salt-stressed rice seedlings (Oryza sativa L.). Plant Prod. Sci. 5, 33–44. doi: 10.1626/pps.5.33 

Rains, D., Epstein, E., Zasoski, R., Aslam, M. (2006). Active silicon uptake by wheat. Plant Soil 280, 223–228.

doi: 10.1007/s11104-005-3082-x 

Rajasheker, G., Jawahar, G., Jalaja, N., Kumar, S. A., Kumari, P. H., Punita, D. L., Kishor, P. B. K. (2019).  Role and regulation of osmolytes and ABA interaction in salt and drought stress tolerance. In Plant Signaling  Molecules. Woodhead Publishing. p. 417–436 doi: 10.1016/B978-0-12-816451-8.00026-5 

Raven, J. A. (2003). Cycling silicon-the role of accumulation in plants. New Phytol. 158, 419–421. doi:  10.1046/j.1469-8137.2003.00778.x 

Reguera, M., Peleg, Z., Blumwald, E. (2012). Targeting metabolic pathways for genetic engineering abiotic  stress-tolerance in crops. Biochimica et Biophysica Acta (BBA)-Gene Regulatory Mechanisms, 1819(2), 186- 194. 

Rehman, S., Abbas, G., Shahid, M., Saqib, M., Farooq, A. B. U., Hussain, M., et al. (2019). Effect of salinity on  cadmium tolerance, ionic homeostasis and oxidative stress responses in conocarpus exposed to cadmium stress:  Implications for phytoremediation. Ecotoxicol. Environ. Saf. 171, 146–153. doi: 10.1016/j.ecoenv.2018.12.077 

Rezende, R.a.L.S., Rodrigues, F. A., Soares, J. D. R., Silveira, H. R. D. O., Pasqual, M., Dias, G. D. M. G.  (2018). Salt stress and exogenous silicon influence physiological and anatomical features of in vitro-grown  cape gooseberry. Ciec. Rural 48(1). doi: 10.1590/0103-8478cr20170176 

Riaz, M., Arif, M. S., Ashraf, M. A., Mahmood, R., Yasmeen, T., Shakoor, M. B., et al., (2019). “A  comprehensive review on rice responses and tolerance to salt stress,” in Advances in Rice Research for Abiotic  Stress Tolerance (Elsevier), 133–158. doi: 10.1016/B978-0-12-814332-2.00007-1 

Rios, J. J., Martínez-Ballesta, M. C., Ruiz, J. M., Blasco, B., Carvajal, M. (2017). Silicon-mediated improvement  in plant salinity tolerance: the role of aquaporins. Front. Plant Sci. 8, 948. doi: 10.3389/fpls.2017.00948 

Rizwan, M., Ali, S., Ibrahim, M., Farid, M., Adrees, M., Bharwana, S. A., et al. (2015). Mechanisms of silicon mediated alleviation of drought and salt stress in plants: a review. Environ. Sci. Pollut. Res. 22, 15416–15431.  doi: 10.1007/s11356-015-5305-x 

Rodrigues, F. A., Datnoff, L. E. (Eds.) (2015). Silicon and plant diseases. (Cham, Switz: Springer). doi:  10.1007/978-3-319-22930-0 

Romero-Aranda, M. R., Jurado, O., Cuartero, J. (2006). Silicon alleviates the deleterious salt effect on tomato  plant growth by improving plant water status. J. Plant Physiol. 163, 847–855. doi: 10.1016/j.jplph.2005.05.010

Roy, S. J., Negrão, S., Tester, M. (2014). Salt resistant crop plants. Curr. Opin. Biotechnol. 26, 115–124. doi:  10.1016/j.copbio.2013.12.004 

Ryu, H., Cho, Y.-G. (2015). Plant hormones in salt stress tolerance. J. Plant Biol. 58, 147–155. doi:  10.1007/s12374-015-0103-z 

Safdar, H., Amin, A., Shafiq, Y., Ali, A., Yasin, R., Shoukat, A., et al. (2019). A review: impact of salinity on  plant growth. Nat. Sci. 17, 34–40. 

