| Literature DB >> 31835831 |
María Pardo-Muras1,2, Carolina G Puig1,2, Nuria Pedrol1,2.
Abstract
New herbicides based on natural products are claimed to address weed resistance and environmental concerns related to synthetic herbicides. In our previous studies, certain volatile organic compounds (VOCs) produced by Ulex europaeus and Cytisus scoparius were argued to be responsible for the phytotoxicity of both shrub species. Interactions among VOCs were hypothesized to explain the inconsistency between the effects of the identified pure compounds and those naturally emitted from fresh plant material. In this work, eugenol, verbenone, terpinen-4-ol, α-terpineol, and linalool were assayed as binary mixtures of Amaranthus retroflexus and Digitaria sanguinalis. Powerful synergistic inhibitory effects were revealed for germination and early growth. Only 3.1 ppm of verbenone was enough to inhibit A. retroflexus germination when paired to other VOCs. Eugenol was capable of exacerbating the effects of terpinen-4-ol on A. retroflexus, even though it was innocuous when acting alone at 12.5 ppm. The verbenone and linalool pair produced very significant synergistic effects in terms of D. sanguinalis germination. The synergistic effects were predominantly irreversible for D. sanguinalis, since seeds exposed to paired VOCs were unable to recover their germination capacity after removing the phytotoxins or produced damaged seedlings. Both shrub species have been revealed as sources of natural herbicide molecules, with promising synergistic modes of action that deserve to be studied in depth.Entities:
Keywords: Scotch broom; allelochemicals; gorse; phytotoxicity; reversibility; synergism; weed control
Mesh:
Substances:
Year: 2019 PMID: 31835831 PMCID: PMC6943486 DOI: 10.3390/molecules24244539
Source DB: PubMed Journal: Molecules ISSN: 1420-3049 Impact factor: 4.411
Figure 1Structures of the volatile organic compounds used in this study: eugenol (A), verbenone (B), terpinen-4-ol (C), α-terpineol (D), and linalool (E).
Figure 2Effects of pairs of volatile compounds found in Ulex europaeus and Cytisus scoparius aerial biomass, assayed at fixed ratios, on the germination and early growth of Amaranthus retroflexus, expressed as percentages relative to the control (%). Values denote mean ± SD. The x-axis indicates the increasing participation of the first compound in the mixture (in percentage), i.e., 0, 3.1, 6.25, 9.4, and 12.5 ppm in the assayed volume. Dashed lines represent the expected effect of the two compounds acting independently [29]. Asterisks denote significant differences between observed and predicted values at * p ≤ 0.05; ** p ≤ 0.01; *** p ≤ 0.001; otherwise, not significant (p > 0.05).
Figure 3Effects of pairs of volatile compounds found in Ulex europaeus and Cytisus scoparius aerial biomass, assayed at fixed ratios, on the germination and early growth of Digitaria sanguinalis, expressed as percentages relative to the control (%). Values denote mean ± SD. The x-axis indicates the increasing participation of the first compound in the mixture (in percentage), i.e., 0, 3.1, 6.25, 9.4, and 12.5 ppm in the assayed volume. Dashed lines represent the expected effect of the two compounds acting independently [29]. Asterisks denote significant differences between observed and predicted values at * p ≤ 0.05; ** p ≤ 0.01; *** p ≤ 0.001; otherwise, not significant (p > 0.05).
Reversibility of the phytotoxic effects on the germination of two agricultural weeds species pre-treated with pairs of volatile compounds and then transferred to water in the absence of volatile organic compounds (VOCs). Data are expressed as percentages relative to the control ± standard deviation (SD). For each weed species, p-values of the effects of pairs were significant at p ≤ 0.05, very significant at p ≤ 0.01, highly significant at p ≤ 0.001, and not significant at p ≤ 0.05 (determined by ANOVA or independent sample t-tests). For each weed species and pair, mean values labeled with distinct letters were significantly different at p ≤ 0.05 (Fisher’s Least Significant Difference test, LSD) for post hoc multiple comparisons). Percentages indicate the increasing participation of the first compound in the mixture, i.e., 0, 3.1, 6.25, 9.4, and 12.5 ppm in the assayed volume.
