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园艺学报 ›› 2025, Vol. 52 ›› Issue (12): 3143-3156.doi: 10.16420/j.issn.0513-353x.2024-0997

• 遗传育种·种质资源·分子生物学 •    下一篇

苹果肌醇-1-磷酸合成酶基因MdMIPS1参与高温胁迫应答的功能分析

孙文静, 李小艳, 张静允, 周辉, 黄小军, 马锋旺*(), 龚小庆*()   

  1. 西北农林科技大学园艺学院,作物抗逆性与高效生产国家重点实验室,陕西省苹果重点实验室,陕西杨凌 712100
  • 收稿日期:2025-08-08 修回日期:2025-10-20 出版日期:2025-12-25 发布日期:2025-12-20
  • 通讯作者:
    *(E-mail:
  • 基金资助:
    国家自然科学基金项目(32472667); 国家自然科学基金项目(32372648); 现代农业产业技术体系建设专项资助(CARS-27); 西北农林科技大学教育发展基金会项目(ZJ2023020)

The Inositol-Phosphate Synthase Gene,MdMIPS1,Enhances Heat Stress Tolerance in Transgenic Apple Plants

SUN Wenjing, LI Xiaoyan, ZHANG Jingyun, ZHOU Hui, HUANG Xiaojun, MA Fengwang*(), GONG Xiaoqing*()   

  1. State Key Laboratory for Crop Stress Resistance and High-Efficiency Production,Shaanxi Key Laboratory of Apple,College of Horticulture,Northwest A & F University,Yangling,Shaanxi 712100,China
  • Received:2025-08-08 Revised:2025-10-20 Published:2025-12-25 Online:2025-12-20

摘要:

通过改变外源和内源苹果植株中的肌醇含量,并对其进行高温处理,解析肌醇在苹果响应高温胁迫中的功能。结果发现,高温胁迫引起苹果叶片枯黄萎蔫,活性氧、丙二醛和电导率迅速升高,叶绿素含量降低;然而100 µmol · L-1外源肌醇处理显著缓解了高温对苹果植株造成的伤害。MdMIPS1编码肌醇合成的关键限速酶,其在高温胁迫下大量表达。利用实验室前期获得的MdMIPS1过表达的转基因株系(OE,高肌醇含量)进行高温处理,结果表明,与野生型植株相比,OE株系在高温下叶片失绿干枯症状比较轻微,电导率较低,叶绿素含量较高;高温下OE株系的气孔开度更大,光合系统效率更强;与野生型相比,OE植株在高温下表现出更低的活性氧水平、更高的抗氧化酶活性;并且一些编码热激蛋白的基因也在OE植株中表达水平更高。以上这些结果表明,提高肌醇水平能直接提高苹果植株对高温胁迫的抗性。

关键词: 苹果, 肌醇, MdMIPS1, 高温胁迫

Abstract:

In order to reveal the role of Myo-inositol(MI)in apple plants responding to high-temperature stress,apple plants were first exogenously supplied with MI and treated with high temperature stress. The results showed that high-temperature stress significantly caused leaf yellow and wilting,increased the contents of reactive oxygen species(ROS),malondialdehyde(MDA),and relative electrolyte leakage(REL),decreased the contents of the chlorophyll in apple plants. However,100 µmol · L-1 exogenous MI treatment significantly alleviated the damage caused by high temperature. In addition,MdMIPS1 encoding the key rate-limiting enzyme in the MI biosynthesis,expressed highly under high-temperature stress in apple plants. The transgenic lines overexpressed MdMIPS1(OE,high MI content)were obtained in our previous study. They had higher endogenous content of MI,compared with wild type(WT)plants. And these OE lines were also used in this work and treated with high temperature stress. Compared with WT plants under high temperature stress,the OE lines exhibited slighter chlorisis and wilting in leaves. The contents of REL were lower and the contents of the chlorophyll were higher in OE plants than in WT. In addition,the stomatal aperture were larger in OE leaves,and the photosynthetic efficiency were stronger in OE plants than in WT. Meanwhile,the OE plants possessed less ROS accumulation and higher antioxidant enzyme activity than WT. The expression levels of several genes encoding the heat shock protein were also higher in OE plants than in WT under high temperature stress. In sum,all these results indicated that increasing the MI levels can significantly enhance tolerance to high temperature stress in apple plants.

Key words: apple, Myo-inositol, MdMIPS1, high-temperature stress