Sah, S. K., Reddy, K. R., Li, J. (2016). Abscisic acid and abiotic stress tolerance in crop plants. Front. Plant Sci.  7, 571. doi: 10.3389/fpls.2016.00571 

Saini, P., Gani, M., Kaur, J. J., Godara, L. C., Singh, C., Chauhan, S., et al. (2018). “Reactive oxygen species  (ROS): a way to stress survival in plants,” in Abiotic Stress-Mediated Sensing and Signaling in Plants: An  Omics Perspective (Singapore: Springer), 127–153. doi: 10.1007/978-981-10-7479-0_4 

Sairam, R., Tyagi, A. (2004). Physiological and molecular biology of salinity stress tolerance in deficient and  cultivated genotypes of chickpea. Plant Growth Regul. 57(10), 109–114. 

Sakhabutdinova, A., Fatkhutdinova, D., Bezrukova, M., Shakirova, F. (2003). Salicylic acid prevents the  damaging action of stress factors on wheat plants. Bulg. J. Plant Physiol. 21, 314–319. 

Saleh, J., Najafi, N., Oustan, S. (2017). Effects of silicon application on wheat growth and some physiological  characteristics under different levels and sources of salinity. Commun. Soil Sci. Plant Anal. 48, 1114–1122. doi:  10.1080/00103624.2017.1323090 

Saqib, M., Zörb, C., Schubert, S. (2008). Silicon-mediated improvement in the salt resistance of wheat (Triticum  aestivum) results from increased sodium exclusion and resistance to oxidative stress. Funct. Plant Biol. 35,  633–639. doi: 10.1071/FP08100 

Savvas, D., Giotis, D., Chatzieustratiou, E., Bakea, M., Patakioutas, G. (2009). Silicon supply in soilless  cultivations of zucchini alleviates stress induced by salinity and powdery mildew infections. Environ. Exp. Bot.  65, 11–17. doi: 10.1016/j.envexpbot.2008.07.004 

Saxena, S. C., Kaur, H., Verma, P., Petla, B. P., Andugula, V. R., Majee, M. (2013). “Osmoprotectants:  potential for crop improvement under adverse conditions,” in Plant Acclimation to Environmental Stress (New  York, NY: Springer), 197–232. doi: 10.1007/978-1-4614-5001-6_9 

Seal, P., Das, P., Biswas, A. K. (2018). Versatile potentiality of silicon in mitigation of biotic and abiotic  stresses in plants: a review. Am. J. Plant Sci. 9, 1433. doi: 10.4236/ajps.2018.97105 

Seckin, B., Sekmen, A. H., Türkan, I. (2009). An enhancing effect of exogenous mannitol on the antioxidant  enzyme activities in roots of wheat under salt stress. J. Plant Growth Regul. 28, 12. doi: 10.1007/s00344-008- 9068-1 

Serraj, R., Sinclair, T. R. (2002). Osmolyte accumulation: can it really help increase crop yield under drought  conditions?. Plant Cell Environ. 25(2), 333-341. 

Shah, F., Wu, W. (2019). Soil and crop management strategies to ensure higher crop productivity within  sustainable environments. Sustainability 11, 1485. doi: 10.3390/su11051485 

Shahid, S. A., Zaman, M., Heng, L., (2018). “Soil salinity: historical perspectives and a world overview of the  problem,” in Guideline for Salinity Assessment, Mitigation and Adaptation Using Nuclear and Related  Techniques (Springer, Cham), 43–53. doi: 10.1007/978-3-319-96190-3_2 

Shahnaz, G., Shekoofeh, E., Kourosh, D., Moohamadbagher, B. (2011). Interactive effects of silicon and  aluminum on the malondialdehyde (MDA), proline, protein and phenolic compounds in Borago officinalis L. J.  Med. Plants Res. 5, 5818–5827. 

