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园艺研究(英文)
园艺研究(英文)
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    SlWRKY80-mediated jasmonic acid pathway positively regulates tomato resistance to saline-alkali stress by enhancing spermidine content and stabilizing Na+/K+homeostasis

    Chunyu ShangXiaoyan LiuGuo ChenHao Zheng...
    275-291页
    查看更多>>摘要:Saline-alkali is an important abiotic stressor influencing tomato production.Exogenous methyl jasmonate(MeJA)is well known to increase tomato resistance to a variety of stresses,although its exact mechanism is yet unknown.In this study we confirmed that 22.5 μmol/l MeJA could significantly improve the saline-alkali stress resistance of tomato.Saline-alkali(300 mM)stress increased the endogenous MeJA and jasmonic acid(JA)contents of tomato by 18.8 and 13.4%,respectively.Exogenous application of 22.5 μmol/l MeJA increased the endogenous MeJA and JA contents in tomato by 15.2 and 15.9%,respectively.Furthermore,we found an important transcription factor,SlWRKY80,which responded to MeJA,and constructed its overexpressing and knockout lines through genetic transformation.It was found that SlWRKY80 actively regulated tomato resistance to saline-alkali stress,and the spraying of exogenous MeJA(22.5 μmol/l)reduced the sensitivity of SlWRKY80 knockout lines to saline-alkali stress.The SlWRKY80 protein directly combines with the promoter of SlSPDS2 and SlNHX4 to positively regulate the transcription of SlSPDS2 and SlNHX4,thereby promoting the synthesis of spermidine and Na+/K+homeostasis,actively regulating saline-alkali stress.The augmentation of JA content led to a notable reduction of 70.6%in the expression of SlJAZ1,and the release of the SlWRKY80 protein interacting with SlJAZ1.In conclusion,we revealed the mechanism of exogenous MeJA in tomato stress resistance through multiple metabolic pathways,elucidated that exogenous MeJA further promotes spermidine synthesis and Na+/K+homeostasis by activating the expression of SlWRKY80,which provides a new theoretical basis for the study of the JA stress resistance mechanism and the production of tomato.

    Hypermethylation in the promoter regions of flavonoid pathway genes is associated with skin color fading during'Daihong'apple fruit development

    Jihua XuLan XiongJia-Long YaoPeilei Zhao...
    293-307页
    查看更多>>摘要:Apple fruit skin color fading is not well understood although the molecular mechanism of skin color formation is well known.The red-fleshed apple cultivar'Daihong'(DH)exhibited fading skin color during fruit development despite having a heterozygous R6 allele but lacking Red-TE for red fruit skin.In this study,transcriptomic analysis revealed the expression level of MdMYB10 increased with fruit development whereas reduced expression levels of MdMYBPA1,MdCHS,MdANS,MdUFGT,MdLAR,and MdANR were observed,consistent with decreased levels of chalcone,anthocyanin,catechin,epicatechin,and procyanidin B2.Whole-genome bisulfite sequencing(WGBS)indicated a global gain in cytosine methylation levels and increased methylation in 5'and 3'flanking regions of genes and transposable elements(TEs),and in TE bodies in all CG,CHG and CHH contexts,especially the mCHH context,during fruit development.The increased DNA methylation was attributed to reduced expression levels of DNA demethylase genes,including MdDME1,MdROS1,and MdROS2.Association analysis revealed a significant negative correlation between promoter methylation levels of MdCHS,MdCHI,MdMYBPA1,and their respective transcript levels,as well as a negative correlation between promoter methylation levels of MdCHS,MdCHI,MdANR,and MdFLS,and the content of chalcones,naringenin-7-glucoside,epicatechin,and quercetin.Treatment with the DNA demethylation agent 5-aza-2'-deoxycytidine verified the negative correlation between DNA methylation and gene expression within the flavonoid pathway.These findings suggest that hypermethylation in promoter regions of genes of the flavonoid biosynthesis pathway is associated with the reduction of gene expression and flavonoid content,and fruit skin color fading during DH apple development.

    A comprehensive overview of omics-based approaches to enhance biotic and abiotic stress tolerance in sweet potato

    Sulaiman AhmedMuhammad Saad Shoaib KhanSonglei XueFaisal Islam...
    309-325页
    查看更多>>摘要:Biotic and abiotic stresses negatively affect the yield and overall plant developmental process,thus causing substantial losses in global sweet potato production.To cope with stresses,sweet potato has evolved numerous strategies to tackle ever-changing surroundings and biological and environmental conditions.The invention of modern sequencing technology and the latest data processing and analysis instruments has paved the way to integrate biological information from different approaches and helps to understand plant system biology more precisely.The advancement in omics technologies has accumulated and provided a great source of information at all levels(genome,transcript,protein,and metabolite)under stressful conditions.These latest molecular tools facilitate us to understand better the plant's responses to stress signaling and help to process/integrate the biological information encoded within the biological system of plants.This review briefly addresses utilizing the latest omics strategies for deciphering the adaptive mechanisms for sweet potatoes'biotic and abiotic stress tolerance via functional genomics,transcriptomics,proteomics,and metabolomics.This information also provides a powerful reference to understand the complex,well-coordinated stress signaling genetic regulatory networks and better comprehend the plant phenotypic responses at the cellular/molecular level under various environmental stimuli,thus accelerating the design of stress-resilient sweet potato via the latest genetic engineering approaches.

    Efficient targeted mutagenesis in tetraploid Pogostemon cablin by the CRISPR/Cas9-mediated genomic editing system

    Shiqiang XuFangping LiFang ZhouJingyu Li...
    327-330页

    CRISPR/Cas9 revolutionizes Macleaya cordata breeding:a leap in sanguinarine biosynthesis

    Mengshan SunXiaohong ZhongLi ZhouWei Liu...
    331-334页

    Diploid wax apple(Syzygium samarangense)genome identified NAC genes regulating fruit development

    Junyu ZhangZhidong LiYufan LiangShuang He...
    335-337页