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核桃中JrbZIP40的鉴定与功能表征揭示其在转基因拟南芥幼苗耐盐和耐旱胁迫中的作用。

Identification and functional characterization of JrbZIP40 in walnut reveals its role in salt and drought stress tolerance in transgenic Arabidopsis seedlings.

作者信息

Wei Jinyu, Jiao Chang, Li Xi-Yu, Li Xuemin, Zhang Xin-Yi, Wang Yongxu, Song Yang, Yang Kaiyu, Liu Yushi, Zhang Jingran, Liu Mengyao, Liang Yi-Lin, Wang Xinyue, Li Han, Jia Peng, Zhang Xuemei, Qi Guohui, Dong Qinglong

机构信息

College of Forestry, Hebei Agricultural University, Baoding, 071001, P. R. China.

出版信息

BMC Plant Biol. 2025 Jul 2;25(1):807. doi: 10.1186/s12870-025-06928-6.

Abstract

BACKGROUND

Salt and drought are the primary environmental stress factors that severely threaten plant growth, development, and yield. bZIP transcription factors reportedly play crucial roles in plant responses to both biotic and abiotic stressors. However, the biological function of bZIP transcription factors in oil crops, particularly walnuts, under salt and drought stress remains unclear.

RESULTS

In this study, members of the walnut bZIP gene family were identified based on the walnut genome Chandler 2.0. Transcriptome data and RT-qPCR results were used to analyze the expression patterns of various JrbZIP genes under biotic and abiotic stress, revealing that JrbZIP40 was strongly induced by both drought and salt stress. Subcellular localization and transcriptional activation assays demonstrated that JrbZIP40 localized to the nucleus and exhibited transcriptional activation activity. Overexpression of JrbZIP40 in transgenic Arabidopsis seedlings significantly enhanced resistance to salt and drought stress. DAP-seq and Dual-luciferase results indicated that JrbZIP40 may bind to the JrHB7 and JrATG8G promoters and activate their expression, contributing to stress resistance.

CONCLUSIONS

Overall, this study elucidates the regulatory network and biological functions of JrbZIP40 in drought and salt tolerance, providing a theoretical foundation and candidate gene resources for the future use of genetic engineering to improve walnut stress resistance.

摘要

背景

盐胁迫和干旱是严重威胁植物生长、发育和产量的主要环境胁迫因素。据报道,bZIP转录因子在植物对生物和非生物胁迫的响应中发挥着关键作用。然而,bZIP转录因子在油料作物,特别是核桃,在盐胁迫和干旱胁迫下的生物学功能仍不清楚。

结果

在本研究中,基于核桃基因组Chandler 2.0鉴定了核桃bZIP基因家族成员。利用转录组数据和RT-qPCR结果分析了不同JrbZIP基因在生物和非生物胁迫下的表达模式,发现JrbZIP40受干旱和盐胁迫强烈诱导。亚细胞定位和转录激活分析表明,JrbZIP40定位于细胞核并具有转录激活活性。在转基因拟南芥幼苗中过表达JrbZIP40显著增强了对盐胁迫和干旱胁迫的抗性。DAP-seq和双荧光素酶结果表明,JrbZIP40可能与JrbZIP40和JrbZIP40启动子结合并激活它们的表达,从而有助于提高抗逆性。

结论

总体而言,本研究阐明了JrbZIP40在耐旱和耐盐性方面的调控网络和生物学功能,为未来利用基因工程提高核桃抗逆性提供了理论基础和候选基因资源。

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