Glyphosate is the most applied herbicide worldwide with approximately 700,000 tons applied globally per year. While also used in other sectors, such as by railway operators to remove weeds from railroad tracks, the agricultural sector accounts for the largest share of its application. The rise of glyphosate in agriculture is due to the development of glyphosate-resistant genetically modified crops, which allows weed control during crop growth. However, despite increased crop yields and reduced field maintenance costs, research has shown that glyphosate may exert toxic effects on a range of organisms, including humans, animals, and soil microorganisms. Additionally, glyphosate can persist in agricultural soils and may be further transported into rivers and lakes where it can remain detectable for hundreds of days.
Glyphosate is typically not applied as a pure substance but rather as a mixture containing glyphosate as the active ingredient along with various other compounds. This mixture is commonly referred to as a formulation or glyphosate-based herbicide (GBH). Most of these additional compounds are surfactants with the composition of GBHs typically consisting of 40-60% of glyphosate, 5-15% of surfactants, and the remainder being water. Surfactants facilitate the spreading and penetration of glyphosate into plant tissues, leading to more effective weed control by GBHs compared to pure glyphosate.
While surfactants are considered non-active ingredients in GBHs, previous studies have shown that surfactants are not inert, and they may themselves exhibit toxic effects. For example, a type of surfactant called polyethoxylated tallow amines has been phased out due to its toxicity. Additionally, research in marine environments has shown that surfactants applied to clean up oil spills can reduce the ability of certain microorganisms to degrade the oil. However, the effects of surfactants on microorganisms inhabiting other environments, such as agricultural soil, remain largely unknown.
The main goal of this project is to provide a better understanding of the effects of surfactants used in GBHs on microorganisms. This is important for several reasons. First, some microorganisms are capable of degrading glyphosate. Second, microorganisms play a key role in maintaining soil health, for example, by driving the cycling of vital nutrients, i.e. carbon and nitrogen. Third, these cycles also impact greenhouse gas (GHG) emissions as soil microbes can act as a source and a sink of GHGs depending on the environmental conditions. However, it is currently unclear whether surfactants stimulate or inhibit these processes.
The findings of this project will be of great importance for stakeholders involved in decision-making regarding the future use of glyphosate. They will also provide guidance on whether greater attention should be given to the application of surfactants in the context of sustainable agriculture objectives.