SlSHN2转录因子有助于番茄果实角质层的形成和表皮模式的形成。

IF 10.6 Q1 HORTICULTURE
Cécile Bres, Johann Petit, Nicolas Reynoud, Lysiane Brocard, Didier Marion, Marc Lahaye, Bénédicte Bakan, Christophe Rothan
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引用次数: 4

摘要

番茄(Solanum lycopersicum)是一种研究植物角质层的成熟模型,因为它的角质层覆盖并包埋了果实的表皮细胞。在这项研究中,我们筛选了小型番茄品种Micro-Tom的EMS突变体集,发现了一个具有光泽果实表型的突变体。通过使用已建立的测序图谱策略,我们确定了SlSHN2转录因子的因果突变,该转录因子在生长中的水果外表皮中特异性表达。shn2突变体中的点突变在SHN蛋白的高度保守的“mm”结构域中引入了K到N的氨基酸变化。shn2果实的角质层显示 ~ 角质减少了五倍,而蜡的丰度和组成几乎没有受到影响。除了角质层厚度和性质的改变外,表皮的图案和角质层的多糖组成也发生了变化。RNAseq分析进一步强调了shn2果实外果皮中数百个基因表达的改变,包括与角质层和细胞壁形成、激素信号传导和反应以及转录调控相关的基因。总之,我们发现转录调节因子SlSHN2的点突变导致水果角质层形成及其与表皮模式的协调性发生重大变化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

The SlSHN2 transcription factor contributes to cuticle formation and epidermal patterning in tomato fruit.

The SlSHN2 transcription factor contributes to cuticle formation and epidermal patterning in tomato fruit.

The SlSHN2 transcription factor contributes to cuticle formation and epidermal patterning in tomato fruit.

The SlSHN2 transcription factor contributes to cuticle formation and epidermal patterning in tomato fruit.

Tomato (Solanum lycopersicum) is an established model for studying plant cuticle because of its thick cuticle covering and embedding the epidermal cells of the fruit. In this study, we screened an EMS mutant collection of the miniature tomato cultivar Micro-Tom for fruit cracking mutants and found a mutant displaying a glossy fruit phenotype. By using an established mapping-by-sequencing strategy, we identified the causal mutation in the SlSHN2 transcription factor that is specifically expressed in outer epidermis of growing fruit. The point mutation in the shn2 mutant introduces a K to N amino acid change in the highly conserved 'mm' domain of SHN proteins. The cuticle from shn2 fruit showed a ~ fivefold reduction in cutin while abundance and composition of waxes were barely affected. In addition to alterations in cuticle thickness and properties, epidermal patterning and polysaccharide composition of the cuticle were changed. RNAseq analysis further highlighted the altered expression of hundreds of genes in the fruit exocarp of shn2, including genes associated with cuticle and cell wall formation, hormone signaling and response, and transcriptional regulation. In conclusion, we showed that a point mutation in the transcriptional regulator SlSHN2 causes major changes in fruit cuticle formation and its coordination with epidermal patterning.

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来源期刊
Molecular Horticulture
Molecular Horticulture horticultural research-
CiteScore
8.00
自引率
0.00%
发文量
24
审稿时长
12 weeks
期刊介绍: Aims Molecular Horticulture aims to publish research and review articles that significantly advance our knowledge in understanding how the horticultural crops or their parts operate mechanistically. Articles should have profound impacts not only in terms of high citation number or the like, but more importantly on the direction of the horticultural research field. Scope Molecular Horticulture publishes original Research Articles, Letters, and Reviews on novel discoveries on the following, but not limited to, aspects of horticultural plants (including medicinal plants): ▪ Developmental and evolutionary biology ▪ Physiology, biochemistry and cell biology ▪ Plant-microbe and plant-environment interactions ▪ Genetics and epigenetics ▪ Molecular breeding and biotechnology ▪ Secondary metabolism and synthetic biology ▪ Multi-omics dealing with data sets of genome, transcriptome, proteome, metabolome, epigenome and/or microbiome. The journal also welcomes research articles using model plants that reveal mechanisms and/or principles readily applicable to horticultural plants, translational research articles involving application of basic knowledge (including those of model plants) to the horticultural crops, novel Methods and Resources of broad interest. In addition, the journal publishes Editorial, News and View, and Commentary and Perspective on current, significant events and topics in global horticultural fields with international interests.
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