Shahzad, M., Zörb, C., Geilfus, C. M., Mühling, K. (2013). Apoplastic Na+ in Vicia faba leaves rises after  short-term salt stress and is remedied by silicon. J. Agron. Crop Sci. 199, 161–170. doi: 10.1111/jac.12003 

Shen, X., Xiao, X., Dong, Z., Chen, Y. (2014). Silicon effects on antioxidative enzymes and lipid peroxidation in  leaves and roots of peanut under aluminum stress. Acta Physiol. Plantarum 36, 3063–3069. doi:  10.1007/s11738-014-1676-8 

Shi, H., Ishitani, M., Kim, C., Zhu, J.-K. (2000). The Arabidopsis thaliana salt tolerance gene SOS1 encodes a  putative Na+/H+ antiporter. Proc. Natl. Acad. Sci. 97, 6896–6901. doi: 10.1073/pnas.120170197

Shi, H., Quintero, F. J., Pardo, J. M., Zhu, J.-K. (2002). The putative plasma membrane Na+/H+ antiporter  SOS1 controls long-distance Na+ transport in plants. Plant Cell 14, 465–477. doi: 10.1105/tpc.010371 

Shrivastava, P., Kumar, R. (2015 PubMed). Soil salinity: a serious environmental issue and plant growth  promoting bacteria as one of the tools for its alleviation. Saudi J. Biol. Sci. 22, 123–131. doi:  10.1016/j.sjbs.2014.12.001 

Simura, J., Antoniadi, I., Siroka, J., Tarkowska, D., Strnad, M., Ljung, K., et al. (2018). Plant hormonomics:  multiple phytohormone profiling by targeted metabolomics. Plant Physiol. 177, 476–489. doi:  10.1104/pp.18.00293 

Singh, K., Chatrath, R. (2001). “Application of physiology in wheat breeding. international maiz,” in Wheat  Improvement Center (CIMMYT). Eds. Reynolds, M. P., Monasterio, J. I. O., Mc Nab, A., 101–110. 

Sivanesan, I., Jeong, B. R. (2014). Silicon promotes adventitious shoot regeneration and enhances salinity  tolerance of ajuga multiflora bunge by altering activity of antioxidant enzyme. Sci. World J. 2014, 10. doi:  10.1155/2014/521703 

Smirnoff, N. (1997). “The physiology of plants under stress,” in Abiotic factors (JSTOR). 

Soleimannejad, Z., Abdolzadeh, A., Sadeghipour, H. R. (2019). Beneficial effects of silicon application in  alleviating salinity stress in halophytic puccinellia distans plants. Silicon 11, 1001–1010. doi: 10.1007/s12633- 018-9960-7 

Sommer, M., Kaczorek, D., Kuzyakov, Y., Breuer, J. (2006). Silicon pools and fluxes in soils and landscapes-a  review. J. Plant Nutr. Soil Sci. 169, 310–329. doi: 10.1002/jpln.200521981 

Soratto, R. P., Crusciol, C.a.C., Castro, G. S. A., Costa, C. H. M. D., Ferrari Neto, J. (2012). Leaf application  of silicic acid to white oat and wheat. Rev. Bras. Ciec. Do Solo 36, 1538–1544. doi: 10.1590/S0100- 06832012000500018 

Soundararajan, P., Manivannan, A., Ko, C. H., Jeong, B. R. (2018). Silicon enhanced redox homeostasis and  protein expression to mitigate the salinity stress in Rosa hybrida 'Rock Fire'. J. Plant Growth Regul. 37, 16–34.  doi: 10.1007/s00344-017-9705-7 

Soylemezoglu, G., Demir, K., Inal, A., Gunes, A. (2009). Effect of silicon on antioxidant and stomatal response  of two grapevine (Vitis vinifera L.) rootstocks grown in boron toxic, saline and boron toxic-saline soil. Scientia  Hortic. 123, 240–246. doi: 10.1016/j.scienta.2009.09.005 

