Response of subterranean clover, balansa clover, and gland clover to lime when grown in mixtures on an acid soil
R. C. Hayes A C , B. S. Dear A , B. A. Orchard A , M. B. Peoples B and P. L. Eberbach AA EH Graham Centre for Agricultural Innovation (NSW Department of Primary Industries and Charles Sturt University), Pine Gully Rd, Wagga Wagga, NSW 2650, Australia.
B CSIRO Plant Industry, GPO Box 1600, Canberra, ACT 2601, Australia.
C Corresponding author. Email: richard.hayes@dpi.nsw.gov.au
Australian Journal of Agricultural Research 59(9) 824-835 https://doi.org/10.1071/AR07383
Submitted: 11 October 2007 Accepted: 22 May 2008 Published: 26 August 2008
Abstract
This study compared the relative tolerances of subterranean clover (Trifolium subterraneum L.), balansa clover (T. michelianum Savi.), and gland clover (T. glanduliferum Boiss.) to acid soil conditions. Seed yield, seedling density, herbage production, N2 fixation, and herbage mineral composition of the 3 legumes were assessed when grown on an acid soil (pHCa of 4.3 and 15% exchangeable Al [0–0.10 m]) with and without the addition of lime (CaCO3). Annual legume species were sown in a mixed sward together with burr medic (Medicago polymorpha L.), and in mixtures with either lucerne (Medicago sativa L.), chicory (Cichorium intybus L.), or phalaris (Phalaris aquatica L.). Due to drier than average seasonal conditions, none of the perennial species persisted beyond the first summer.
Lime increased the herbage production of annual legumes by 18–22% and total pasture production by 14% in both 2002 and 2003. Subterranean clover was the most tolerant of the annual legumes to acid soil conditions, showing no visible toxicity symptoms and no response to lime in terms of seed yield. In contrast, both balansa and gland clovers exhibited visual symptoms of manganese toxicity in the absence of lime, with Mn concentrations in the shoots of 817 mg/kg and 626 mg/kg, respectively. Both species responded positively to lime with seed yields increasing by 45% and 124%, respectively. Lime increased the proportion of herbage N derived from N2 fixation by subterranean clover from 29 to 40% and by gland clover from 30 to 43%. Lime had no effect on the proportion of N2 fixed by balansa clover (29–31%), suggesting a suboptimal symbiosis of rhizobia with that species. Adding chicory or phalaris to the pasture mix increased sward herbage production in the establishment year by 39% and 21%, respectively. Based on leaf symptoms and herbage yield responses to lime, Mn toxicity was present in lucerne with tissue levels of up to 916 mg/kg, but no symptoms were observed in chicory (1129 mg/kg) or phalaris (403 mg/kg). Chicory and phalaris were more tolerant of acidity and high levels of Mn than lucerne, gland clover, and balansa clover.
The study highlighted the value of the small-seeded annual legumes, balansa clover and gland clover, to the production of mixed pasture swards even in drier than average seasonal conditions. Although more sensitive to acid soils than subterranean clover, they set a greater number of seeds and, in the case of balansa clover, a greater weight of seed under moisture stress in the establishment year than the larger seeded subterranean clover.
Additional keywords: copper concentration, boron deficiency, manganese toxicity, soil pH, aluminium, seed size, seed number, acid tolerance, chicory, nitrogen fixation.
Acknowledgments
The authors thank Mr Craig Rodham and Mr Ross Coad (NSW DPI) for technical assistance, Mrs Gayle Chamberlain (CSIRO) for mass spectrometer analysis, Dr Mark Conyers (NSW DPI) for helpful comments on aspects of this experiment, and Acid Soil Action for providing some financial assistance for this research. We also thank Mr Evan Moll who generously provided land and other assistance to run the experiment. Part of this experiment was used by R. C. H. in an Honours thesis submitted to Charles Sturt University.
