LcMYB5, an R2R3-MYB family gene from Lonicera caerulea L., enhances drought and salt tolerance in transgenic tobacco and blue honeysuckle

IF 4 3区 生物学 Q1 PLANT SCIENCES Journal of plant physiology Pub Date : 2025-01-01 DOI:10.1016/j.jplph.2024.154409
Chunlin Fu , Chunyang Bian , Jing Chen , Qian Zhang , Dong Qin , Jiangkuo Li , Peng Zhang , Junwei Huo , Huixin Gang
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Abstract

MYB transcription factors exert crucial functions in enhancing plant stress tolerance, which is impacted by soil drought and salinity. In our study, the R2R3-type MYB transcription factor gene LcMYB5 from blue honeysuckle (Lonicera caerulea L.) was successfully cloned and identified, and confirmed its nuclear localization. LcMYB5 overexpression was vastly enhanced drought and salt tolerance in both blue honeysuckle and tobacco seedlings. After drought stress, transgenic tobacco exhibited an average survival rate of 70.30%, while most wild-type (WT) plants perished, resulting in a survival rate of only 15.33%. Following salt stress, the average survival rate for transgenic tobacco reached 77.24%, compared to just 22.47% for WT plants. Measurements indicated, that transgenic tobacco had higher proline content than WT, as well as higher superoxide dismutase (SOD), peroxidase (POD), and catalase (CAT) activity. Transgenic tobacco decreased chlorophyll content less dramatically than WT tobacco, despite both tobaccos having decreased chlorophyll content. Furthermore, the level of malondialdehyde (MDA) and relative conductivity were lower in transgenic tobacco compared to WT. Furthermore, LcMYB5 overexpression significantly increased the expression levels of key genes related to drought stress (NCED1, NCED2, PYL4, PYL8, and CBL1) and salt stress (NHX1, SOD, CAT1, SOS1, and HSP17.8), thus improving transgenic tobacco's stress tolerance. Compared to WT blue honeysuckle, transiently transformed LcMYB5-expressing blue honeysuckle exhibited milder damage under stress conditions, a significant increase in chlorophyll and proline content was observed, the activities of SOD, POD and CAT were also significantly increased, the increase in MDA content and relative conductivity is relatively small. Additionally, In addition, transient expression of LcMYB5 can also positively regulate the expression of these five key genes of drought stress and five key genes of salt stress, so as to improve the resistance of transgenic blue honeysuckle to drought and salt stress. In summary, our study reveals the important regulatory role of LcMYB5 in plant resistance to drought and salt stress, providing theoretical support and potential application value for further improving crop stress resistance.
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LcMYB5是金银花R2R3-MYB家族基因,该基因增强了转基因烟草和蓝金银花的耐旱性和耐盐性。
MYB转录因子在提高植物对土壤干旱和盐胁迫的耐受性方面发挥着重要作用。本研究成功克隆鉴定了蓝忍冬(Lonicera caerulea L.) r2r3型MYB转录因子基因LcMYB5,并确定了其核定位。LcMYB5过表达显著增强了蓝金银花和烟草幼苗的耐旱性和耐盐性。干旱胁迫后,转基因烟草的平均成活率为70.30%,而野生型(WT)植株大多死亡,成活率仅为15.33%。盐胁迫后,转基因烟草的平均成活率达到77.24%,而WT烟草的平均成活率仅为22.47%。结果表明,转基因烟草脯氨酸含量高于野生型烟草,其超氧化物歧化酶(SOD)、过氧化物酶(POD)和过氧化氢酶(CAT)活性也高于野生型烟草。转基因烟草对叶绿素含量的降低不如WT烟草显著,尽管两种烟草的叶绿素含量都有所降低。此外,LcMYB5过表达显著提高了干旱胁迫关键基因(NCED1、NCED2、PYL4、PYL8和CBL1)和盐胁迫关键基因(NHX1、SOD、CAT1、SOS1和HSP17.8)的表达水平,从而提高了转基因烟草的抗逆性。与WT蓝金银花相比,瞬时转化表达lcmyb5的蓝金银花在胁迫条件下受到的伤害较轻,叶绿素和脯氨酸含量显著增加,SOD、POD和CAT活性也显著增加,MDA含量和相对电导率的增加较小。此外,LcMYB5的瞬时表达还可以正向调节这5个干旱胁迫关键基因和5个盐胁迫关键基因的表达,从而提高转基因蓝金银花对干旱和盐胁迫的抗性。综上所述,本研究揭示了LcMYB5在植物抗旱性和盐胁迫中的重要调控作用,为进一步提高作物抗旱性提供了理论支持和潜在的应用价值。
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来源期刊
Journal of plant physiology
Journal of plant physiology 生物-植物科学
CiteScore
7.20
自引率
4.70%
发文量
196
审稿时长
32 days
期刊介绍: The Journal of Plant Physiology is a broad-spectrum journal that welcomes high-quality submissions in all major areas of plant physiology, including plant biochemistry, functional biotechnology, computational and synthetic plant biology, growth and development, photosynthesis and respiration, transport and translocation, plant-microbe interactions, biotic and abiotic stress. Studies are welcome at all levels of integration ranging from molecules and cells to organisms and their environments and are expected to use state-of-the-art methodologies. Pure gene expression studies are not within the focus of our journal. To be considered for publication, papers must significantly contribute to the mechanistic understanding of physiological processes, and not be merely descriptive, or confirmatory of previous results. We encourage the submission of papers that explore the physiology of non-model as well as accepted model species and those that bridge basic and applied research. For instance, studies on agricultural plants that show new physiological mechanisms to improve agricultural efficiency are welcome. Studies performed under uncontrolled situations (e.g. field conditions) not providing mechanistic insight will not be considered for publication. The Journal of Plant Physiology publishes several types of articles: Original Research Articles, Reviews, Perspectives Articles, and Short Communications. Reviews and Perspectives will be solicited by the Editors; unsolicited reviews are also welcome but only from authors with a strong track record in the field of the review. Original research papers comprise the majority of published contributions.
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