Elevated Temperature Affects Avena sterilis ssp. ludoviciana Reproductive Biology

Author:

Ali Mohammad12ORCID,Williams Alwyn1ORCID,Widderick Michael3ORCID,Adkins Steve1

Affiliation:

1. School of Agriculture and Food Sciences, The University of Queensland, Gatton, QLD 4343, Australia

2. Queensland Department of Agriculture and Fisheries, 99 Hospital Road, Emerald, QLD 4720, Australia

3. Queensland Department of Agriculture and Fisheries, 13 Holberton Street, Toowoomba, QLD 4350, Australia

Abstract

The weed Avena sterilis ssp. ludoviciana has a high economic impact in the winter cereal crop production systems of Australia’s northern grains region (NGR). In the NGR, the frequency of high-temperature periods at the end of winter is increasing. This shift in climate may modify this weed’s maturity time and reproductive biology, and thereby impact on crop production. This study examined the reproductive biology of four A. ludoviciana biotypes in relation to elevated temperature when applied at different times during their seed development. Plants of all four A. ludoviciana biotypes were grown in an ambient temperature glasshouse (23/14 °C day/night). At panicle initiation, a portion of the plants were transferred to an elevated temperature glasshouse (29/23 °C day/night) and remained there until maturity. This process of plant movement was repeated on three further occasions with separate batches of plants, each 10 days apart. The remaining plants were kept under ambient conditions for their whole lifespan. Plants exposed to elevated temperature from panicle initiation to maturity, matured 18 days earlier than plants kept under ambient conditions, had 30% fewer filled seeds, 37% lower seed mass, and 40% less seed dormancy. Depending on the time and duration of plants exposed to elevated temperature, predicted seed longevity was ranged from 1 to 4 years in the soil seedbank. All reproductive traits were less affected when plants were exposed to elevated temperature at a later stage of development. If the frequency of high-temperature periods continues to increase, then it may lead to the development of less dormant populations of this weed that would be ready to germinate and re-infest the next winter crops under no-tillage conservation agriculture (that does not bury seeds deep in the soil profile). However, the seasonal climatic variability of the NGR in addition to the weed’s natural genetic variability may contribute to a seedbank of both dormant and less dormant seeds—making this species an even more difficult-to-control weed.

Funder

Grains Research and Development Corporation

Publisher

MDPI AG

Subject

Agronomy and Crop Science

Reference58 articles.

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2. No-tillage and conservation farming practices in grain growing areas of Queensland—A review of 40 years of development;Thomas;Aust. J. Exp. Agric.,2007

3. Pratley, J., and Kirkegaard, J. (2015). Australian Agriculture in 2020: From Conservation to Automation, Agronomy Australia and Charles Sturt University.

4. Pratley, J., and Kirkegaard, J. (2015). Australian Agriculture in 2020: From Conservation to Automation, Agronomy Australia and Charles Sturt University.

5. Strategic tillage in no-till farming systems in Australia’s north-eastern grains-growing regions: II. Implications for agronomy, soil and environment;Dang;Soil Tillage Res.,2015

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