| Pair | Pre-Treatment Participation of the First Compound (%) | Germination (% ± SD) | |||||
|---|---|---|---|---|---|---|---|
|
|
| ||||||
| Eugenol/verbenone | 0 | 10.0 ± 8.17 | b | 0.022 | 25.0 ± 19.1 | a | 0.412 |
| 25 | 45.0 ± 10.0 | a | 45.0 ± 34.2 | a | |||
| 50 | 50.0 ± 25.8 | a | 20.0 ± 16.3 | a | |||
| 75 | 40.0 ± 16.3 | a | 35.0 ± 10.0 | a | |||
| 100 | # | # | |||||
| Eugenol/terpinen-4-ol | 0 | # | 0.493 | # | 0.064 | ||
| 25 | 55.0 ± 19.1 | 5.0 ± 10.0 | a | ||||
| 50 | 70.0 ± 34.6 | 30.0 ± 11.5 | a | ||||
| 75 | 50.0 ± 11.5 | 20.0 ± 16.3 | a | ||||
| 100 | # | # | |||||
| Eugenol/ | 0 | 50.0 ± 20.0 | ab | 0.022 | 15.0 ± 10.0 | a | 0.538 |
| 25 | 30.0 ± 25.8 | b | 20.0 ± 16.3 | a | |||
| 50 | 80.0 ± 16.3 | a | 15.0 ± 19.1 | a | |||
| 75 | 40.0 ± 16.3 | b | 5.0 ± 10.0 | a | |||
| 100 | # | # | |||||
| Eugenol/linalool | 0 | # | 0.704 | 13.2 ± 5.3 | a | 0.888 | |
| 25 | 80.0 ± 28.3 | a | 15.0 ± 10.0 | a | |||
| 50 | 60.0 ± 43.2 | a | 15.0 ± 19.1 | a | |||
| 75 | 75.0 ± 30.0 | a | 20.0 ± 16.3 | a | |||
| 100 | # | # | |||||
| Verbenone/ | 0 | 50.0 ± 20.0 | a | 0.009 | 15.0 ± 10.0 | a | 0.749 |
| 25 | 50.0 ± 24.6 | a | 15.0 ± 10.0 | a | |||
| 50 | 50.0 ± 25.8 | a | 25.0 ± 25.2 | a | |||
| 75 | 20.0 ± 11.3 | b | 30.0 ± 25.8 | a | |||
| 100 | 10.0 ± 8.17 | b | 25.0 ± 19.1 | a | |||
| Verbenone/linalool | 0 | # | 0.023 | 13.2 ± 5.3 | a | 0.315 | |
| 25 | 55.0 ± 10.0 | a | 20.0 ± 16.3 | a | |||
| 50 | 40.0 ± 16.3 | ab | 25.0 ± 10.0 | a | |||
| 75 | 40.0 ± 28.3 | ab | 40.0 ± 28.3 | a | |||
| 100 | 10.0 ± 8.17 | b | 25.0 ± 19.1 | a | |||
| 0 | # | 0.714 | 13.2 ± 5.3 | a | 0.720 | ||
| 25 | 45.0 ± 19.1 | a | 25.0 ± 10.0 | a | |||
| 50 | 65.0 ± 19.1 | a | 30.0 ± 11.5 | a | |||
| 75 | 50.0 ± 38.3 | a | 20.0 ± 40.0 | a | |||
| 100 | 50.0 ± 20.0 | a | 15.0 ± 10.0 | a | |||
| Verbenone/terpinen-4-ol | 0 | # | 0.039 | # | 0.227 | ||
| 25 | 25.0 ± 10.0 | b | 30.0 ± 25.8 | a | |||
| 50 | 45.0 ± 11.23 | a | 15.0 ± 10.0 | a | |||
| 75 | 55.0 ± 14.3 | a | 45.0 ± 19.1 | a | |||
| 100 | 10.0 ± 8.17 | b | 25.0 ± 19.1 | a | |||
| 0 | # | 0.292 | # | 0.726 | |||
| 25 | 50.0 ± 25.8 | a | 10.0 ± 11.5 | a | |||
| 50 | 70.0 ± 25.8 | a | 20.0 ± 16.3 | a | |||
| 75 | 35.0 ± 25.2 | a | 15.0 ± 10.0 | a | |||
| 100 | 50.0 ± 20.0 | a | 15.0 ± 10.0 | a | |||
| Terpinen-4-ol/linalool | 0 | # | 0.943 | 13.2 ± 5.3 | a | 0.906 | |
| 25 | 45.0 ± 19.1 | a | # | ||||
| 50 | 50.0 ± 25.8 | a | 15.0 ± 19.1 | a | |||
| 75 | 50.0 ± 25.8 | a | # | ||||
| 100 | # | # | |||||
# Concentrations for which the minimum number of ten non-germinated seeds for the reversibility bioassay was not achieved.