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RESEARCH ARTICLE

Survival and growth of perennial halophytes on saltland in a Mediterranean environment is affected by depth to watertable in summer as well as subsoil salinity

E. G. Barrett-Lennard A B C D F , Sarita Jane Bennett B C E and M. Altman A C D
+ Author Affiliations
- Author Affiliations

A Centre for Ecohydrology, The University of Western Australia, 35 Stirling Highway, Crawley, WA 6009, Australia.

B School of Plant Biology, The University of Western Australia, 35 Stirling Highway, Crawley, WA 6009, Australia.

C Future Farm Industries Cooperative Research Centre, The University of Western Australia, 35 Stirling Highway, Crawley, WA 6009, Australia.

D Department of Agriculture and Food of Western Australia, 3 Baron-Hay Court, South Perth, WA 6151, Australia.

E Current address: Department of Environment and Agriculture, Curtin University of Technology, GPO Box U1987, Bentley, WA 6845, Australia.

F Corresponding author. Email: egbarrettlennard@agric.wa.gov.au

Crop and Pasture Science 64(2) 123-136 https://doi.org/10.1071/CP12416
Submitted: 11 December 2012  Accepted: 15 April 2013   Published: 29 May 2013

Abstract

Farmers need methods for assessing the capability of saltland for productive use based on characteristics that are readily measurable at the paddock scale. We conducted experiments on saltland transects with gradients of salinity and depth to watertable at three sites in south-western Australia. Each was planted with five perennial species with at least some salt tolerance: samphire (Tecticornia mellaria K.A.Sheph.), river saltbush (Atriplex amnicola Paul G.Wilson), small leaf bluebush (Maireana brevifolia (R.Br.) Paul G.Wilson), saltwater couch (Paspalum vaginatum Sw.), and Rhodes grass (Chloris gayana Kunth). Survival and growth of species was related to depth to watertable in summer and average subsoil (0.25–0.50 m depth) electrical conductivity of the saturation extract (ECe). It has been hypothesised that plant zonation on land affected by dryland salinity is affected by the level of salinity and waterlogging on sites. While plant survival ≥60% could be associated with particular ranges of depth to watertable and soil salinity, our data suggest that the most important factor affecting survival and growth was the presence of shallow groundwater in summer. The range of depths to watertable in summer associated with ‘good survival’ (≥60%) was 0.7–1.0 m with samphire, 0.7–1.6 m with saltwater couch, 0.8–1.5 m with Rhodes grass, 0.7–2.4 m with river saltbush, and 0.9–2.4 m with small leaf bluebush. The subsoil ECe (95% confidence interval) associated with ‘good survival’ was 5–14 dS/m for Rhodes grass, 6–11 dS/m for small leaf bluebush, 7–11 dS/m for river saltbush, 6–16 dS/m for saltwater couch, and 27–65 dS/m for samphire. Growth of the perennial grasses was strongly affected by the presence of a shallow watertable in summer; the size of saltwater couch and Rhodes grass increased many-fold as watertable depths decreased from ~1.3 to 0.9 m from the soil surface.

Additional keywords: drought, land evaluation, salinity, salt tolerance, waterlogging, watertable.


References

Aslam Z, Jeschke WD, Barrett-Lennard EG, Greenway H, Setter TL, Watkin E (1986) Effects of external NaCl on the growth of Atriplex amnicola and the ion relations and carbohydrate status of the leaves. Plant, Cell & Environment 9, 571–580.

Ayars JE, Christen EW, Soppe RW, Meyer WS (2006) The resource potential of in-situ shallow ground water use in irrigated agriculture: a review. Irrigation Science 24, 147–160.
The resource potential of in-situ shallow ground water use in irrigated agriculture: a review.Crossref | GoogleScholarGoogle Scholar |

Barrett-Lennard EG (2002) Restoration of saline land through revegetation. Agricultural Water Management 53, 213–226.
Restoration of saline land through revegetation.Crossref | GoogleScholarGoogle Scholar |

Barrett-Lennard EG (2003) The interaction between waterlogging and salinity in higher plants: causes, consequences and implications. Plant and Soil 253, 35–54.
The interaction between waterlogging and salinity in higher plants: causes, consequences and implications.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DC%2BD3sXltVemsbk%3D&md5=9fc174e9cfcb3483906e05a624492adcCAS |

Barrett-Lennard EG, Malcolm CV (1995) Saltland pastures in Australia – a practical guide. Bulletin No. 4312. Department of Agriculture of Western Australia. South Perth, W. Aust. pp. 52–71.

