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大豆 S2 bZIP 转录因子 GsbZIP67 赋予紫花苜蓿耐碳酸盐碱胁迫。

A Glycine soja group S2 bZIP transcription factor GsbZIP67 conferred bicarbonate alkaline tolerance in Medicago sativa.

机构信息

Plant Bioengineering Laboratory, Northeast Agricultural University, Harbin, 150030, People's Republic of China.

Crop Stress Molecular Biology Laboratory, Heilongjiang Bayi Agricultural University, Daqing, 163319, People's Republic of China.

出版信息

BMC Plant Biol. 2018 Oct 13;18(1):234. doi: 10.1186/s12870-018-1466-3.

Abstract

BACKGROUND

Even though bicarbonate alkaline stress is a serious threat to crop growth and yields, it attracts much fewer researches than high salinity stress. The basic leucine zipper (bZIP) transcription factors have been well demonstrated to function in diverse abiotic stresses; however, their biological role in alkaline tolerance still remains elusive. In this study, we functionally characterized a bZIP gene from Glycine soja GsbZIP67 in bicarbonate alkaline stress responses.

RESULTS

GsbZIP67 was initially identified as a putative bicarbonate responsive gene, on the basis of previous RNA-seq data of 50 mM NaHCO-treated Glycine soja roots. GsbZIP67 protein possessed a conserved bZIP domain, and belonged to the group S2 bZIP, which is yet less well-studied. Our studies showed that GsbZIP67 targeted to nucleus in Arabidopsis protoplasts, and displayed transcriptional activation activity in yeast cells. The quantitative real-time PCR analyses unraveled the bicarbonate stress responsive expression and tissue specific expression of GsbZIP67 in wild soybean. Further phenotypic analysis illustrated that GsbZIP67 overexpression in alfalfa promoted plant growth under bicarbonate alkaline stress, as evidenced by longer roots and shoots. Furthermore, GsbZIP67 overexpression also modified the physiological indices of transgenic alfalfa under bicarbonate alkaline stress. In addition, the expression levels of several stress responsive genes were also augmented by GsbZIP67 overexpression.

CONCLUSIONS

Collectively, in this study, we demonstrated that GsbZIP67 acted as a positive regulator of plant tolerance to bicarbonate alkaline stress. These results provide direct genetic evidence of group S2 bZIPs in bicarbonate alkaline stress, and will facilitate further studies concerning the cis-elements and/or downstream genes targeted by GsbZIP67 in stress responses.

摘要

背景

尽管碳酸氢盐碱性胁迫对作物生长和产量构成严重威胁,但它吸引的研究比高盐胁迫要少得多。碱性胁迫;然而,它们在耐碱性方面的生物学作用仍不清楚。在这项研究中,我们从大豆中鉴定了一个碱性胁迫响应的 bZIP 基因 GsbZIP67,并对其功能进行了研究。

结果

GsbZIP67 最初是根据之前的 50mM NaHCO3 处理大豆根的 RNA-seq 数据鉴定为一个可能的碳酸氢盐响应基因。GsbZIP67 蛋白具有保守的 bZIP 结构域,属于 S2 bZIP 组,该组研究较少。我们的研究表明,GsbZIP67 在拟南芥原生质体中靶向细胞核,并在酵母细胞中显示转录激活活性。定量实时 PCR 分析揭示了 GsbZIP67 在野生大豆中的碳酸氢盐胁迫响应表达和组织特异性表达。进一步的表型分析表明,在苜蓿中过表达 GsbZIP67 可促进植物在碳酸氢盐碱性胁迫下的生长,表现在根和茎较长。此外,GsbZIP67 过表达还改变了转基因苜蓿在碳酸氢盐碱性胁迫下的生理指标。此外,过表达 GsbZIP67 还增加了几个胁迫响应基因的表达水平。

结论

总之,本研究表明 GsbZIP67 作为植物耐碳酸氢盐碱性胁迫的正调控因子发挥作用。这些结果为 S2 bZIP 在碳酸氢盐碱性胁迫中的作用提供了直接的遗传证据,并将有助于进一步研究 GsbZIP67 在胁迫响应中靶定的顺式元件和/或下游基因。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/428a/6186066/2b1a99a6549a/12870_2018_1466_Fig1_HTML.jpg

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