Angus JF
(2001) Nitrogen supply and demand in Australian agriculture. Australian Journal of Experimental Agriculture 41, 277–288.
| Crossref | GoogleScholarGoogle Scholar |
Ballard RA,
Craig AD, Charman N
(2002) Nodulation and growth of pasture legumes with naturalised soil rhizobia. 2. Balansa clover (Trifolium michelianum Savi). Australian Journal of Experimental Agriculture 42, 939–944.
| Crossref | GoogleScholarGoogle Scholar |
Belesky DP,
Turner KE,
Fedders JM, Ruckle JM
(2001) Mineral composition of swards containing forage chicory. Agronomy Journal 93, 468–475.
Berger KC
(1949) Boron in soils and crops. Advances in Agronomy 1, 321–351.
| Crossref | GoogleScholarGoogle Scholar |
Bouton JH
(1996) Screening the alfalfa core collection for acid soil tolerance. Crop Science 36, 198–200.
Clark RG
(1995) A study of high lamb liver copper concentrations on some farms in Otago and Southland. New Zealand Veterinary Journal 43, 141–145.
| PubMed |
Collins WJ
(1978) The effect of defoliation on inflorescence production, seed yield and hard-seededness in swards of subterranean clover. Australian Journal of Agricultural Research 29, 789–801.
Conyers MK, Davey BG
(1990) The variability of pH in acid soils of the southern highlands of New South Wales. Soil Science 150, 695–704.
| Crossref | GoogleScholarGoogle Scholar |
Conyers MK,
Uren NC,
Helyar KR,
Poile GJ, Cullis BR
(1997) Temporal variation in soil acidity. Australian Journal of Soil Research 35, 1115–1130.
| Crossref | GoogleScholarGoogle Scholar |
Craig AD,
Sandral GA,
Dear BS,
Latta RA,
Evans PM, Hill NL
(2000) Register of Australian herbage plant cultivars. Trifolium michelianum cv. Frontier. Australian Journal of Experimental Agriculture 40, 1201.
| Crossref |
Culvenor RA
(1985) Tolerance of Phalaris aquatica L. lines and some other agricultural species to excess manganese, and the effect of aluminium on manganese tolerance in P. aquatica. Australian Journal of Agricultural Research 36, 695–708.
| Crossref | GoogleScholarGoogle Scholar |
De Marco D,
Li CB, Randall PJ
(1995) Manganese toxicity in Trifolium balansae, T. resupinatum, T. subterraneum, Medicago murex, M. polymorpha, M. sativa, Lotus pedunculatus, and Ornithopus compressus: relative tolerance and critical toxicity concentrations. Australian Journal of Experimental Agriculture 35, 367–374.
| Crossref |
Dear BS, Cocks PS
(1997) Effect of perennial pasture species on surface soil moisture and early growth and survival of subterranean clover (Trifolium subterraneum L.) seedlings. Australian Journal of Agricultural Research 48, 683–694.
| Crossref | GoogleScholarGoogle Scholar |
Dear BS,
Hodge A,
Lemerle D,
Pratley JE,
Orchard BA, Kaiser AG
(2006) Influence of forage legume species, seeding rate and seed size on competitiveness with annual ryegrass (Lolium rigidum) seedlings. Australian Journal of Experimental Agriculture 46, 627–636.
| Crossref | GoogleScholarGoogle Scholar |
Dear BS, Lipsett J
(1987) The effect of boron supply on the growth and seed production of subterranean clover (Trifolium subterraneum L.). Australian Journal of Agricultural Research 38, 537–546.
| Crossref | GoogleScholarGoogle Scholar |
Dear BS,
Peoples MB,
Cocks PS,
Swan AD, Smith AB
(1999) Nitrogen fixation by subterranean clover (Trifolium subterraneum L.) growing in pure culture and in mixtures with varying densities of lucerne (Medicago sativa L.) or phalaris (Phalaris aquatica L.). Australian Journal of Agricultural Research 50, 1047–1058.