Barrett-Lennard EG, Malcolm CV (1999) Increased concentrations of chloride beneath stands of saltbushes (Atriplex species) suggest substantial use of groundwater. Australian Journal of Experimental Agriculture 39, 949–955.
Increased concentrations of chloride beneath stands of saltbushes (Atriplex species) suggest substantial use of groundwater.Crossref | GoogleScholarGoogle Scholar |

Barrett-Lennard EG, Shabala SN (2013) The waterlogging/salinity interaction in higher plants revisited – focusing on the hypoxia-induced disturbance to K+ homeostasis. Functional Plant Biology
The waterlogging/salinity interaction in higher plants revisited – focusing on the hypoxia-induced disturbance to K+ homeostasis.Crossref | GoogleScholarGoogle Scholar | (In press).

Barrett-Lennard EG, Malcolm CV, Bathgate A (2003) ‘Saltland pastures in Australia – a practical guide.’ 2nd edn (Land, Water and Wool Sustainable Grazing of Saline Lands Sub-program)

Bazihizina N, Barrett-Lennard EG, Colmer TD (2012) Plant growth and physiology under heterogeneous salinity. Plant and Soil 354, 1–19.
Plant growth and physiology under heterogeneous salinity.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DC%2BC38XlvFWgu7w%3D&md5=c1517f02c4b39d2dabc6911a75d80495CAS | , –

Bennett SJ, Barrett-Lennard EG, Colmer TD (2009) Salinity and waterlogging as constraints to saltland pasture production: a review. Agriculture, Ecosystems & Environment 129, 349–360.
Salinity and waterlogging as constraints to saltland pasture production: a review.Crossref | GoogleScholarGoogle Scholar |

Bleby TM, Aucote M, Kennett-Smith AK, Walker GR, Schachtman DP (1997) Seasonal water use characteristics of tall wheatgrass [Agropyron elongatum (Host) Beauv.] in a saline environment. Plant, Cell & Environment 20, 1361–1371.
Seasonal water use characteristics of tall wheatgrass [Agropyron elongatum (Host) Beauv.] in a saline environment.Crossref | GoogleScholarGoogle Scholar |

Datson B (2002) ‘Samphires in Western Australia: A field guide to Chenopodiaceae Tribe Salicornieae.’ (Department of Conservation and Land Management: Perth, W. Aust.)

Davidson NJ, Galloway R, Lazarescu G (1996) Growth of Atriplex amnicola on salt-affected soils in Western Australia. Journal of Applied Ecology 33, 1257–1266.
Growth of Atriplex amnicola on salt-affected soils in Western Australia.Crossref | GoogleScholarGoogle Scholar |

Department of Environment (2003) Salinity Investment Framework Interim Report—Phase 1. Report SLUI 32, Department of Environment, Perth, W. Aust.

Duncan RR, Carrow RN (2000) ‘Seashore paspalum: the environmental turfgrass.’ (Ann Arbor Press: Chelsea, MI)

English JP, Colmer TD (2011) Salinity and waterlogging tolerances in three stem-succulent halophytes (Tecticornia species) from the margins of ephemeral salt lakes. Plant and Soil 348, 379–396.
Salinity and waterlogging tolerances in three stem-succulent halophytes (Tecticornia species) from the margins of ephemeral salt lakes.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DC%2BC3MXht1Gnt7rO&md5=a3dee3c5b26170c8e7141a0495bc4b61CAS |

English JP, Colmer TD, Jasper D (2001) The ecophysiology of Halosarcia, succulent halophytes with potential for use in the rehabilitation of saline land. In ‘Proceedings of the Salt Lake Workshop’. 6 September 2001. (Centre for Mine Site Rehabilitation, University of Western Australia)

George RJ, McFarlane D, Nulsen B (1997) Salinity threatens the viability of agriculture and ecosystems in Western Australia. Hydrogeology Journal 5, 6–21.
Salinity threatens the viability of agriculture and ecosystems in Western Australia.Crossref | GoogleScholarGoogle Scholar |

