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Special Feature: Recent advances in the nitrogen-fixing symbiosis between Frankia and actinorhizal plants

Mechanisms of salt stress tolerance in Casuarina: a review of recent research

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Pages 113-116 | Received 29 Sep 2021, Accepted 27 Jan 2022, Published online: 22 Feb 2022

References

  • Batista-Santos P, Duro N, Rodrigues AP, Semedo JN, Alves P, da Costa M, Graça I, Pais IP, Scotti-Campos P, Lidon FC, et al. 2015. Is salt stress tolerance in Casuarina glauca Sieb. ex Spreng. associated with its nitrogen-fixing root-nodule symbiosis? An analysis at the photosynthetic level. Plant Physiol Biochem. 96:97–109. doi:10.1016/j.plaphy.2015.07.021.
  • Batra L, Dikshit RP. 1994. Effect of exchangeable sodium on growth and concentration of important macronutrients in needles and stems of four Casuarina spp. Plant Soil. 167(2):197–202. doi:10.1007/BF00007945.
  • Butcher K, Wick AF, DeSutter T, Chatterjee A, Harmon J. 2016. Soil salinity: a threat to global food security. Agron J. 108:2189–2200. doi:10.2134/agronj2016.06.0368.
  • Carter JL, Colmer TD, Veneklaas EJ. 2006b. Variable tolerance of wetland tree species to combined salinity and waterlogging is related to regulation of ion uptake and production of organic solutes. New Phytol. 169:123–134. doi:10.1111/j.1469-8137.2005.01552.x.
  • Carter JL, Veneklaas EJ, Colmer TD, Eastham J, Hatton TJ. 2006a. Contrasting water relations of three coastal tree species with different exposure to salinity. Physiol Plantarum. 127:360–373. doi:10.1111/j.1399-3054.2006.00633.x.
  • Dastogeer KMG, Zahan MI, Tahjib-Ul-Arif M, Akter MA, Okazaki S. 2020. Plant salinity tolerance conferred by arbuscular mycorrhizal fungi and associated mechanisms: a meta-analysis. Front Plant Sci. 11:588550. doi:10.3389/fpls.2020.588550.
  • Diagne N, Ndour M, Djighaly PI, Ngom D, Ngom MCN, Ndong G, Svistoonoff S, Cherif-Silini H. 2020. Effect of plant growth promoting rhizobacteria (PGPR) and arbuscular mycorrhizal fungi (AMF) on salt stress tolerance of Casuarina obesa (Miq.). Front Sustain Food Syst. 4:601004. doi:10.3389/fsufs.2020.601004.
  • Djighaly PH, Diagne N, Ngom M, Ngom D, Hocher V, Fall D, Diouf D, Laplaze L, Svistoonoff S, Champion A. 2018. Selection of arbuscular mycorrhizal fungal strains to improve Casuarina equisetifolia L. and Casuarina glauca Sieb. tolerance to salinity. Ann For Sci. 75:72. doi:10.1007/s13595-018-0747-1.
  • Duro N, Batista-Santos P, da Costa M, Maia R, Castro IV, Ramos M, Ramalho JC, Pawlowski K, Máguas C, Ribeiro-Barros AI. 2016. The impact of salinity on the symbiosis between Casuarina glauca Sieb. ex Spreng. and N2-fixing Frankia bacteria based on the analysis of nitrogen and carbon metabolism. Plant Soil. 398:327–337. doi:10.1007/s11104-015-2666-3.
  • Egamberdieva D, Wirth S, Bellingrath-Kimura SD, Mishra J, Arora NK. 2019. Salt-tolerant plant growth promoting rhizobacteria for enhancing crop productivity of saline soils. Front Microbiol. 10:2791. doi:10.3389/fmicb.2019.02791.
  • Fan C, Qiu Z, Zeng B, Li X, Xu SH. 2018. Physiological adaptation and gene expression analysis of Casuarina equisetifolia under salt stress. Biol Plantarum. 62:489–500. doi:10.1007/s10535-018-0799-y.
