基于转录组分析阿魏酸诱导猕猴桃果实抗采后软腐病作用机制OA
Mechanism of ferulic acid-induced resistance to soft rot disease in kiwi-fruit based on transcriptomics analysis
[目的]分析阿魏酸(Ferulic acid,FA)对猕猴桃果实抵御葡萄座腔菌(Botryosphaeria dothidea)相关基因表达的影响,为探究FA诱导猕猴桃抗采后软腐病的分子机制提供理论参考.[方法]以红阳猕猴桃为试材,采用0.8 g·L-1阿魏酸浸泡10 min,以等量无菌水浸泡相同时间作为对照,分别接种B.dothidea,逐日测量病斑直径;选择接种后第5天的FA处理组、接种组、FA+接种组、对照组以及第0天的空白对照组的猕猴桃组织进行转录组测序,利用RT-qPCR技术进行验证.[结果]接种4 d后,与接种组相比,FA+接种组中猕猴桃果实的病斑直径显著减小.经FA处理后,猕猴桃果实差异表达基因在抗坏血酸和醛酸代谢、谷胱甘肽代谢、苯丙烷生物合成和MAPK信号通路等途径中显著富集.进一步研究发现,FA处理改变了AsA-GSH循环和苯丙烷生物合成途径中许多基因的表达水平.多个WRKYs和MYBs与苯丙烷生物合成相关基因(AcCHS、AcHCT、AcF5H和AcCOMT)显著相关(P<0.05).此外,MAPK信号通路中的Ac-tinidia03761处于蛋白互作网络的核心.[结论]FA能够诱导猕猴桃果实增强对采后软腐病的抗性,可能通过调控AsA-GSH循环、苯丙烷生物合成和MAPK信号通路来提高猕猴桃果实对病原菌的防御能力.
[Objective]The study aimed to try to find natural and safe plant growth-promoting agents in order to effectively control the post-harvest soft rot disease of kiwifruit(Actinidia chinensis)caused by Botryosphaeria dothidea.Previously,some researchers have stated that ferulic acid(FA),as a natural phenolic acid,can induce the expression levels of related genes in apples and tomatoes,thereby enhanc-ing their disease resistance.Moreover,the application of transcriptomics technology in post-harvest preservation of fruits and vegetables has been widely reported.Therefore,in this study,using transcrip-tomics technology,the influence of ferulic acid on the related genes of kiwifruit fruits for post-harvest soft rot disease resistance was analyzed with intention to provide a theoretical basis for the preliminary exploration of the molecular mechanism of ferulic acid inducing post-harvest soft rot disease resistance in kiwifruit fruits.[Methods]Hongyang kiwifruit(Actinidia chinensis)was used as the test material.The fruits were immersed in 0.8 g·L-1 FA solution for 10 min,and the same amount of sterile water was used as the control for the same time.Then,B.dothidea was inoculated,and the lesion diameters were measured daily.The tissue samples of the FA treatment group,inoculation group,FA+inoculation group,control group and blank control group at 0 d after inoculation of B.dothidea were selected for transcriptome sequencing,and RT-qPCR technology was used for verification.[Results]Compared with the inoculation group,the diameter of the disease spots on the kiwi fruits in the FA+inoculation group was significantly reduced,and the induction effect was significantly increased.The peak value was reached on the 5th day after inoculation,at 18.27%.Through transcriptome sequencing and data analysis of 15 samples,an average of 6.62 Gb of clean data was obtained for each sample,with high da-ta quality.The results of reference genome alignment showed that the sequencing data of this study were highly matched to the kiwi reference genome.The correlation analysis of samples indicated good repeatability within the groups.Through the annotation analysis of transcription factors in the transcrip-tome data,it was found that the families with a relatively large proportion were bHLH(1643),NAC(1218),MYB_related(1154),ERF(965),WRKY(697),etc.These transcription factors are closely relat-ed to plant disease resistance.Compared with the control group,the single treatment group with ferulic acid had 622 genes upregulated and 308 genes downregulated;compared