| Literature DB >> 34065527 |
Rapucel Tonantzin Quetzalli Heinz-Castro1, Roberto Arredondo-Valdés2, Salvador Ordaz-Silva3, Heriberto Méndez-Cortés1, Agustín Hernández-Juárez4, Julio César Chacón-Hernández5.
Abstract
Tetranychidae family is a major group of mites causing serious damage in agricultural, vegetable and ornamental crops. Avocado bronze mite (ABM), Oligonychus punicae Hirst (Acari: Tetranychidae) causes major crop damage, defoliation and fruit abortion. At present, the control of this mite depends mainly on agrochemicals. Therefore it is necessary to find alternatives to synthetic pesticides that can help minimize environmental impact and health risks for the consumers. The aim of this research was to assess the effect of different concentrations (0.1, 0.5, 1, 5, 10, 15 and 20% (v/v)) of ethanolic extract of Moringa oleifera leaves against adult ABM females. Mites treated with 0.1 and 20% (v/v) of the extract showed mortality of 0.00% and 46.67%, 6.67% and 86.67%, 13.70% and 96.67%, at 24, 48 and 72 h, as compared to the control treatment, respectively. The number of eggs laid and hatch, as well as ABM feeding rates, depended on the extract concentration, which led to a reduction in the growth rate. M. oleifera leaf ethanolic extract has potential to control O. punicae.Entities:
Keywords: avocado bronze mite; damage; feed intake; hatched eggs; mortality; oviposition; residuality
Year: 2021 PMID: 34065527 PMCID: PMC8161235 DOI: 10.3390/insects12050476
Source DB: PubMed Journal: Insects ISSN: 2075-4450 Impact factor: 2.769
Qualitative phytochemical (“+” = present; “−“ = absent) screening of ethanolic extract of Moringa oleifera leaves.
| Bioactive Compound | Test | Bioactive Compound | Test | ||
|---|---|---|---|---|---|
| Alkaloids | + | Dragendorff’s | Flavonoids | + | Shinoda for flavanone’s |
| Sonheschain’s | NaOH at 1% for flavanone’s or Xanthone | ||||
| Tannins | + | FeCl3 for gallic acid | Quinones | + | NH4OH for Anthraquinone |
| Ferrocyanide for phenols | H2SO4 for Anthraquinone | ||||
| Carbohydrates | + | Molisch’s | Bröntraguer’s for benzoquinone | ||
| Carotenoids | + | H2SO4 and FeCl3 reagents | Soluble starch | + | KOH and H2SO4 |
| Sugar reducers | + | Fehling’s | Coumarins | + | Erlich’s |
| Benedict’s | Cyanogenic glycosides | + | Grignard’s | ||
| Saponins | + | Bouchard for steroidal saponins | Terpenoids | − | Ac2O |
| − | Foam | Purines | − | HCl | |
| − | Rosenthaler | Phenols | + | FeCl3 |
Effect of ethanolic extract of Moringa oleifera leaves at different concentrations on Oligonychus punicae females.
| Concentration (%) | Average Mortality (±SE) Percentage * | ||
|---|---|---|---|
| 24 ** | 48 ** | 72 ** | |
| 0.1 | 0.00 ± 0.00 d | 3.33 ± 3.33 d | 10.37 ± 0.37 d |
| 0.5 | 3.33 ± 0.33 d | 10.00 ± 0.00 c | 17.04 ± 2.96 d |
| 1 | 10.00 ± 0.00 d | 16.67 ± 0.33 c | 20.37 ± 5.46 cd |
| 5 | 16.67 ± 3.33 d | 23.33 ± 0.33 c | 31.11 ± 1.11 c |
| 10 | 36.67 ± 3.33 c | 63.33 ± 0.33 b | 72.59 ± 8.12 b |
| 15 | 53.33 ± 3.33 b | 76.67 ± 0.33 ab | 89.63 ± 0.37 a |
| 20 | 70.00 ± 5.77 a | 83.33 ± 0.33 a | 96.67 ± 3.33 a |
| LC50(CI95) | LC90(CI95) | b ± EE | χ2 |
| 7.99 | 15.68 | 7.50 ± 0.94 | 63.50 *** |
| (6.87–8.95) | (13.86–18.63) | ||
* Mortality corrected using Abbot’s formula (Abbott 1925). ** Means values and ± standard error (SE) is presented. Different letters indicate significant differences. LC: Lethal concentration killing 50(90) % of ABM’s population. CI: Confidence interval at 95%. b: slope± standard error. χ2: Chi-square value. *** Level of significance p < 0.0001.