  • FAO and ITPS. 2015. Status of the world’s soil resources (SWSR) — main report. Rome (Italy): Food and Agriculture Organization of the United Nations and Intergovernmental Technical Panel on Soils.
  • Goel VL, Behl HM. 2005. Growth and productivity assessment of Casuarina glauca Sieb. ex. Spreng on sodic soil sites. Biores Technol. 96:1399–1404. doi:10.1016/j.biortech.2004.10.019.
  • Graça I, Mendes VM, Marques I, Duro N, da Costa M, Ramalho JC, Pawlowski K, Manadas B, Pinto Ricardo CP, Ribeiro-Barros AI. 2020. Comparative proteomic analysis of nodulated and non-nodulated Casuarina glauca Sieb. ex Spreng. grown under salinity conditions using sequential window acquisition of all theoretical mass spectra (SWATH-MS). Int J Mol Sci. 21:78. doi:10.3390/ijms21010078.
  • Gupta A, Dubey RK, Kaur N, Choudhary OP. 2018. Nutrient accumulation in four ornamental tree species under saline stress conditions. J Plant Nutr. 41:1724–1733. doi:10.1080/01904167.2018.1459695.
  • Hurst SG 4th, Oshone R, Ghodhbane-Gtari F, Morris K, Abebe-Akele F, Thomas WK, Ktari A, Salem K, Mansour S, Gtari M, et al. 2014. Draft genome sequence of Frankia sp. strain Thr, a nitrogen-fixing actinobacterium isolated from the root nodules of Casuarina cunninghamiana grown in Egypt. Genome Announc. 2(3):e00493–14. doi:10.1128/genomeA.00493-14.
  • Isla R, Guillén M, Aragüés R. 2014. Response of five tree species to salinity and waterlogging: shoot and root biomass and relationships with leaf and root ion concentrations. Agroforest Syst. 88:461–477. doi:10.1007/s10457-014-9705-6.
  • Jorge T, Duro N, da Costa M, Florian A, Ramalho J, Ribeiro-Barros A, Fernie A, António C. 2017a. GC-TOF-MS analysis reveals salt stress-responsive metabolites in Casuarina glauca tissues. Metabolomics. 13:95. doi:10.1007/s11306-017-1234-7.
  • Jorge T, Florêncio H, Ribeiro-Barros AI, António C. 2017b. Quantification and structural characterization of raffinose family oligosaccharides in Casuarina glauca plant tissues by porous graphitic carbon electrospray quadrupole ion trap mass spectrometry. Int J Mass Spec. 413:127–134. doi:10.1016/j.ijms.2016.05.004.
  • Jorge TF, Ramalho JC, Alseekh S, Pais IP, Leitão AE, Rodrigues AP, Scotti-Campos P, Ribeiro-Barros AI, Fernie AR, António C. 2021. Will Casuarina glauca stress resilience be maintained in the face of climate change? Metabolites. 11:593. doi:10.3390/metabo11090593.
  • Jorge TF, Tohge T, Wendenburg R, Ramalho JC, Lidon FC, Ribeiro-Barros AI, António C. 2019. Salt-stress secondary metabolite signatures involved in the ability of Casuarina glauca to mitigate oxidative stress. Env Exp Bot. 166:103808. doi:10.1016/j.envexpbot.2019.103808.
  • Mansour SR, Abdel-lateif K, Bogusz D, Franche C. 2016. Influence of salt stress on inoculated Casuarina glauca seedlings. Symbiosis. 70:129–138. doi:10.1007/s13199-016-0425-8.
  • Marcar NE 1996. Casuarinas for salt-affected land. In: Pinyopusarek K, Turnbull JW, Midgley SJ, editors. Proc 3rd Int Casuarina Workshop, Da Nang, Vietnam. Canberra: CSIRO; p. 180–186.
  • Munns R, Gilliham M. 2015. Salinity tolerance of crops – what is the cost? New Phytol. 208:668–673. doi:10.1111/nph.13519.
  • Ngom M, Gray K, Diagne N, Oshone R, Fardoux J, Gherbi H, Hocher V, Svistoonoff S, Laplaze L, Tisa LS, et al. 2016. Symbiotic performance of diverse Frankia strains on salt-stressed Casuarina glauca and Casuarina equisetifolia plants. Front Plant Sci. 7:1331. doi:10.3389/fpls.2016.01331.
