Toward cropping systems that enhance productivity and sustainability
- 5 December 2006
- journal article
- review article
- Published by Proceedings of the National Academy of Sciences in Proceedings of the National Academy of Sciences
- Vol. 103 (49) , 18389-18394
- https://doi.org/10.1073/pnas.0605946103
Abstract
The defining features of any cropping system are (i) the crop rotation and (ii) the kind or intensity of tillage. The trend worldwide starting in the late 20th century has been (i) to specialize competitively in the production of two, three, a single, or closely related crops such as different market classes of wheat and barley, and (ii) to use direct seeding, also known as no-till, to cut costs and save soil, time, and fuel. The availability of glyphosate- and insect-resistant varieties of soybeans, corn, cotton, and canola has helped greatly to address weed and insect pest pressures favored by direct seeding these crops. However, little has been done through genetics and breeding to address diseases caused by residue- and soil-inhabiting pathogens that remain major obstacles to wider adoption of these potentially more productive and sustainable systems. Instead, the gains have been due largely to innovations in management, including enhancement of root defense by antibiotic-producing rhizosphere-inhabiting bacteria inhibitory to root pathogens. Historically, new varieties have facilitated wider adoption of new management, and changes in management have facilitated wider adoption of new varieties. Although actual yields may be lower in direct-seed compared with conventional cropping systems, largely due to diseases, the yield potential is higher because of more available water and increases in soil organic matter. Achieving the full production potential of these more-sustainable cropping systems must now await the development of varieties adapted to or resistant to the hazards shown to account for the yield depressions associated with direct seeding.Keywords
This publication has 34 references indexed in Scilit:
- Enrichment and genotypic diversity of phlD-containing fluorescent Pseudomonas spp. in two soils after a century of wheat and flax monocultureFEMS Microbiology Ecology, 2006
- Distribution and Biocontrol Potential of phlD+ Pseudomonads in Corn and Soybean FieldsPhytopathology®, 2005
- Trichoderma species — opportunistic, avirulent plant symbiontsNature Reviews Microbiology, 2004
- Yield Responses of Direct-Seeded Wheat to Rhizobacteria and Fungicide Seed TreatmentsPlant Disease, 2002
- Exploiting Genotypic Diversity of 2,4-Diacetylphloroglucinol-Producing Pseudomonas spp.: Characterization of Superior Root-Colonizing P. fluorescens Strain Q8r1-96Applied and Environmental Microbiology, 2001
- Effect of Population Density of Pseudomonas fluorescens on Production of 2,4-Diacetylphloroglucinol in the Rhizosphere of WheatPhytopathology®, 1999
- Wheat root health management and environmental concernCanadian Journal of Plant Pathology, 1992
- Transgenic Plants with Enhanced Resistance to the Fungal Pathogen Rhizoctonia solaniScience, 1991
- Plant Productivity and EnvironmentScience, 1982
- Introduction of Ophiobolus graminis into new polders and its declineEuropean Journal of Plant Pathology, 1968