George RJ, Speed RJ, Simons JA, Smith RH, Ferdowsian R, Raper GP, Bennett DL (2008) Long-term groundwater trends and their impact on the future extent of dryland salinity in Western Australia in a variable climate. In ‘Proceedings of the 2nd International Salinity Forum’. 30 March–3 April 2008, Adelaide. Available at: http://internationalsalinityforum.org/

Guggenheim J, Waisel Y (1977) Effects of salinity, temperature and nitrogen fertilization on growth and composition of Rhodes grass (Chloris gayana Kunth.) Plant and Soil 47, 431–440.
Effects of salinity, temperature and nitrogen fertilization on growth and composition of Rhodes grass (Chloris gayana Kunth.)Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DyaE2sXkt1Wgt7c%3D&md5=5ac0e33b728f3ad921bb2c3651e28116CAS |

Jenkins S, Barrett-Lennard EG, Rengel Z (2010) Impacts of waterlogging and salinity on puccinellia (Puccinellia ciliata) and tall wheatgrass (Thinopyrum ponticum): zonation on saltland with a shallow water-table, plant growth, and Na+ and K+ concentrations in the leaves. Plant and Soil 329, 91–104.
Impacts of waterlogging and salinity on puccinellia (Puccinellia ciliata) and tall wheatgrass (Thinopyrum ponticum): zonation on saltland with a shallow water-table, plant growth, and Na+ and K+ concentrations in the leaves.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DC%2BC3cXjtFGlu7Y%3D&md5=bbaf332919f31378060d1801006a1b2aCAS |

Jones R, Hodgkinson KC (1969) Root growth of rangeland chenopods: morphology and production of Atriplex nummularia and Atriplex vesicaria. In ‘The biology of Atriplex’. (Ed. R. Jones) pp. 77–85. (Division of Plant Industry, CSIRO: Canberra)

Le Houérou HN (1992) The role of saltbushes (Atriplex spp.) in arid land rehabilitation in the Mediterranean Basin: a review. Agroforestry Systems 18, 107–148.
The role of saltbushes (Atriplex spp.) in arid land rehabilitation in the Mediterranean Basin: a review.Crossref | GoogleScholarGoogle Scholar |

Malcolm CV (1963) An agronomic study of Kochia brevifolia. MSc Thesis, University of Western Australia, Perth, W. Aust.

Malcolm CV (1986) Saltland management – selecting forage plants for saltland. Farmnote 32/86, Western Australian Department of Agriculture, South Perth, W. Aust.

Malcolm CV, Swaan TC (1989) Screening shrubs for establishment and survival on salt-affected soils in south-western Australia. Technical Bulletin No. 81, Department of Agriculture of Western Australia, South Perth, W. Aust.

Masters D, Edwards N, Sillence M, Avery A, Revell D, Friend M, Sanford P, Saul G, Beverly C, Young J (2006) The role of livestock in the management of dryland salinity. Australian Journal of Experimental Agriculture 46, 733–741.
The role of livestock in the management of dryland salinity.Crossref | GoogleScholarGoogle Scholar |

Mensforth LJ, Walker GR (1996) Root dynamics of Melaleuca halmaturorum in response to fluctuating saline groundwater. Plant and Soil 184, 75–84.
Root dynamics of Melaleuca halmaturorum in response to fluctuating saline groundwater.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DyaK2sXlsVOntw%3D%3D&md5=5fe218fcbb09f2e6531cb9912b131ccfCAS |

Mensforth LJ, Thorburn PJ, Tyerman SD, Walker GR (1994) Sources of water used by riparian Eucalyptus camaldulensis overlying highly saline groundwater. Oecologia 100, 21–28.
Sources of water used by riparian Eucalyptus camaldulensis overlying highly saline groundwater.Crossref | GoogleScholarGoogle Scholar |

Moore G (2006) Subtropical grasses. Perennial Pastures for Western Australia. Bulletin No. 4690, Department of Agriculture and Food, South Perth, W. Aust. pp. 123–166.

