Influence of reduced irrigation on beneficial invertebrates in vineyards
L. J. ThomsonA Cooperative Research Centre for Viticulture, PO Box 154, Glen Osmond, SA 5064, Australia.
B Centre for Environmental Stress and Adaptation Research, Zoology Department, University of Melbourne, Parkville, Vic. 3010, Australia. Email: lthom@unimelb.edu.au
Australian Journal of Experimental Agriculture 46(10) 1389-1395 https://doi.org/10.1071/EA05139
Submitted: 5 May 2005 Accepted: 15 March 2006 Published: 13 September 2006
Abstract
An important aspect of increasing the sustainability of agricultural production in dry continents such as Australia is decreasing water use. In this study full irrigation is compared with partial rootzone drying, a method that uses targeted controlled watering to reduce water use while maintaining production in vineyards. The impact of the 2 irrigation methods on invertebrates with potential to influence productivity (pests, predators, parasitoids and soil macroinvertebrates) in a vineyard in south-eastern Australia is also investigated. Invertebrates were sampled at ground level and in the canopy using 3 methods: pitfall traps and 2 types of sticky trap. Earthworms were sampled by hand sorting soil. Initial sorting of the collections was to the order level. The implementation of partial rootzone drying throughout the growing season (December–March) over 2 consecutive years had little effect on the invertebrate orders analysed. Only 2 generalist predator orders (Araneae and Coleoptera) and earthworms (Haplotaxida) were significantly affected under conditions of water stress. These data suggest that reduction of irrigation of the magnitude required for partial rootzone drying has limited consequences for natural enemies of vineyard pests and soil macroinvertebrates in the short term.
Acknowledgments
This research was supported by the Commonwealth Cooperative Research Centre Program and conducted through the CRC for Viticulture with support from Australia’s grapegrowers and winemakers through their investment body the Grape and Wine Research and Development Corporation with matching funds from the federal government. Infrastructure support for this research was provided by the Centre for Environmental Stress and Adaptation Research funded by the Australian Research Council.
Baker GH,
Buckerfield JC,
Grey-Gardner R,
Merry RH, Doube BM
(1992) The abundance and diversity of earthworms in pasture soils in the Fleurieu Peninsula in South Australia. Soil Biology and Biochemistry 24, 1389–1395.
| Crossref | GoogleScholarGoogle Scholar |
Baker GH,
Barrett VJ,
Carter PJ,
Williams PML, Buckerfield JC
(1993) Seasonal changes in the abundance of earthworms (Lumbricidae and Acanthodrilidae) in soils used for cereal and lucerne production in South Australia. Australian Journal of Agricultural Research 44, 1291–1301.
| Crossref | GoogleScholarGoogle Scholar |
Brown MW, Schmitt JJ
(2001) Seasonal and diurnal dynamics of beneficial insect populations in apple orchards under different management intensity. Environmental Entomology 30, 415–424.
Buckerfield JC, Webster KA
(1996) Earthworms, mulching, soil moisture and grape yields. The Australian and New Zealand Wine Industry Journal 11, 47–53.
Buckerfield JC, Webster KA
(2002) Organic matter management in vineyards - mulches for soil maintenance. Australian and New Zealand Grapegrower and Winemaker 461, 26–33.
Dry P,
Loveys B, During H
(2000) Partial drying of the rootzone of grape. 2. Changes in the pattern of root development. Vitus 39, 9–12.
Dry P,
Loveys B,
McCarthy MG, Stoll M
(2001) Strategic irrigation management in Australian vineyards. Journal International des Sciences de la Vigne et du Vin 35, 129–139.
Duelli P, Obrist MK
(2003) Biodiversity indicators: the choice of values and measures. Agriculture Ecosystems and Environment 98, 87–98.
| Crossref | GoogleScholarGoogle Scholar |
Frampton GK,
van den Brink PJ, Gould PJL
(2000) Effects of spring drought and irrigation on farmland arthropods in southern Britain. Journal of Applied Ecology 37, 865–883.
| Crossref | GoogleScholarGoogle Scholar |
Grafton-Cardwell E, Gu P
(2003) Conserving vedalia beetle, Rodolia cardinalis (Mulsant) (Coleoptera: Coccinellidae), in citrus: a continuing challenge as new insecticides gain registration. Journal of Economic Entomology 96, 1388–1398.
| PubMed |
Grant OM,
Stoll M, Jones HG
(2004) Partial rootzone drying does not affect fruit yield of raspberries. Journal of Horticultural Science and Biotechnology 79, 125–130.
Gu SL,
Du GQ,
Zoldoske D,
Hakim A,
Cochran R,
Fugelsang K, Jorgensen G
(2004) Effects of irrigation amount on water relations, vegetative growth, yield and fruit composiiton of Sauvignon blanc grapevines under partial rootzone drying and conventional irrigation in the San Joaquin Valley of California, USA. Journal of Horticultural Science and Technology 79, 26–33.