  • Ribeiro-Barros AI, da Costa M, Duro N, Graça I, Batista-Santos P, Jorge TF, Lidon FC, Pawlowski K, António C, Ramalho JC. 2016. An integrated approach to understand the mechanisms underlying salt stress tolerance in Casuarina glauca and its relation with nitrogen-fixing Frankia. Thr Symb. 70:111–116.
  • Scotti-Campos P, Duro N, da Costa M, Pais IP, Rodrigues AP, Batista-Santos P, Semedo JN, Leitão AE, Lidon FC, Pawlowski K, et al. 2016. Antioxidative ability and membrane integrity in salt-induced responses of Casuarina glauca Sieber ex Spreng. in symbiosis with N2-fixing Frankia Thr or supplemented with mineral nitrogen. J Plant Physiol. 196:60–69. doi:10.1016/j.jplph.2016.03.012.
  • Seenivasan R, Prasath V, Mohanraj R. 2016. Sodic soil reclamation in a semi-arid region involving organic amendments and vegetative remediation by Casuarina equsetifolia and Erianthus arundinaceus. Env Proc. 3:431–449. doi:10.1007/s40710-016-0155-1.
  • Selvakesavan RK, Dhanya NN, Thushara P, Abraham SM, Jayaraj RSC, Balasubramanian A, Deeparaj B, Sudha S, Sowmiya Rani KS, Bachpai VKW, et al. 2016. Intraspecies variation in sodium partitioning, potassium and proline accumulation under salt stress in Casuarina equisetifolia. Forst Symb. 70:117–127.
  • Singh YP, Mishra VK, Arora S, Singh B, Gupta RK. 2019. Restoration of ecosystem services through afforestation on degraded sodic lands in Indo-Gangetic plains. Indian J Agric Sci. 89(9):124–129.
  • Singh YP, Singh G, Sharma DK. 2011. Ameliorative effect of multipurpose tree species grown on sodic soils of Indo-Gangetic alluvial plains of India. Arid Land Res Manag. 25(1):55–74. doi:10.1080/15324982.2010.528150.
  • Souguir D, Zouari M, Hörmann G, Hachicha M. 2019. Behavior of some plant species used as alternatives for salt-affected soil reclamation and treated wastewater valorization. Range Manag Agrofor. 40:207–214.
  • Tanaka N. 2009. Vegetation bio-shields for tsunami mitigation: review of effectiveness, limitations, construction and sustainable management. Landsc Ecol Eng. 5:71–79. doi:10.1007/s11355-008-0058-z.
  • Tani C, Sasakawa H. 2003. Salt tolerance of Casuarina equisetifolia and Frankia Ceq1 strain isolated from the root nodules of C. equisetifolia. Soil Sci Plant Nutr. 49:215–222. doi:10.1080/00380768.2003.10410000.
  • Tani C, Sasakawa H. 2006. Proline accumulates in Casuarina equisetifolia seedlings under salt stress. Soil Sci Plant Nutr. 52:21–25. doi:10.1111/j.1747-0765.2006.00005.x.
  • Tomar OS, Gupta RK. 2002. Relative performance of some accessions of Casuarina spp. and silvicultural practices on saline waterlogged soils in semiarid conditions. Arid Land Res Manag. 16:177–184. doi:10.1080/153249802317304468.
  • Van der Moezel PG, Walton S, Gvn P-P, Bel DT. 1989. Screening for salinity and waterlogging tolerance in five Casuarina species. Landsc Urban Plan. 17(4):331–337. doi:10.1016/0169-2046(89)90087-X.
  • Wang Y, Zhang J, Qiu Z, Zeng B, Zhang Y, Wang X, Chen J, Zhong C, Deng R, Fan C. 2021. Transcriptome and structure analysis in root of Casuarina equisetifolia under NaCl treatment. PeerJ. 9:e12133. doi:10.7717/peerj.12133.
  • WMO. 2019. The global climate 2015-2019. Geneve:World Meteorological Organization.

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