全基因组基因网络揭示了草莓(F. × ananassa)果实发育过程中辅助素平衡基因的时空变化。

IF 4.3 2区 生物学 Q1 PLANT SCIENCES BMC Plant Biology Pub Date : 2024-09-20 DOI:10.1186/s12870-024-05577-5
Yoon Jeong Jang, Taehoon Kim, Makou Lin, Jeongim Kim, Kevin Begcy, Zhongchi Liu, Seonghee Lee
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引用次数: 0

摘要

背景:植物激素辅助素在调节草莓果实发育的重要功能中发挥着关键作用。尽管有一些研究描述了野生二倍体草莓(Fragaria vesca)中复杂的辅助素生物合成和信号传导途径,但八倍体草莓果实发育过程中辅助素生物合成和串扰的分子机制尚未完全定性。为了填补这一知识空白,我们在果实发育的不同阶段进行了全面的转录组分析,并对瘦果和花托进行了比较,以确定果实成熟过程中受发育调控的辅助素生物合成基因和转录因子。与野生二倍体草莓相似,八倍体草莓在瘦果中积累的辅助素水平高于花托:结果:研究发现,拟南芥色氨酸氨基转移酶(TAAs)、YUCCA(YUCs)和Gretchen Hagen 3(GH3s)等参与辅酶生物合成和共轭的基因主要在瘦果中表达,而在花托中表达量较低。有趣的是,一些参与叶绿素转运和信号转导的基因,如针形蛋白(PINs)、叶绿素/吲哚-3-乙酸蛋白(Aux/IAAs)、转运抑制物反应 1 / 叶绿素信号转导 F-Box(TIR/AFBs)和叶绿素反应因子(ARFs)在花托中的表达量更高。此外,通过研究所有六个发育阶段的 DEGs 及其转录谱,我们确定了与 NAM-ATAF1,2-CUC2/ WRKYGQK 基序(NAC/WYKY)、热休克转录因子和热休克蛋白(HSF/HSP)、APETALA2/乙烯反应因子(AP2/ERF)和 MYB 转录因子组的转录因子共簇的关键叶绿素相关基因:这些结果阐明了瘦果和花托中复杂的辅助素生物合成调控网络及其错综复杂的相互关系,丰富了我们对八倍体草莓果实发育的认识。
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Genome-wide gene network uncover temporal and spatial changes of genes in auxin homeostasis during fruit development in strawberry (F. × ananassa).

Background: The plant hormone auxin plays a crucial role in regulating important functions in strawberry fruit development. Although a few studies have described the complex auxin biosynthetic and signaling pathway in wild diploid strawberry (Fragaria vesca), the molecular mechanisms underlying auxin biosynthesis and crosstalk in octoploid strawberry fruit development are not fully characterized. To address this knowledge gap, comprehensive transcriptomic analyses were conducted at different stages of fruit development and compared between the achene and receptacle to identify developmentally regulated auxin biosynthetic genes and transcription factors during the fruit ripening process. Similar to wild diploid strawberry, octoploid strawberry accumulates high levels of auxin in achene compared to receptacle.

Results: Genes involved in auxin biosynthesis and conjugation, such as Tryptophan Aminotransferase of Arabidopsis (TAAs), YUCCA (YUCs), and Gretchen Hagen 3 (GH3s), were found to be primarily expressed in the achene, with low expression in the receptacle. Interestingly, several genes involved in auxin transport and signaling like Pin-Formed (PINs), Auxin/Indole-3-Acetic Acid Proteins (Aux/IAAs), Transport Inhibitor Response 1 / Auxin-Signaling F-Box (TIR/AFBs) and Auxin Response Factor (ARFs) were more abundantly expressed in the receptacle. Moreover, by examining DEGs and their transcriptional profiles across all six developmental stages, we identified key auxin-related genes co-clustered with transcription factors from the NAM-ATAF1,2-CUC2/ WRKYGQK motif (NAC/WYKY), Heat Shock Transcription Factor and Heat Shock Proteins (HSF/HSP), APETALA2/Ethylene Responsive Factor (AP2/ERF) and MYB transcription factor groups.

Conclusions: These results elucidate the complex regulatory network of auxin biosynthesis and its intricate crosstalk within the achene and receptacle, enriching our understanding of fruit development in octoploid strawberries.

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来源期刊
BMC Plant Biology
BMC Plant Biology 生物-植物科学
CiteScore
8.40
自引率
3.80%
发文量
539
审稿时长
3.8 months
期刊介绍: BMC Plant Biology is an open access, peer-reviewed journal that considers articles on all aspects of plant biology, including molecular, cellular, tissue, organ and whole organism research.
期刊最新文献
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