百合中的 MYB4 对植物耐盐碱能力的影响

Plant signaling & behavior Pub Date : 2024-12-31 Epub Date: 2024-07-14 DOI:10.1080/15592324.2024.2370724
Fanru Zhang, Xiaochao Zhang, Wenhao Wan, Xingyu Zhu, Miaoxin Shi, Ling Zhang, Fengshan Yang, Shumei Jin
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摘要

Lilium pumilum DC(L. pumilum DC)在合理利用盐碱化土壤方面发挥着重要作用。为了探索百合耐盐的分子机制,克隆了 LpMYB4。LpMYB4与Bambusa emeiensis和Zea mays MYB4的密切关系贯穿于整个系统发生树的构建。发现 LpMYB4 蛋白定位于细胞核。原核和真核细菌耐溶液实验证明,外源引入LpMYB4使过表达菌株在盐碱胁迫下获得更好的存活能力。与野生型植株相比,过表达 LpMYB4 的烟草植株在盐碱胁迫下生长更好,叶片萎蔫和徒长现象更少,叶绿素含量更高,过氧化氢和超氧阴离子含量更低,过氧化物酶和超氧化物歧化酶活性更高,相对电导率更低。盐胁迫下转基因植株的种子萌发和幼苗抗性分析表明,LpMYB4转基因种子在萌发和生长过程中对盐胁迫的耐受性更强。酵母双杂交和双荧光素酶互补实验表明,LpMYB4与酵母双杂交和LpGPX6有相互作用。分析LpMYB4在提高植物抗盐碱能力中的作用有助于植物种质资源的转化,对农业和可持续发展具有重要意义。
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MYB4 in Lilium pumilum affects plant saline-alkaline tolerance.

Lilium pumilum DC (L. pumilum DC) plays an important role in the rational utilization of salinized soil. To explore the molecular mechanism of salt-tolerant L. pumilum, the LpMYB4 was cloned. LpMYB4 close relationship with Bambusa emeiensis and Zea mays MYB4 throughout the phylogenetic tree construction. LpMYB4 protein was found to be localized in the nucleus. Prokaryotic and eukaryotic bacterial solution resistance experiments proved that the exogenous introduction of LpMYB4 made the overexpression strains obtain better survival ability under saline-alkaline stress. Compared with wild-type plants, tobacco plants overexpressing LpMYB4 had better growth and lower leaf wilting and lodging, the content of chlorophyll was higher, the content of hydrogen peroxide and superoxide anion was lower, the activity of peroxidase and superoxide dismutase was higher and the relative conductivity was lower under saline-alkaline stress. The analysis of seed germination and seedling resistance of transgenic plants under salt stress showed that LpMYB4 transgenic seeds were more tolerant to salt stress during germination and growth. Yeast two-hybrid and two-luciferase complementation experiments showed that LpMYB4 interacted with yeast two-hybrid and LpGPX6. The analysis of the role of LpMYB4 in improving plant saline-alkali resistance is helpful to the transformation of plant germplasm resources and has great significance for agriculture and sustainable development.

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