Sung, C. H., Hong, J. K. (2010). Sodium nitroprusside mediates seedling development and attenuation of  oxidative stresses in Chinese cabbage. Plant Biotechnol. Rep. 4, 243–251. doi: 10.1007/s11816-010-0138-z 

Suo, J., Zhao, Q., David, L., Chen, S., Dai, S. (2017). Salinity response in chloroplasts: insights from gene  characterization. Int. J. Mol. Sci. 18, 1011. doi: 10.3390/ijms18051011 

Tahir, M. A., Aziz, T., Rahmatullah, (2011). Silicon-induced growth and yield enhancement in two wheat  genotypes differing in salinity tolerance. Commun. Soil Sci. Plant Anal. 42, 395–407. doi:  10.1080/00103624.2011.542219 

Tahir, M. A., Aziz, T., Farooq, M., Sarwar, G. (2012). Silicon-induced changes in growth, ionic composition,  water relations, chlorophyll contents and membrane permeability in two salt-stressed wheat genotypes. Arch.  Agron. Soil Sci. 58, 247–256. doi: 10.1080/03650340.2010.518959 

Tahir, M. A., Rahmatullah, T., Aziz, M., Ashraf, S., Kanwal, S., Maqsood, M. A. (2006). Beneficial effects of  silicon in wheat (Triticum aestivum L.) under salinity stress. Pakistan J. Bot. 38, 1715–1722. 

Takahashi, E., Ma, J., Miyake, Y. (1990). The possibility of silicon as an essential element for higher plants.  Comments Agric. Food Chem. 2, 99–102. 

Tavakkoli, E., Rengasamy, P., Mcdonald, G. K. (2010). High concentrations of Na+ and Cl-ions in soil solution  have simultaneous detrimental effects on growth of faba bean under salinity stress. J. Exp. Bot. 61, 4449–4459.  doi: 10.1093/jxb/erq251 

Torabi, F., Majd, A., Enteshari, S. (2015). The effect of silicon on alleviation of salt stress in borage (Borago  officinalis L.). Soil Sci. Plant Nutr. 61, 788–798. doi: 10.1080/00380768.2015.1005540 

Tripathi, D., Bashri, G., Shweta, S., Ahmad, P., Singh, V. (2017). Efficacy of silicon against aluminum toxicity  in plants: an overview. Silicon Plants: Adv. Future Prospects 1, 355–366. doi: 10.1201/9781315369310-20

Tuna, A. L., Kaya, C., Higgs, D., Murillo-Amador, B., Aydemir, S., Girgin, A. R. (2008). Silicon improves  salinity tolerance in wheat plants. Environ. Exp. Bot. 62, 10–16. doi: 10.1016/j.envexpbot.2007.06.006 

Turkan, I. (2011). Plant responses to drought and salinity stress: developments in a post-genomic era.  Academic Press. 

Tuteja, N., Sahoo, R. K., Garg, B., Tuteja, R. (2013). O s SUV 3 dual helicase functions in salinity stress  tolerance by maintaining photosynthesis and antioxidant machinery in rice (O ryza sativa L. cv. IR 64). Plant J.  76, 115–127. doi: 10.1111/tpj.12277 

Van Bockhaven, J., De Vleesschauwer, D., Höfte, M. (2012). Towards establishing broad-spectrum disease  resistance in plants: silicon leads the way. J. Exp. Bot. 64, 1281–1293. doi: 10.1093/jxb/ers329 

Vivancos, J., Labbé, C., Menzies, J. G., Bélanger, R. R. (2015). Silicon-mediated resistance of A rabidopsis  against powdery mildew involves mechanisms other than the salicylic acid (SA)-dependent defence pathway.  Mol. Plant Pathol. 16, 572–582. doi: 10.1111/mpp.12213 