| Crossref | GoogleScholarGoogle Scholar |
Dear BS,
Sandral GA,
Peoples MB,
Wilson BCD,
Taylor JN, Rodham CA
(2003b) Growth, seed set and nitrogen fixation of 28 annual legume species on 3 Vertosol soils in southern New South Wales. Australian Journal of Experimental Agriculture 43, 1101–1115.
| Crossref | GoogleScholarGoogle Scholar |
Dear BS,
Virgona JM,
Sandral GA,
Swan AD, Orchard BA
(2001) Effect of companion perennial grasses and lucerne on seed yield and regeneration of subterranean clover in two wheatbelt environments. Australian Journal of Agricultural Research 52, 973–983.
| Crossref | GoogleScholarGoogle Scholar |
Dear BS,
Wilson BCD,
Rodham CA,
McCaskie P, Sandral GA
(2002) Productivity and persistence of Trifolium hirtum, T. michelianum, T. glanduliferum and Ornithopus sativus sown as monocultures or in mixtures with T. subterraneum in the south-eastern Australian wheat belt. Australian Journal of Experimental Agriculture 42, 549–556.
| Crossref | GoogleScholarGoogle Scholar |
Donald CM
(1965) The progress of Australian agriculture and the role of pastures in environmental change. Australian Journal of Science 27, 187–198.
Edmeades DC,
Blamey FPC,
Asher CJ, Edwards DG
(1991) Effects of pH and aluminium on the growth of temperate pasture species. I. Temperate grasses and legumes supplied with inorganic nitrogen. Australian Journal of Agricultural Research 42, 559–569.
| Crossref | GoogleScholarGoogle Scholar |
Evans J,
Dear B, O’Connor GE
(1990) Influence of an acid soil on the herbage yield and nodulation of five annual pasture legumes. Australian Journal of Experimental Agriculture 30, 55–60.
| Crossref | GoogleScholarGoogle Scholar |
Evans J,
Hochman Z,
O’Connor GE, Osborne GJ
(1988) Soil acidity and Rhizobium their effects on nodulation of subterranean clover on the slopes of southern New South Wales. Australian Journal of Agricultural Research 39, 605–618.
| Crossref | GoogleScholarGoogle Scholar |
Helyar KR,
Cregan PD, Godyn DL
(1990) Soil acidity in New South Wales – current pH values and estimates of acidification rates. Australian Journal of Soil Research 28, 523–537.
| Crossref | GoogleScholarGoogle Scholar |
Hill MJ
(1996) Potential adaptation zones for temperate pasture species as constrained by climate: a knowledge-based logical modelling approach. Australian Journal of Agricultural Research 47, 1095–1117.
| Crossref | GoogleScholarGoogle Scholar |
Jones HE, Scarseth GD
(1944) The calcium-boron balance in plants as related to boron needs. Soil Science 57, 15–24.
| Crossref | GoogleScholarGoogle Scholar |
Jones RM, Hargreaves JNG
(1979) Improvements to the dry-weight-rank method for measuring botanical composition. Grass and Forage Science 34, 181–189.
| Crossref | GoogleScholarGoogle Scholar |
Li GD,
Helyar KR,
Welham SJ,
Conyers MK,
Castleman LJC,
Fisher RP,
Evans CM,
Cullis BR, Cregan PD
(2006) Pasture and sheep responses to lime application in a grazing experiment in a high-rainfall area, south-eastern Australia. I. Pasture production. Australian Journal of Agricultural Research 57, 1045–1055.
| Crossref | GoogleScholarGoogle Scholar |
Nichols PGH,
Loi A,
Nutt BJ,
Evans PM, Craig AD, , et al.