with the inoculation group,the FA+inoculation group had 500 genes upregulated and 95 genes downregulated.The results showed that ferulic acid treatment induced changes in the expression of kiwi-related genes.The GO analysis in-dicated that ferulic acid treatment had a significant impact on the metabolism and catalytic functions of enzymes during the post-harvest storage of kiwi fruits.The KEGG pathway enrichment results showed that after FA treatment of kiwi fruits,differentially expressed genes(DEGs)were enriched in pathways such as plant-pathogen interaction,secondary metabolism,ascorbic acid and aldehyde acid metabolism,glutathione metabolism,phenylpropanoid biosynthesis,flavonoid biosynthesis,and MAPK signaling pathway.Further research found that FA treatment caused transcriptional reprogramming of kiwi fruits.FA may regulate the expression of genes related to the AsA-GSH cycle,thereby coordinating the regula-tion of glutathione and ascorbic acid contents to maintain ROS homeostasis.Secondly,FA may also co-ordinate the regulation of lignin and flavonoid contents by regulating the expression levels of key genes in the phenylpropanoid biosynthesis pathway.Moreover,correlation analysis showed that multiple dif-ferentially expressed WRKYs and MYBs were significantly correlated with some key genes of the phen-ylpropanoid biosynthesis pathway(the AcCHS,AcHCT,AcF5H,and AcCOMT),and Actinidia1 7942 was significantly positively correlated with the AcCHS,AcHCT,and AcF5H;the Actinidia37434 was signifi-cantly correlated with the AcCHS,AcHCT,and AcCOMT.This indicated that Actinidia1 7942 and Actin-idia37434 might synergistically regulate the synthesis of flavonoids and lignins.Furthermore,it was found that most DEGs in the MAPK signaling pathway were upregulated.The protein-protein interac-tion network(PPI)analysis showed that the Actinidia03761 was the core of the network,and the Actini d-ia03761 was located in the MAPK signaling pathway.Therefore,it is speculated that the Actinid-ia03761 may be the core of the regulatory network of FA-induced resistance to post-harvest soft rot dis-ease in kiwi.Finally,RT-qPCR results verified the reliability of the RNA-seq data.[Conclusion]In summary,the treatment with ferulic acid could enhance the post-harvest resistance of kiwifruit to soft rot disease.This might be achieved by regulating the AsA-GSH cycle,phenylpropanoid biosynthesis,and the MAPK signaling pathway,thereby strengthening the defense against B.dothidea.Investigating the regulatory effect of ferulic acid on the related genes for disease resistance in kiwifruit would pro-vide a theoretical basis for effectively controlling postharvest soft rot disease in kiwifruit.
罗绕绕;康乃慧;刘潇;吴贵友;刘善军;曾教科;陈明;陈金印;向妙莲
江西农业大学农学院·果蔬贮藏与保鲜江西省重点实验室,南昌 330045江西农业大学农学院·果蔬贮藏与保鲜江西省重点实验室,南昌 330045江西农业大学农学院·果蔬贮藏与保鲜江西省重点实验室,南昌 330045江西农业大学农学院·果蔬贮藏与保鲜江西省重点实验室,南昌 330045江西农业大学农学院·果蔬贮藏与保鲜江西省重点实验室,南昌 330045江西农业大学农学院·果蔬贮藏与保鲜江西省重点实验室,南昌 330045江西农业大学农学院·果蔬贮藏与保鲜江西省重点实验室,南昌 330045江西农业大学农学院·果蔬贮藏与保鲜江西省重点实验室,南昌 330045江西农业大学农学院·果蔬贮藏与保鲜江西省重点实验室,南昌 330045
农业科技
猕猴桃果实转录组阿魏酸采后软腐病诱导抗病
KiwifruitTranscriptomeFerulic acidPostharvest soft rot diseaseInduced resistance
《果树学报》 2026 (6)
1546-1564,19
国家自然科学基金项目(32160399)江西省自然科学基金项目(20224BAB205031)
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