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首页> 外文期刊>European Journal of Plant Pathology >Effect of metabolites from different Trichoderma strains on the growth of Rosellinia necatrix, the causal agent of avocado white root rot
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Effect of metabolites from different Trichoderma strains on the growth of Rosellinia necatrix, the causal agent of avocado white root rot

机译:不同木霉菌株的代谢产物对鳄梨白根腐病病因玫瑰果的生长的影响

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摘要

Seven different strains of Trichoderma isolated from avocado roots showed antagonism to Rosellinia necatrix, which is the causal agent of white root rot. We studied these Trichoderma strains on the basis of the secondary metabolites produced in liquid culture. Five different compounds, namely, 6PP (6-pentyl-alpha-pyrone), Harzianolide (4-hexa-2,4-dienyl-3-(2-hydroxy-propyl)-5H-furan-2-one), T39butenolide (4-hexa-2,4-dienyl-3-(2-oxo-propyl)-5H-furan-2-one), Dehydroharzianolide (4-hexa-2,4-dienyl-3-propenyl-5H-furan-2-one) and Cerinolactone [(3-hydroxy-5-(6-isopropyl-3-methylene-3, 4, 4a, 5, 6, 7, 8, 8a-octahydronaphthalen-2-yl) dihydrofuran-2-one); a recently discovered novel metabolite], were obtained. In vitro studies of the effects of these compounds on different R. necatrix strains isolated from avocado roots and with different virulence demonstrated that 6PP had the strongest effect even at a low concentration. Although unstable, Cerinolactone and T39butenolide also had large effects on R. necatrix, mainly at a concentration of 200 mu g. Harzianolide and Dehydroharzianolide exhibited the lowest effects on the pathogen. In vivo studies of Trichoderma metabolites on Lupinus luteus plants demonstrated the delay of white root rot epidemic through preventive application of 6PP or Harzianolide to seeds or plantlets by immersion in solutions of these metabolites at 1 mg l(-1) (minimum effective dosage). In contrast, Cerinolactone only was effective at 10 mg l(-1) when applied by plantlet immersion. Thus, this study reports the role that these metabolites could play for controlling avocado white root rot caused by R. necatrix
机译:从鳄梨根中分离出的七种不同木霉属菌株对白玫瑰腐烂的病原体玫瑰茄(Rosellinnecatrix)具有拮抗作用。我们根据液体培养物中产生的次级代谢产物研究了这些木霉属菌株。五种不同的化合物,分别是6PP(6-戊基-α-吡喃酮),Harzianolide(4-六-2,4-二烯基-3-(2-羟基-丙基)-5H-呋喃-2-酮),T39丁烯内酯( 4-hexa-2,4-dienyl-3-(2-oxo-propyl)-5H-furan-2-one),脱氢Harazianolide(4-hexa-2,4-dienyl-3-propenyl-5H-furan-2 -one)和鲸蜡内酯[(3-羟基-5-(6-异丙基-3-亚甲基-3,4,4a,5,6,7,8,8a-八氢萘-2-基)二氢呋喃-2-酮) ; [最近发现的新型代谢物]。这些化合物对从鳄梨根部分离的,具有不同毒力的不同R. necatrix菌株的作用的体外研究表明,即使在低浓度下,6PP的作用也最强。铈内酯和T39丁烯内酯虽然不稳定,但对猪ne的影响也很大,主要浓度为200微克。 Harzianolide和Dehydroharzianolide对病原体的影响最小。对黄羽扇豆植物的木霉代谢产物的体内研究表明,通过将6PP或Harzianolide浸入1 mg l(-1)(最低有效剂量)的这些代谢产物溶液中来预防性应用6PP或Harzianolide可以延缓白根腐病的流行。相比之下,通过浸入苗时,Cerinolactone仅对10 mg l(-1)有效。因此,本研究报告了这些代谢物可在控制鳄梨根瘤菌引起的鳄梨白根腐烂中发挥作用

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