(2007) New annual and short-lived perennial pasture legumes for Australian agriculture—15 years of revolution. Field Crops Research 104, 10–23.
| Crossref | GoogleScholarGoogle Scholar |
Pearson CJ,
Brown R,
Collins WJ,
Archer KA,
Wood MS,
Petersen C, Bootle B
(1997) An Australian temperate pastures database. Australian Journal of Agricultural Research 48, 453–466.
| Crossref | GoogleScholarGoogle Scholar |
Peoples MB, Baldock JA
(2001) Nitrogen dynamics of pastures: nitrogen fixation inputs, the impact of legumes on soil nitrogen fertility, and the contributions of fixed nitrogen to Australian farming systems. Australian Journal of Experimental Agriculture 41, 327–346.
| Crossref | GoogleScholarGoogle Scholar |
Peoples MB,
Lilley DM,
Burnett VF,
Ridley AM, Garden DL
(1995) Effects of surface application of lime and superphosphate to acid soils on growth and N2 fixation by subterranean clover in mixed pasture swards. Soil Biology and Biochemistry 27, 663–671.
| Crossref |
Puckridge DW, French RJ
(1983) The annual legume pasture in cereal-ley farming systems of southern Australia: a review. Agriculture, Ecosystems & Environment 9, 229–267.
| Crossref | GoogleScholarGoogle Scholar |
Rossiter RC
(1966) Ecology of the Mediterranean annual-type pasture. Advances in Agronomy 18, 1–56.
| Crossref | GoogleScholarGoogle Scholar |
Scott BJ,
Conyers MK,
Poile GJ, Cullis BR
(1997) Subsurface acidity and liming affect yield of cereals. Australian Journal of Agricultural Research 48, 843–854.
| Crossref | GoogleScholarGoogle Scholar |
Scott BJ,
Fenton IG,
Fanning AG,
Schumann WG, Castleman LJC
(2007) Surface soil acidity and fertility in the eastern Riverina and Western Slopes of southern New South Wales. Australian Journal of Experimental Agriculture 47, 949–964.
| Crossref | GoogleScholarGoogle Scholar |
Scott BJ,
Ridley AM, Conyers MK
(2000) Management of soil acidity in long-term pastures of south-eastern Australia: a review. Australian Journal of Experimental Agriculture 40, 1173–1198.
| Crossref | GoogleScholarGoogle Scholar |
t’Mannetje L, Haydock KP
(1963) The dry-weight-rank method for the botanical analysis of pasture. Journal of British Grassland Society 18, 268–275.
Tilman D
(1996) Biodiversity: population versus ecosystem stability. Ecology 77, 350–363.
| Crossref | GoogleScholarGoogle Scholar |
Unkovich MJ,
Pate JS,
Sanford P, Armstrong EL
(1994) Potential precision of the δ15N natural abundance method in field estimates of nitrogen fixation by crop and pasture legumes in south-west Australia. Australian Journal of Agricultural Research 45, 119–132.
| Crossref | GoogleScholarGoogle Scholar |
Unkovich MJ,
Sanford P, Pate JS
(1996) Nodulation and nitrogen fixation by subterranean clover in acid soils as influenced by lime application, toxic aluminium, soil mineral N, and competition from annual ryegrass. Soil Biology and Biochemistry 28, 639–648.
| Crossref |
Watson ER
(1963) The influence of subterranean clover pastures on soil fertility. I. Short-term effects. Australian Journal of Agricultural Research 14, 796–807.
| Crossref | GoogleScholarGoogle Scholar |
Wheeler DM, Dodd MB
(1995) Effect of aluminium on yield and plant chemical concentrations of some temperate legumes. Plant and Soil 173, 133–145.
| Crossref | GoogleScholarGoogle Scholar |
Whelan AM, Alexander M
(1986) Effects of low pH and high Al, Mn, and Fe levels on the survival of Rhizobium trifolii and the nodulation of subterranean clover. Plant and Soil 92, 363–371.
| Crossref | GoogleScholarGoogle Scholar |
Wolfe EC
(2001) Nitrogen Special Issue: summing up of papers and recommendations for future research. Australian Journal of Experimental Agriculture 41, 459–463.
| Crossref | GoogleScholarGoogle Scholar |