Vyrides, I., Stuckey, D. C. (2017). Compatible solute addition to biological systems treating waste/wastewater to  counteract osmotic and other environmental stresses: a review. Crit. Rev. Biotechnol. 37, 865–879. doi:  10.1080/07388551.2016.1266460 

Wang, B., Lüttge, U., Ratajczak, R. (2001a). Effects of salt treatment and osmotic stress on V-ATPase and V PPase in leaves of the halophyte Suaeda salsa. J. Exp. Bot. 52, 2355–2365. doi: 10.1093/jexbot/52.365.2355 

Wang, H.-S., Yu, C., Fan, P.-P., Bao, B.-F., Li, T., Zhu, Z.-J. (2015a). Identification of two cucumber putative  silicon transporter genes in Cucumis sativus. J. Plant Growth Regul. 34, 332–338. doi: 10.1007/s00344-014- 9466-5

Wang, S., Liu, P., Chen, D., Yin, L., Li, H., Deng, X. (2015b). Silicon enhanced salt tolerance by improving the  root water uptake and decreasing the ion toxicity in cucumber. Front. Plant Sci. 6, 759. doi:  10.3389/fpls.2015.00759 

Wang, W., Xu, Y., Chen, T., Xing, L., Xu, K., Ji, D., et al. (2019). Regulatory mechanisms underlying the  maintenance of homeostasis in Pyropia haitanensis under hypersaline stress conditions. Sci. Total Environ. 662,  168–179. doi: 10.1016/j.scitotenv.2019.01.214 

Wang, X. S., Han, J. G. (2007). Effects of NaCl and silicon on ion distribution in the roots, shoots and leaves of  two alfalfa cultivars with different salt tolerance. Soil Sci. Plant Nutr. 53, 278–285. doi: 10.1111/j.1747- 0765.2007.00135.x 

Wang, Y., Nii, N. (2000). Changes in chlorophyll, ribulose bisphosphate carboxylase-oxygenase, glycine betaine  content, photosynthesis and transpiration in Amaranthus tricolor leaves during salt stress. J. Hortic. Sci.  Biotechnol. 75, 623–627. doi: 10.1080/14620316.2000.11511297 

Wang, Y., Mopper, S., Hasenstein, K. H. (2001b). Effects of salinity on endogenous ABA, IAA, JA, and SA in Iris  hexagona. J. Chem. Ecol. 27, 327–342. doi: 10.1023/A:1005632506230 

Wani, S. H., Kumar, V., Shriram, V., Sah, S. K. (2016). Phytohormones and their metabolic engineering for  abiotic stress tolerance in crop plants. Crop J. 4, 162–176. doi: 10.1016/j.cj.2016.01.010 

Winterbourn, C. C. (2019). “Reactive oxygen species in biological systems,” in Vitamin E, 98–117. doi:  10.1039/9781788016216-00098 

Wu, J., Mock, H.-P., Giehl, R. F., Pitann, B., Mühling, K. H. (2019). Silicon decreases cadmium concentrations  by modulating root endodermal suberin development in wheat plants. J. Hazard. Materials 364, 581–590. doi:  10.1016/j.jhazmat.2018.10.052 

Yamaguchi, T., Hamamoto, S., Uozumi, N. (2013). Sodium transport system in plant cells. Front. Plant Sci. 4,  410. doi: 10.3389/fpls.2013.00410 

Yan, G.-C., Nikolic, M., Ye, M.-J., Xiao, Z.-X., Liang, Y.-C. (2018). Silicon acquisition and accumulation in  plant and its significance for agriculture. J. Integr. Agric. 17, 2138–2150. doi: 10.1016/S2095-3119(18)62037-4 

Yeo, A., Flowers, S., Rao, G., Welfare, K., Senanayake, N., Flowers, T. (1999). Silicon reduces sodium uptake in  rice (Oryza sativa L.) in saline conditions and this is accounted for by a reduction in the transpirational bypass  flow. Plant Cell Environ. 22, 559–565. doi: 10.1046/j.1365-3040.1999.00418.x

