| Literature DB >> 27379037 |
Yuting Fang1, Limeng Zhang2, Yongge Jiao2, Jingjing Liao1, Lifen Luo1, Sigui Ji2, Jiangzhou Li2, Kuai Dai2, Shusheng Zhu1, Min Yang1.
Abstract
Black shank, caused by Phytophthora parasitica var. nicotianae, is a widespread and destructive disease of tobacco. Crop rotation is essential in controlling black shank. Here, we confirmed that rotating black shank-infested fields with rapeseed (Brassica napus) suppressed the incidence this disease. Further study demonstrated that rapeseed roots have a strong ability to attract zoospores and subsequently stop the swimming of zoospores into cystospores. Then, rapeseed roots secrete a series of antimicrobial compounds, including 2-butenoic acid, benzothiazole, 2-(methylthio)benzothiazole, 1-(4-ethylphenyl)-ethanone, and 4-methoxyindole, to inhibit the cystospore germination and mycelial growth of P. parasitica var. nicotianae. Thus, rapeseed rotated with tobacco suppresses tobacco black shank disease through the chemical weapons secreted by rapeseed roots.Entities:
Keywords: Phytophthora parasitica; chemical interaction; root exudates; rotation; soil-borne pathogen
Year: 2016 PMID: 27379037 PMCID: PMC4904020 DOI: 10.3389/fmicb.2016.00894
Source DB: PubMed Journal: Front Microbiol ISSN: 1664-302X Impact factor: 5.640
Influence of Phytophthora parasitica var. nicotianae cystospores with rapeseed roots.
| Treatments | Cystospore rupture rate (%)a | Cystospore germination rate (%)b | Percentage of germ tube growth towards the root (%)b |
|---|---|---|---|
| Roots | 8.14 ± 2.59** | 33.84 ± 10.46** | 46.11 ± 9.26** |
| Capillary tube | 0.21 ± 0.21 | 1.56 ± 0.79 | 18.59 ± 9.59 |
Compounds identified by GC–MS analysis in rapeseed root exudates.
| Group | Peak | Closest compound | Formula | Molecular weight | Characteristic fragments | Spectra similarity (%)a |
|---|---|---|---|---|---|---|
| Acids | 3 | 2-Butenoic acid | C4H6O2 | 86 | 86, 69, 57, 53, 49, 45 | 91 |
| 4 | Valeric acid | C5H10O2 | 102 | 73, 60, 55, 45, 43, 42, 41, 39 | 83 | |
| 6 | 2-Pentenoic acid | C5H8O2 | 100 | 100, 55, 57, 45, 43, 41, 39 | 90 | |
| 15 | Nonanoic acid | C9H18O2 | 158 | 129, 115, 98, 73, 60, 55 | 80 | |
| 22 | C16H32O2 | 256 | 256, 213, 129, 73, 43 | 98 | ||
| 21 | 9-Hexadecenoic acid | C16H30O2 | 254 | 254, 236, 97, 83, 69, 55, 41 | 96 | |
| Esters | 2 | Methyl thiocyanate | C2H3NS | 73 | 73, 58, 49, 47, 45 | 90 |
| 7 | Cyclohexyl isocyanate | C7H11NO | 125 | 125, 97, 82, 67, 41 | 93 | |
| 13 | Cyclohexyl isothiocyanate | C7H11NS | 141 | 141, 83, 55 | 87 | |
| 24 | Linoleic acid ethyl ester | C20H36 O2 | 308 | 308, 263, 123, 109, 95, 81, 67, 55, 41 | 99 | |
| Ketones | 5 | 2-Heptanone | C7H14O | 114 | 114, 99, 71, 58, 43, 39 | 80 |
| 14 | 1-(4-Ethylphenyl)-ethanone | C10H12O | 148 | 148, 133, 105, | 97 | |
| Aldehydes | 1 | 3-Methyl butyraldehyde | C5H10O | 86 | 86, 71, 58, 55, 44, 41, 38 | 86 |
| 10 | Nonanal | C9H18O | 142 | 124, 119, 98, 82, 57, 41 | 80 | |
| Nitrogen-containing compounds | 12 | Benzothiazole | C7H5NS | 135 | 135, 108, 91 | 83 |
| 19 | 2-(Methylthio)benzothiazole | C8H7NS2 | 181 | 181, 148, 136, 108, 69 | 95 | |
| 26 | 9-Octadecenamide | C18H35NO | 281 | 281, 126, 98, 72, 59, 41 | 99 | |
| Alkanes | 8 | Decane | C10H22 | 142 | 142, 113, 85, 71, 57, 43 | 94 |
| 9 | Undecane | C11H24 | 156 | 156, 85, 71, 57, 43, 39 | 90 | |
| 11 | Dodecane | C12H26 | 170 | 170, 85, 71, 57, 43, 39 | 94 | |
| 16 | Tetradecane | C14H30 | 198 | 198, 155, 85, 71, 57, 43 | 96 | |
| 18 | Hexadecane | C16H34 | 226 | 226, 85, 71, 57, 43 | 87 | |
| 20 | Octadecane | C18H38 | 254 | 254, 99, 85, 71, 57, 43 | 98 | |
| 23 | Eicosane | C20H42 | 282 | 282, 99, 85, 71, 57 | 98 | |
| 25 | 1-Docosene | C22H44 | 308 | 125, 111, 97, 83, 69, 55, 43 | 99 | |
| Indoles | 17 | 4-Methoxyindole | C9H9NO | 147 | 147, 132, 104 | 94 |
Concentration of the target compounds in rapeseed root exudates from HPLC.
| Compound | Calibration curve | Concentration (μg/mL) ± standard error ( |
|---|---|---|
| 2-Butenoic acid | 0.76 ± 0.32 | |
| Benzothiazole | 10.02 ± 2.45 | |
| 2-(Methylthio)benzothiazole | 7.14 ± 2.67 | |
| 1-(4-ethylphenyl)-ethanone | 2.18 ± 0.97 | |
| 4-Methoxyindole | 56.54 ± 10.28 |