Literature DB >> 33664760

MdTyDc Overexpression Improves Alkalinity Tolerance in Malus domestica.

Xiaomin Liu1, Yibo Jin1, Kexin Tan1, Jiangzhu Zheng1, Tengteng Gao1, Zhijun Zhang1, Yongjuan Zhao1, Fengwang Ma1, Chao Li1.   

Abstract

Tyrosine is decarboxylated to tyramine by TYDC (Tyrosine decarboxylase) and then hydroxylated to dopamine, which is involved in plant response to abiotic stress. However, little is known about the function of MdTyDc in response to alkaline stress in plants. In our study, it was found that the expression of MdTyDc was induced by alkaline stress. Therefore, the apple plants overexpressing MdTyDc was treated with alkali stress, and we found that MdTyDc played an important role in apple plants' resistance to alkali stress. Our results showed that the restriction on the growth, the decrease of membrane permeability and the accumulation of Na+ were alleviated to various degrees in MdTyDc transgenic plants under alkali stress. In addition, overexpression of MdTyDc enhanced the root activity and photosynthetic capacity, and improved the enzyme activity related to N metabolism, thus promoting N absorption. It is noteworthy that the dopamine content of these three transgenic lines is significantly higher than that of WT. In summary, these findings indicated that MdTyDc may enhance alkaline tolerance of apples by mediating dopamine content, mainly by maintaining high photosynthetic capacity, normal ion homeostasis and strong nitrogen absorption capacity.
Copyright © 2021 Liu, Jin, Tan, Zheng, Gao, Zhang, Zhao, Ma and Li.

Entities:  

Keywords:  MdTyDc; N metabolism; alkaline stress; dopamine; ion homeostasis

Year:  2021        PMID: 33664760      PMCID: PMC7921794          DOI: 10.3389/fpls.2021.625890

Source DB:  PubMed          Journal:  Front Plant Sci        ISSN: 1664-462X            Impact factor:   5.753


  52 in total

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1.  Functional characterization of tyrosine decarboxylase genes that contribute to acteoside biosynthesis in Rehmannia glutinosa.

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2.  Heterologous Expression of the Melatonin-Related Gene HIOMT Improves Salt Tolerance in Malus domestica.

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