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首页> 外文期刊>International Journal of Food Microbiology >Efficacy and possible mechanisms of perillaldehyde in control of Aspergillus niger causing grape decay
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Efficacy and possible mechanisms of perillaldehyde in control of Aspergillus niger causing grape decay

机译:紫苏醛在控制黑曲霉引起葡萄腐烂中的功效及可能机理

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A variety of plant products have been recognized for their antifungal activity and recently have attracted food industry attention for their efficacy in controlling postharvest fungal decay of fruits. The antifungal activity of perillaldehyde (PAE) was evaluated against Aspergillus niger, a known cause of grape spoilage, and possible mechanisms were explored. PAE showed notable antifungal activity against A. niger, with a minimum inhibitory concentration (MIC) and a minimum fungicidal concentration (MFC) of 0.25 and 1 mu l/ml, respectively. The accumulation of mycelial biomass was also inhibited by PAE in a dose-dependent manner, completely inhibiting mycelial growth at 1 mu l/ml. In vivo data confirmed that the vapour treatment of grapes with various concentrations of PAE markedly improved control of A. niger and suppressed natural decay. Concentrations of PAE of 0.075 mu l/ml air showed the greatest inhibition of fungal growth compared to the controls. Further experiments indicated that PAE activated a membrane-active mechanism that inhibits ergosterol synthesis, increases membrane permeability (as evidenced by extracellular pH and conductivity measurements), and disrupts membrane integrity, leading to cell death. Our findings suggest that this membrane-active mechanism makes PAE a promising potential antifungal agent for postharvest control of grape spoilage. (C) 2015 Elsevier B.V. All rights reserved.
机译:多种植物产品因其抗真菌活性而得到公认,最近因其控制水果采后真菌腐烂的功效而引起食品工业的关注。评估了紫苏醛(PAE)的抗真菌活性对黑曲霉(一种导致葡萄变质的已知原因)的抗真菌活性,并探讨了可能的机制。 PAE对黑曲霉表现出显着的抗真菌活性,最低抑菌浓度(MIC)和最低杀真菌浓度(MFC)分别为0.25和1μl/ ml。 PAE还以剂量依赖的方式抑制了菌丝生物量的积累,以1μl/ ml的浓度完全抑制了菌丝的生长。体内数据证实,用不同浓度的PAE对葡萄进行​​蒸汽处理可显着改善黑曲霉的控制能力并抑制自然衰变。与对照相比,浓度为0.075μl/ ml空气的PAE表现出最大的真菌生长抑制作用。进一步的实验表明,PAE激活了一种抑制麦角固醇合成,增加膜通透性的膜活性机制(如细胞外pH和电导率测量所证明),并破坏了膜的完整性,从而导致细胞死亡。我们的发现表明,这种膜活性机制使PAE成为用于葡萄收获后控制的有希望的潜在抗真菌剂。 (C)2015 Elsevier B.V.保留所有权利。

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