National Land and Water Resources Audit (2001) ‘Australian Dryland Salinity Assessment 2000—Extent, impacts, processes, monitoring and management options.’ (Land and Water Australia: Canberra)

Norman HC, Wilmot MG, Thomas DT, Barrett-Lennard EG, Masters DG (2010) Sheep production, plant growth and nutritive value of a saltbush-based pasture system subject to rotational grazing or set stocking. Small Ruminant Research 91, 103–109.
Sheep production, plant growth and nutritive value of a saltbush-based pasture system subject to rotational grazing or set stocking.Crossref | GoogleScholarGoogle Scholar |

Nulsen RA (1981) Critical depth to saline groundwater in non-irrigated situations. Australian Journal of Soil Research 19, 83–86.
Critical depth to saline groundwater in non-irrigated situations.Crossref | GoogleScholarGoogle Scholar |

Pannell DJ, Ewing MA (2006) Managing secondary dryland salinity: options and challenges. Agricultural Water Management 80, 41–56.
Managing secondary dryland salinity: options and challenges.Crossref | GoogleScholarGoogle Scholar |

Richards LA (1954) ‘Diagnosis and improvement of saline and alkali soils.’ Handbook No. 60. (United States Department of Agriculture: Washington, DC)

Semple WS, Cole IA, Koen TB (2003) Performance of some perennial grasses on severely salinised sites on the inland slopes of New South Wales. Australian Journal of Experimental Agriculture 43, 357–371.
Performance of some perennial grasses on severely salinised sites on the inland slopes of New South Wales.Crossref | GoogleScholarGoogle Scholar |

Setter TL, Waters I (2003) Review of prospects for germplasm improvement for waterlogging tolerance in wheat, barley and oats. Plant and Soil 253, 1–34.
Review of prospects for germplasm improvement for waterlogging tolerance in wheat, barley and oats.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DC%2BD3sXltVemsb4%3D&md5=fe236284fae1416ee8223119fae19a47CAS |

Shepherd KA, MacFarlane TD, Colmer TD (2005) Morphology, anatomy and histochemistry of Salicornioideae (Chenopodiaceae) fruits and seeds. Annals of Botany 95, 917–933.
Morphology, anatomy and histochemistry of Salicornioideae (Chenopodiaceae) fruits and seeds.Crossref | GoogleScholarGoogle Scholar | 1:STN:280:DC%2BD2M7psFarsQ%3D%3D&md5=ea9bd83fcff4dd59a80aa620280a5fc0CAS | 15760916PubMed |

Sieben WH (1964) ‘Het Verband tussen ontwatering en opbrengst bij de jonge zavelgronden in de Noordoostpolder (Relationship between drainage conditions and crop yield for young light clay soils in the Nordost Polder).’ (Tjeenk Willink V: Zwolle, The Netherlands)

Sinha BK, Singh NT (1974) Effect of transpiration rate on salt accumulation around corn roots in a saline soil. Agronomy Journal 66, 557–560.
Effect of transpiration rate on salt accumulation around corn roots in a saline soil.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DyaE28XktVyiuw%3D%3D&md5=0e71c53e23012096d36203677e1fecadCAS |

Sinha BK, Singh NT (1976) Salt distribution around roots of wheat under different transpiration rates. Plant and Soil 44, 141–147.
Salt distribution around roots of wheat under different transpiration rates.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DyaE28XntlSgug%3D%3D&md5=6b018c5e42650c26430b96f4bbf6fbf4CAS |

Slavich PG, Smith KS, Tyerman SD, Walker GR (1999) Water use of grazed salt bush plantations with saline water-tables. Agricultural Water Management 39, 169–185.
Water use of grazed salt bush plantations with saline water-tables.Crossref | GoogleScholarGoogle Scholar |

Smith ST (1962) Some aspects of soil salinity in Western Australia. MSc Thesis, University of Western Australia, Perth, Australia.

Thomas DT, White CL, Hardy J, Collins J-P, Ryder A, Norman HC (2009) An on-farm evaluation of the capability of saline land for livestock production in southern Australia. Animal Production Science 49, 79–83.
An on-farm evaluation of the capability of saline land for livestock production in southern Australia.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DC%2BD1MXhtVehtLc%3D&md5=fd34f8b48206ab2a8569c7e1d8b2c3fdCAS |

Wood WE (1924) Increase of salt in soil and streams following the destruction of the native vegetation. Journal of the Royal Society of Western Australia 10, 35–47.