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  • Chen, Keqin  (3)
  • Liu, Lifu  (3)
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  • 1
    In: Plant Biotechnology Journal, Wiley, Vol. 17, No. 12 ( 2019-12), p. 2341-2355
    Abstract: To expand the cultivation area of apple ( Malus×domestica Borkh.) and select resistant varieties by genetic engineering, it is necessary to clarify the mechanism of salt and osmotic stress tolerance in apple. The Md MYB 46 transcription factor was identified, and the stress treatment test of Md MYB 46 ‐overexpressing and Md MYB 46 ‐ RNA i apple lines indicated that Md MYB 46 could enhance the salt and osmotic stress tolerance in apple. In transgenic Arabidopsis and apple, Md MYB 46 promoted the biosynthesis of secondary cell wall and deposition of lignin by directly binding to the promoter of lignin biosynthesis‐related genes. To explore whether Md MYB 46 could coordinate stress signal transduction pathways to cooperate with the formation of secondary walls to enhance the stress tolerance of plants, Md ABRE 1A , Md DREB 2A and dehydration‐responsive genes Md RD 22 and Md RD 29A were screened out for their positive correlation with osmotic stress, salt stress and the transcriptional level of Md MYB 46 . The further verification test demonstrated that Md MYB 46 could activate their transcription by directly binding to the promoters of these genes. The above results indicate that Md MYB 46 could enhance the salt and osmotic stress tolerance in apple not only by activating secondary cell wall biosynthesis pathways, but also by directly activating stress‐responsive signals.
    Type of Medium: Online Resource
    ISSN: 1467-7644 , 1467-7652
    URL: Issue
    Language: English
    Publisher: Wiley
    Publication Date: 2019
    detail.hit.zdb_id: 2136367-5
    SSG: 12
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  • 2
    In: Horticulture Research, Oxford University Press (OUP), Vol. 7, No. 1 ( 2020-12)
    Abstract: Clarifying the stress signal transduction pathway would be helpful for understanding the abiotic stress resistance mechanism in apple ( Malus  ×  domestica Borkh.) and could assist in the development of new varieties with high stress tolerance by genetic engineering. The key NAC transcription factor SND1, which is involved in the lignin biosynthesis process in apple, was functionally analyzed. The results of the stress treatments indicated that MdSND1 could be induced by salt, mannitol and ABA. Compared with wild-type GL-3 plants, MdSND1 -overexpressing apple plants with greater antioxidant capacity and lignin were more resistant to salt and simulated osmotic stress, while RNAi plants were more vulnerable. Additionally, molecular experiments confirmed that MdSND1 could regulate the biosynthesis of lignin by activating the transcription of MdMYB46/83. Moreover, genes known to be involved in the stress signal transduction pathway ( MdAREB1A , MdAREB1B , MdDREB2A , MdRD29A , and MdRD22 ) were screened for their close correlations with the expression of MdSND1 and the response to salt and osmotic stress. Multiple verification tests further demonstrated that MdSND1 could directly bind to these gene promoters and activate their transcription. The above results revealed that MdSND1 is directly involved in the regulation of lignin biosynthesis and the signal transduction pathway involved in the response to both salt and osmotic stress in apple.
    Type of Medium: Online Resource
    ISSN: 2662-6810 , 2052-7276
    Language: English
    Publisher: Oxford University Press (OUP)
    Publication Date: 2020
    detail.hit.zdb_id: 2781828-7
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  • 3
    Online Resource
    Online Resource
    Maximum Academic Press ; 2021
    In:  Fruit Research Vol. 1, No. 1 ( 2021), p. 1-10
    In: Fruit Research, Maximum Academic Press, Vol. 1, No. 1 ( 2021), p. 1-10
    Type of Medium: Online Resource
    ISSN: 2769-4615
    Language: Unknown
    Publisher: Maximum Academic Press
    Publication Date: 2021
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