| BMC Plant Biology | |
| Gene co-expression analysis of tomato seed maturation reveals tissue-specific regulatory networks and hubs associated with the acquisition of desiccation tolerance and seed vigour | |
| Research Article | |
| Nicholas Provart1  Eddi Esteban1  Asher Pasha1  Julia Buitink2  Elise Bizouerne2  Benoît Ly Vu2  Joseph Ly Vu2  Olivier Leprince2  Jérôme Verdier2  | |
| [1] Department of Cell and Systems Biology / Centre for the Analysis of Genome Evolution and Function, University of Toronto, M5S 3B2, Toronto, ON, Canada;Institut Agro, Univ Angers, INRAE, IRHS, SFR 4207 QuaSaV, 49000, Angers, France; | |
| 关键词: Dormancy; Embryo; Endosperm; Longevity; Maturation; Transcriptome; Seed coat; Seed development; | |
| DOI : 10.1186/s12870-021-02889-8 | |
| received in 2020-07-22, accepted in 2021-02-11, 发布年份 2021 | |
| 来源: Springer | |
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【 摘 要 】
BackgroundDuring maturation seeds acquire several physiological traits to enable them to survive drying and disseminate the species. Few studies have addressed the regulatory networks controlling acquisition of these traits at the tissue level particularly in endospermic seeds such as tomato, which matures in a fully hydrated environment and does not undergo maturation drying. Using temporal RNA-seq analyses of the different seed tissues during maturation, gene network and trait-based correlations were used to explore the transcriptome signatures associated with desiccation tolerance, longevity, germination under water stress and dormancy.ResultsDuring maturation, 15,173 differentially expressed genes were detected, forming a gene network representing 21 expression modules, with 3 being specific to seed coat and embryo and 5 to the endosperm. A gene-trait significance measure identified a common gene module between endosperm and embryo associated with desiccation tolerance and conserved with non-endospermic seeds. In addition to genes involved in protection such LEA and HSP and ABA response, the module included antioxidant and repair genes. Dormancy was released concomitantly with the increase in longevity throughout fruit ripening until 14 days after the red fruit stage. This was paralleled by an increase in SlDOG1–2 and PROCERA transcripts. The progressive increase in seed vigour was captured by three gene modules, one in common between embryo and endosperm and two tissue-specific. The common module was enriched with genes associated with mRNA processing in chloroplast and mitochondria (including penta- and tetratricopeptide repeat-containing proteins) and post-transcriptional regulation, as well several flowering genes. The embryo-specific module contained homologues of ABI4 and CHOTTO1 as hub genes associated with seed vigour, whereas the endosperm-specific module revealed a diverse set of processes that were related to genome stability, defence against pathogens and ABA/GA response genes.ConclusionThe spatio-temporal co-expression atlas of tomato seed maturation will serve as a valuable resource for the in-depth understanding of the dynamics of gene expression associated with the acquisition of seed vigour at the tissue level.
【 授权许可】
CC BY
© The Author(s) 2021. corrected publication 2023
【 预 览 】
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| RO202309076173684ZK.pdf | 5287KB | ||
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| MediaObjects/12951_2023_1959_MOESM6_ESM.xlsx | 10KB | Other | |
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| MediaObjects/13046_2023_2710_MOESM6_ESM.xlsx | 64KB | Other | |
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| 41116_2023_37_Article_IEq38.gif | 1KB | Image | |
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| MediaObjects/12888_2023_4809_MOESM1_ESM.docx | 27KB | Other | |
| 41116_2023_37_Article_IEq86.gif | 1KB | Image | |
| Fig. 1 | 173KB | Image |
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