景天科植物黄酮对草莓根瘤菌线粒体功能的影响

Qingqing Ge, Shiyi Zhao, Xingfeng Shao, Yingying Wei, Jiahui Chen, Hongfei Wang, Feng Xu
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引用次数: 0

摘要

黑根真菌(R. nigricans)是生长速度最快的真菌之一,经常在采后水果中发现,是草莓根腐病的主要病原菌。景天科植物黄酮类化合物(FSAL)是从景天科植物中提取的一种绿色安全的天然物质,具有抗真菌活性。本研究通过研究FSAL对黑僵菌的最低抑菌浓度(MIC)和细胞凋亡试验,探讨FSAL对黑僵菌的抑制作用。通过线粒体通透性转换孔(mPTP)、线粒体膜电位(MMP)、Ca2+含量、H2O2含量、细胞色素c(Cyt c)含量、线粒体相关酶活性及相关基因的变化,探讨了FSAL对黑僵菌线粒体的影响。结果表明,FSAL 对黑僵菌的 MIC 值为 1.800 mg/mL,添加 FSAL(1.800 mg/mL)后,黑僵菌的 mPTP 开放度增加,MMP 降低。导致 Ca2+ 含量增加、H2O2 含量积累和 Cyt c 含量降低,相关酶的活性受到抑制,相关基因上调(VDAC1、ANT)或下调(SDHA、NOX2)。这表明,FSAL 可通过破坏线粒体达到抑制真菌的效果,从而实现草莓采后保鲜。这为开发新的植物源抗菌剂奠定了基础。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Influence of flavonoids from Sedum aizoon L. on mitochondrial function of Rhizopus nigricans in strawberry

Influence of flavonoids from Sedum aizoon L. on mitochondrial function of Rhizopus nigricans in strawberry

Rhizopus nigricans (R. nigricans), one of the fungi that grows the fastest, is frequently discovered in postharvest fruits, it’s the main pathogen of strawberry root rot. Flavonoids in Sedum aizoon L. (FSAL) is a kind of green and safe natural substance extracted from Sedum aizoon L. which has antifungal activity. In this study, the minimum inhibitory concentration (MIC) of FSAL on R. nigricans and cell apoptosis tests were studied to explore the inhibitory effect of FSAL on R. nigricans. The effects of FSAL on mitochondria of R. nigricans were investigated through the changes of mitochondrial permeability transition pore(mPTP), mitochondrial membrane potential(MMP), Ca2+ content, H2O2 content, cytochrome c (Cyt c) content, the related enzyme activity and related genes of mitochondria. The results showed that the MIC of FSAL on R. nigricans was 1.800 mg/mL, with the addition of FSAL (1.800 mg/mL), the mPTP openness of R. nigricans increased and the MMP reduced. Resulting in an increase in Ca2+ content, accumulation of H2O2 content and decrease of Cyt c content, the activity of related enzymes was inhibited and related genes were up-regulated (VDAC1, ANT) or down-regulated (SDHA, NOX2). This suggests that FSAL may achieve the inhibitory effect of fungi by damaging mitochondria, thereby realizing the postharvest freshness preservation of strawberries. This lays the foundation for the development of a new plant-derived antimicrobial agent.

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