Yin, J., Jia, J., Lian, Z., Hu, Y., Guo, J., Huo, H., et al. (2019). Silicon enhances the salt tolerance of cucumber  through increasing polyamine accumulation and decreasing oxidative damage. Ecotoxicol. Environ. Saf. 169,  8–17. doi: 10.1016/j.ecoenv.2018.10.105 

Yin, L., Wang, S., Li, J., Tanaka, K., Oka, M. (2013). Application of silicon improves salt tolerance through  ameliorating osmotic and ionic stresses in the seedling of Sorghum bicolor. Acta Physiol. Plant. 35, 3099–3107.  doi: 10.1007/s11738-013-1343-5 

Yoon, J. Y., Hamayun, M., Lee, S.-K., Lee, I.-J. (2009). Methyl jasmonate alleviated salinity stress in soybean. J.  Crop Sci. Biotechnol. 12, 63–68. doi: 10.1007/s12892-009-0060-5 

Yoshida, S. (1965). Chemical aspects of the role of silicon in physiology of the rice plant. Bull. Nat. Inst. Agr.  Sci. 15, 18–58. 

Yue, Y., Zhang, M., Zhang, J., Duan, L., Li, Z. (2012). SOS1 gene overexpression increased salt tolerance in  transgenic tobacco by maintaining a higher K+/Na+ ratio. J. Plant Physiol. 169, 255–261. doi:  10.1016/j.jplph.2011.10.007 

Zaefyzadeh, M., Quliyev, R. A., Babayeva, S. M., Abbasov, M. A. (2009). The effect of the interaction between  genotypes and drought stress on the superoxide dismutase and chlorophyll content in durum wheat landraces.  Turkish J. Biol. 33, 1–7. 

Zhang, F., Yang, Y., He, W., Zhao, X., Zhang, L. (2004). Effects of salinity on growth and compatible solutes of  callus induced from Populus euphratica. In Vitro Cell. Dev. Biol.-Plant 40, 491–494. doi: 10.1079/IVP2004546 

Zhang, J., Wei, J., Li, D., Kong, X., Rengel, Z., Chen, L., et al. (2017). The role of the plasma membrane H+- ATPase in plant responses to aluminum toxicity. Front. Plant Sci. 8, 1757. doi: 10.3389/fpls.2017.01757 

Zhang, X., Zhang, W., Lang, D., Cui, J., Li, Y. (2018). Silicon improves salt tolerance of Glycyrrhiza uralensis  Fisch. by ameliorating osmotic and oxidative stresses and improving phytohormonal balance. Environ. Sci.  Pollut. Res. 25, 25916–25932. doi: 10.1007/s11356-018-2595-9 

Zhao, M.-G., Chen, L., Zhang, L.-L., Zhang, W.-H. (2009). Nitric reductase-dependent nitric oxide production is  involved in cold acclimation and freezing tolerance in Arabidopsis. Plant Physiol. 151, 755–767. doi:  10.1104/pp.109.140996 

Zhu, Y., Guo, J., Feng, R., Jia, J., Han, W., Gong, H. (2016). The regulatory role of silicon on carbohydrate  metabolism in Cucumis sativus L. under salt stress. Plant Soil, 406(1-2), 231–249. 

Zhu, Y., Gong, H. (2014). Beneficial effects of silicon on salt and drought tolerance in plants. Agron. Sustain.  Dev. 34, 455–472. doi: 10.1007/s13593-013-0194-1 

Zhu, Z., Wei, G., Li, J., Qian, Q., Yu, J. (2004). Silicon alleviates salt stress and increases antioxidant enzymes  activity in leaves of salt-stressed cucumber (Cucumis sativus L.). Plant Sci. 167, 527–533. doi:  10.1016/j.plantsci.2004.04.020

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