首页> 外文期刊>BMC Plant Biology >Genome-wide identification and characterization of gibberellin metabolic and signal transduction (GA MST) pathway mediating seed and berry development (SBD) in grape ( Vitis vinifera L.)
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Genome-wide identification and characterization of gibberellin metabolic and signal transduction (GA MST) pathway mediating seed and berry development (SBD) in grape ( Vitis vinifera L.)

机译:Gibberlin代谢和信号转导(GA MST)途径介导种子和浆果发育(SBD)在葡萄中的基因组鉴定及表征(GA MST)(血管血管血管发育)

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Grape is highly sensitive to gibberellin (GA), which is crucial during seed and berry development (SBD) either by itself or by interacting with other hormones, such as auxin, Abscisic acid (ABA), and Cytokinin (CK). However, no systematic analysis of GA metabolic and signal transduction (MST) pathway has been undertaken in grapevine. In this study, total endogenous GA3 content significantly decreased during SBD, and a total of 48 known genes in GA metabolic (GAM; 31) and signal transduction (ST; 17) pathways were identified in this process. In the GAM pathway, out of 31 genes, VvGA20ox1–1, VvGA3ox4–1, and VvGA2ox1–1 may be the major factors interacting at the green-berry stage (GBS) accompanied with higher accumulation rate. GA biosynthesis was greater than GA inactivation at GBS, confirming the importance of seeds in GA synthesis. The visible correlation between endogenous GA3 content and gene expression profiles suggested that the transcriptional regulation of GA biosynthesis pathway genes was a key mechanism of GA accumulation at the stone-hardening stage (SHS). Interestingly, we observed a negative feedback regulation between VvGA3oxs-VvGAI1–4, VvGA2oxs-VvGAI1–4, and VvGID1B-VvGAI1–4 in maintaining the balance of GA3 content in berries. Moreover, 11 miRNAs may be involved in the modulation of GA MST pathway by mediating their target genes, such as VvGA3ox, VvGID1B, and VvGAMYB. Many genes in auxin, ABA, and CK MST pathways were further identified and found to have a special pattern in the berry, and the crosstalk between GA and these hormones may modulate the complex process during SBD through the interaction gene network of the multihormone pathway. Lastly, based on the expression characterization of multihormone MST pathway genes, a proposed model of the GA-mediated multihormone regulatory network during SBD was proposed. Our results provided novel insights into GA-mediated regulatory networks during SBD in grape. The complexity of GA-mediated multihormone ST in SBD was also elucidated, thereby providing valuable information for future functional characterizations of specific genes in grape.
机译:葡萄对嗜酸甘油蛋白(GA)非常敏感,它们在种子和浆果发育(SBD)期间至关重要,或者通过与其他激素相互作用,例如植物蛋白,脱落酸(ABA)和细胞蛋白(CK)。然而,在Grapevine中未经对Ga代谢和信号转导(MST)途径的系统分析。在该研究中,在SBD期间,总内源Ga3含量显着降低,并且在该过程中鉴定了Ga代谢(Ga 31)中的48个已知的基因和信号转导(ST; 17)途径。在GAM途径中,在31个基因中,VVGA20Ox1-1,VVGA3OX4-1和VVGA2OX1-1可以是在绿色浆果阶段(GBS)相互作用的主要因素,伴随着较高的积累率。 GA生物合成在GBS的GA失活大于GA灭活,证实了种子在GA合成中的重要性。内源GA3含量和基因表达谱之间的可见相关性表明GA生物合成途径基因的转录调节是石硬化阶段(SHS)在GA积累的关键机制。有趣的是,我们在VVGA3OXS-VVGAI1-4,VVGA2OXS-VVGAI1-4和VVGID1B-VVGAI1-4之间观察到了负反馈调节,在维持浆果中GA3含量的平衡。此外,通过介导其靶基因,例如VVGA3OX,VVGID1B和VVGMYB,可以参与11 mIRNA的调节Ga MST途径。进一步鉴定出许多在蟾蜍,ABA和CK MST途径中的基因,并发现在浆果中具有特殊的图案,并且Ga和这些激素之间的串扰可以通过多激态路径的相互作用基因网络在SBD期间调节复杂过程。最后,基于多激态MST途径基因的表征,提出了SBD期间GA介导的多激态调节网络的提出模型。我们的结果为葡萄葡萄中的SBD介绍了GA介导的监管网络的新见解。还阐明了GA介导的多激态ST在SBD中的复杂性,从而为葡萄中的特定基因的未来功能表征提供了有价值的信息。

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