比较共表达网络分析提取了影响番茄芽伸长的SlHSP70基因。

IF 1.4 4区 生物学 Q4 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Nam Tuan Vu, Ken Kamiya, A. Fukushima, Shuhei Hao, W. Ning, T. Ariizumi, H. Ezura, M. Kusano
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引用次数: 7

摘要

番茄是世界上价值最高的蔬菜作物之一。因此,研究人员不断改进番茄果实的农艺性状。生长素和赤霉素调节植物生长发育。Aux/吲哚-3-乙酸9(SlIAA9)和编码DELLA蛋白的基因(SlDELLA)是众所周知的调节植物生长和发育的基因,包括通过细胞分裂和细胞扩增的坐果和膨大。番茄SlIAA9和SlDELLA的缺失导致芽生长和叶片形状异常,并导致单性结实。为了研究存在于SlIAA9和SlDELLA信号通路上游或下游的番茄生长和发育的关键调控因子,我们通过使用公开的微阵列数据进行基因共表达网络分析,以提取分别与SlIAC9和SlDELLA节点直接连接的基因。因此,我们在热休克蛋白(HSP)70s组中选择了一个基因,该基因与每个共表达网络中的SlIAA9节点和SlDELLA节点相连。为了验证SlHSP70-1对番茄生长发育的影响程度,产生了靶基因的过表达系。我们发现,靶向SlHSP70-1的过表达导致节间伸长,但与野生型相比,过表达系没有表现出异常的叶片形状、坐果或果实大小。我们的研究表明,靶向SlHSP70-1可能在芽生长中发挥作用,如SlIAA9和SlDELLA,但它对单性结实和结实没有贡献。我们的研究还表明,25个同源基因中只有一个SlHSP70可以改变芽长。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Comparative co-expression network analysis extracts the SlHSP70 gene affecting to shoot elongation of tomato.
Tomato is one of vegetables crops that has the highest value in the world. Thus, researchers are continually improving the agronomical traits of tomato fruits. Auxins and gibberellins regulate plant growth and development. Aux/indole-3-acetic acid 9 (SlIAA9) and the gene encoding the DELLA protein (SlDELLA) are well-known genes that regulate plant growth and development, including fruit set and enlargement by cell division and cell expansion. The absence of tomato SlIAA9 and SlDELLA results in abnormal shoot growth and leaf shape and giving rise to parthenocarpy. To investigate the key regulators that exist up- or downstream of SlIAA9 and SlDELLA signaling pathways for tomato growth and development, we performed gene co-expression network analysis by using publicly available microarray data to extract genes that are directly connected to the SlIAA9 and SlDELLA nodes, respectively. Consequently, we chose a gene in the group of heat-shock protein (HSP)70s that was connected with the SlIAA9 node and SlDELLA node in each co-expression network. To validate the extent of effect of SlHSP70-1 on tomato growth and development, overexpressing lines of the target gene were generated. We found that overexpression of the targeted SlHSP70-1 resulted in internode elongation, but the overexpressing lines did not show abnormal leaf shape, fruit set, or fruit size when compared with that of the wild type. Our study suggests that the targeted SlHSP70-1 is likely to function in shoot growth, like SlIAA9 and SlDELLA, but it does not contribute to parthenocarpy as well as fruit set. Our study also shows that only a single SlHSP70 out of 25 homologous genes could change the shoot length.
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来源期刊
Plant Biotechnology
Plant Biotechnology BIOTECHNOLOGY & APPLIED MICROBIOLOGY-PLANT SCIENCES
CiteScore
2.90
自引率
18.80%
发文量
45
审稿时长
6-12 weeks
期刊介绍: Plant Biotechnology is an international, open-access, and online journal, published every three months by the Japanese Society for Plant Biotechnology. The journal, first published in 1984 as the predecessor journal, “Plant Tissue Culture Letters” and became its present form in 1997 when the society name was renamed to Japanese Society for Plant Cell and Molecular Biology, publishes findings in the areas from basic- to application research of plant biotechnology. The aim of Plant Biotechnology is to publish original and high-impact papers, in the most rapid turnaround time for reviewing, on the plant biotechnology including tissue culture, production of specialized metabolites, transgenic technology, and genome editing technology, and also on the related research fields including molecular biology, cell biology, genetics, plant breeding, plant physiology and biochemistry, metabolic engineering, synthetic biology, and bioinformatics.
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