Hlivko JT, Rypstra AL
(2003) Spiders reduce herbivory: nonlethal effects of spiders on the consumption of soybean leaves by beetle pests. Annals of the Entomological Society of America 96, 914–919.
| Crossref |
Horne PA, Edward CL
(1995) Phenology and food preferences of Labidura truncata Kirby (Dermaptera: Labiduridae) in western Victoria. Journal of the Australian Entomological Society 34, 101–104.
Kang SZ,
Hu XT,
Jerie P, Zhang HH
(2003a) The effects of partial rootzone drying on root, trunk sap flow and water balance in an irrigated pear (Pyrus communis L.) orchard. Journal of Hydrology 280, 192–206.
| Crossref | GoogleScholarGoogle Scholar |
Kang SZ,
Hu XT,
Zhang HH, Jerie P
(2003b) Transpiration coefficient and the ratio of transpiration to evapotranspiration of pear tree (Pyrus communis L.) under alternative partial root-zone drying conditions. Hydrological Processes 17, 1165–1176.
| Crossref | GoogleScholarGoogle Scholar |
James DJ, Whitney J
(1993) Mite populations on grapevines in south-eastern Australia: implications for biological control of grapevine mites (Acarina: Tenuipalpidae, Eriophyidae). Experimental and Applied Acarology 17, 259–270.
| Crossref | GoogleScholarGoogle Scholar |
Luff ML
(1996) Some features influencing the efficiency of pitfall traps. Oecologia 19, 345–357.
Majer D
(1978) An improved pitfall trap for sampling ants and other epigaeic invertebrates. Journal of the Australian Entomological Society 17, 261–262.
Marc P,
Canard A, Ysnel F
(1999) Spiders (Araneae) useful for pest limitation and bioindication. Agriculture Ecosystems and Environment 74, 229–273.
| Crossref | GoogleScholarGoogle Scholar |
Perner J, Malt S
(2003) Assessment of changing agricultural land use: response of vegetation, ground-dwelling spiders and beetles to the conversion of arable land into grassland. Agriculture Ecosystems and Environment 98, 169–181.
| Crossref | GoogleScholarGoogle Scholar |
Sanderson RA,
Rushton SP,
Cherril AJ, Byrne JP
(1995) Soil vegetation and space: an analysis of their effects on the invertebrate communities of a moorland in north-east England. Journal of Applied Ecology 32, 506–516.
| Crossref |
dos Santos TP,
Rodrigues ML,
de Souza CR,
Maroco JP,
Pereira JS,
Silva JR, Chaves MM
(2003) Partial rootzone drying: effects on growth and fruit quality of field-grown grapevines (Vitus vinifera). Functional Plant Biology 30, 663–671.
| Crossref | GoogleScholarGoogle Scholar |
de Souza CR,
Maroco JP,
dos Santos TP,
Rodrigues ML,
Lopes CM,
Pereira JS, Chaves MM
(2003) Partial rootzone drying: regulation of stomatal aperture and carbon assimilation in field-grown grapevines (Vitus vinifera cv. Moscatel). Functional Plant Biology 30, 653–662.
| Crossref | GoogleScholarGoogle Scholar |
Stoll M,
Loveys B, Dry P
(2000) Hormonal changes induced by partial rootzone drying of irrigated grapevine. Journal of Experimental Botany 51, 1627–1634.
| Crossref | GoogleScholarGoogle Scholar | PubMed |
Suckling DM,
Walker JTS, Wearing CH
(1999) Ecological impact of three pest management systems in New Zealand apple orchards. Agriculture Ecosystems and Environment 73, 129–140.
| Crossref | GoogleScholarGoogle Scholar |
Thomson LJ,
Neville PJ, Hoffmann AA
(2004) Effective trapping methods for assessing invertebrates in vineyards. Australian Journal of Experimental Agriculture 44, 947–953.
| Crossref | GoogleScholarGoogle Scholar |
Topping CJ, Sunderland KD
(1992) Limitations to the use of pitfall traps in ecological studies exemplified by a study of spiders in a field of winter wheat. Journal of Applied Ecology 29, 485–491.
| Crossref |
Weissling TJ, Knight AL
(1994) Passive trap for monitoring codling moth (Lepidoptera: Tortricidae) flight activity. Journal of Economic Entomology 87, 103–107.
Williams JL,
Snyder AE, Wise DH
(2001) Sex-based differences in antipredator behaviour in the spotted cucumber beetle (Coleoptera: Chrysomelidae). Environmental Entomology 30, 327–332.
Zegbe-Dominguez JA,
Behoudian MH,
Lang A, Clothier BE
(2003) Deficit irrigation and partial rootzone drying maintain fruit dry mass and enhance fruit quality in ‘Petopride’ processing tomato (Lycopersicon esculentum Mill.). Scienta Horticulturae 98, 505–510.
| Crossref | GoogleScholarGoogle Scholar |