Effect of ethanolic extract of Moringa oleifera leaves on oviposition and growth rate of Oligonychus punicae.
| Concentration %( | Average Number of Eggs ± SE | OAP (%) | Average Number of Eggs ± SE | OAP (%) | Average Number of Eggs ± SE | OAP (%) | Growth Rate ± SE |
|---|---|---|---|---|---|---|---|
| 24 h * | 48 h | 72 h | |||||
| Control | 61.33 ± 1.533 a | 93.33 ± 3.51 a | 109.67 ± 1.53 a | 0.8267 ± 0.00 a | |||
| 0.1 | 58.33 ± 3.06 a | −2.54 ± 2.27 | 88.00 ± 1.00 b | −2.92 ± 1.31 | 102.00 ± 2.65 b | −3.63 ± 1.98 | 0.8000 ± 0.01 b |
| 0.5 | 47.00 ± 1.00 b | −13.23 ± 0.97 | 72.67 ± 2.52 c | −12.45 ± 0.37 | 81.67 ± 1.53 c | −14.64 ± 1.07 | 0.7300 ± 0.01 c |
| 1 | 30.00 ± 1.00 c | −34.31 ± 1.14 | 37.67 ± 1.53 d | −42.46 ± 3.19 | 46.67 ± 1.53 d | −40.30 ± 1.75 | 0.5633 ± 0.01 c |
| 5 | 28.00 ± 1.00 c | −37.30 ± 2.59 | 31.67 ± 1.53 e | −49.34 ± 0.61 | 40.33 ± 0.58 e | −46.22 ± 0.39 | 0.5200 ± 0.00 d |
| 10 | 4.33 ± 0.58 d | −86.83 ± 1.33 | 5.33 ± 0.58 f | −89.16 ± 1.45 | 9.00 ± 1.00 f | −84.83 ± 1.75 | 0.0500 ± 0.04 d |
| 15 | 2.33 ± 0.58 d | −92.66 ± 1.89 | 5.33 ± 0.58 f | −89.16 ± 1.45 | 9.00 ± 1.00 f | −84.83 ± 1.75 | −0.0033 ± 0.03 e |
| 20 | 1.67 ± 0.58 d | −94.69 ± 1.89 | 2.67 ± 0.58 f | −94.45 ± 1.19 | 2.67 ± 0.58 g | −95.26 ± 0.95 | −0.4000 ± 0.00 e |
* Means values and ± standard error (SE) is presented. Different letters indicate significant differences (p < 0.05; ANOVA and Tukey’s HSD test). OAP, percentage of oviposition activity compared to control.
Residual effect of ethanolic extract of Moringa oleifera leaves on Oligonychus punicae eggs (mean ± SE) (%).
| Concentration | Hatched Eggs * | Reduction of Viable Eggs |
|---|---|---|
| Control | 55.33 ± 1.53 a | |
| 0.1 | 41.00 ± 2.00 b | −14.90 ± 2.30 |
| 0.5 | 23.33 ± 2.08 c | −42.57 ± 2.93 |
| 1 | 9.67 ± 1.15 d | −70.25 ± 3.57 |
| 5 | 3.67 ± 0.58 e | −87.60 ± 1.64 |
| 10 | 0.00 ± 0.00 f | −100 ± 0.00 |
| 15 | 0.00 ± 0.00 f | −100 ± 0.00 |
| 20 | 0.00 ± 0.00 f | −100 ± 0.00 |
* Means values and ± standard error (SE) is presented. Different letters indicate significant differences (p < 0.05; ANOVA and Tukey’s HSD test).
Effects of ethanolic extract of Moringa oleifera leaves on Oligonychus punicae feeding rate.
| Concentration %( | Average Damage (%) ± SE | Food Intake (%) ± SE | Average Damage (%) ± SE | Food Intake (%) | Average Damage (%) ± SE | Food Intake (%) ± SE |
|---|---|---|---|---|---|---|
| 24 h * | 48 h | 72 h | ||||
| Control | 12.00 ± 0.58 a | 17.00 ± 0.58 a | 26.00 ± 0.58 a | |||
| 0.1 | 11.00 ± 0.58 ab | −4.33 ± 0.22 | 15.33 ± 0.33 a | −5.12 ± 0.95 | 23.67 ± 0.67 a | −4.71 ± 0.71 |
| 0.5 | 9.33 ± 0.33 b | −12.44 ± 1.27 | 12.00 ± 0.58 b | −17.24 ± 3.98 | 20.00 ± 0.58 b | −13.05 ± 2.18 |
| 1 | 5.67 ± 0.33 c | −35.81 ± 3.44 | 9.33 ± 0.33 c | −29.06 ± 3.08 | 16.33 ± 0.88 c | −22.89 ± 3.58 |
| 5 | 4.33 ± 0.33 cd | −46.81 ± 4.73 | 7.00 ± 0.58 cd | −41.67 ± 4.81 | 13.33 ± 0.67 c | −31.14 ± 2.37 |
| 10 | 2.33 ± 0.33 de | −67.52 ± 3.94 | 4.67 ± 0.33 de | −57.02 ± 1.59 | 8.00 ± 0.58 d | −52.97 ± 3.05 |
| 15 | 2.33 ± 0.88 de | −67.94 ± 11.41 | 3.00 ± 0.58 ef | −70.11 ± 5.29 | 3.67 ± 0.33 e | −75.25 ± 2.39 |
| 20 | 1.33 ± 0.33 e | −80.16 ± 4.42 | 1.67 ± 0.67 f | −82.26 ± 6.92 | 2.33 ± 0.33 e | −83.57 ± 2.15 |
* Means values and ± standard error (SE) is presented. Different letters indicate significant differences (p < 0.05; ANOVA and Tukey’s HSD test).