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去除C4结构域可保留由CsMYB4a增强的耐旱性,并消除该转录因子对植物生长的负面影响。

Removal of the C4-domain preserves the drought tolerance enhanced by CsMYB4a and eliminates the negative impact of this transcription factor on plant growth.

作者信息

Li Mingzhuo, Ma Guoliang, Li Xiu, Guo Lili, Li Yanzhi, Liu Yajun, Wang Wenzhao, Jiang Xiaolan, Xie De-Yu, Gao Liping, Xia Tao

机构信息

State Key Laboratory of Tea Plant Biochemistry and Utilization, Anhui Agricultural University, Hefei, 230036 China.

Department of Plant and Microbial Biology, North Carolina State University, Raleigh, NC USA.

出版信息

aBIOTECH. 2024 Mar 28;5(3):368-374. doi: 10.1007/s42994-024-00149-5. eCollection 2024 Sep.

Abstract

UNLABELLED

The MYB4 transcription factor family regulates plant traits. However, their overexpression often results in undesirable side effects like growth reduction. We have reported a green tea () MYB4 transcription factor (CsMYB4) that represses the phenylpropanoid and shikimate pathways and stunts plant growth and development. In the current study, we observed that in transgenic tobacco () plants, primary metabolism was altered, including sugar and amino acid metabolism, which demonstrated a pleiotropic regulation by CsMYB4a. The transgenic tobacco plants had improved drought tolerance, which correlated to alterations in carbohydrate metabolism and an increase in proline content, as revealed by metabolic profiling and transcriptomic analysis. To mitigate the undesirable repressive side effects on plant traits, including dwarfism, shrunken leaves, and shorter roots of transgenic plants, we deleted the C4 domain of CsMYB4a to obtain a CsMYB4a-DC4 variant and then overexpressed it in transgenic plants (CsMYB4a-DC4). These CsMYB4a-DC4 plants displayed a normal growth and had improved drought tolerance. Metabolite analysis demonstrated that the contents of carbohydrates and proline were increased in these transgenic plants. Our findings suggest that  an approriate modification of TFs can generate novel crop traits, thus providing potential agricultural benefits and expanding its application to various crops.

SUPPLEMENTARY INFORMATION

The online version contains supplementary material available at 10.1007/s42994-024-00149-5.

摘要

未标记

MYB4转录因子家族调控植物性状。然而,它们的过表达往往会导致如生长受抑制等不良副作用。我们报道了一种绿茶()MYB4转录因子(CsMYB4),它抑制苯丙烷类和莽草酸途径,并阻碍植物生长发育。在当前研究中,我们观察到在转基因烟草()植株中,初级代谢发生了改变,包括糖和氨基酸代谢,这表明CsMYB4a具有多效性调控作用。代谢谱分析和转录组分析显示,转基因烟草植株的耐旱性得到了提高,这与碳水化合物代谢的改变和脯氨酸含量的增加有关。为了减轻对植物性状的不良抑制副作用,包括转基因植株的矮化、叶片皱缩和根较短等,我们删除了CsMYB4a的C4结构域以获得CsMYB4a-DC4变体,然后在转基因植株(CsMYB4a-DC4)中过表达它。这些CsMYB4a-DC4植株生长正常,耐旱性得到了提高。代谢物分析表明,这些转基因植株中碳水化合物和脯氨酸的含量增加。我们的研究结果表明,对转录因子进行适当修饰可以产生新的作物性状,从而提供潜在的农业效益,并扩大其在各种作物上的应用。

补充信息

在线版本包含可在10.1007/s42994-024-00149-5获取的补充材料。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c5bb/11399494/f2e48f7b1551/42994_2024_149_Fig1_HTML.jpg

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