Functional Analysis of Abscisic Acid-Stress Ripening Transcription Factor in Prunus persica f. atropurpurea

被引:3
作者
Wei Jiaxing [1 ]
Hu Feng [1 ]
Jiang Weibing [1 ]
Chen Haoming [1 ]
机构
[1] Nanjing Agr Univ, Coll Resources & Environm Sci, Nanjing 210095, Jiangsu, Peoples R China
关键词
Peach leaf; ASR; Stress; Gene function; Transgenic tobacco; Tomato; ASR GENE FAMILY; WATER-DEFICIT; CONFERS DROUGHT; REGULATED GENE; SALT STRESS; DNA-BINDING; CROSS-TALK; EXPRESSION; TOLERANCE; PROTEIN;
D O I
10.1007/s00344-017-9695-5
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Red-leaf peach (Prunus persica f. atropurpurea) is an important subtropical fruit crop, and an ideal species for leave color quality research because of the substantial changes that occur during development. It experiences lots of stresses during growth. To understand the mechanism of plant anti-stress, ASR [abscisic acid (ABA), stress, ripening-induced] genes, which are unique to plants, were induced under the application of ABA, stress, and ripening. In this study, we showed that in peach leaves stress could induce antioxidant enzyme activity and anthocyanin production, as well as biosynthesis gene expression, but decrease chlorophyll content. One ASR isoform identified from peach contained ABA stress- and ripening-induced proteins and a water-deficit stress-induced protein (ABA/WDS) domain, and had a high genetic relationship with other species of ASRs. ASR transcript levels were increased under abiotic and biotic stresses, and were also induced by sucrose and ABA. ASR bound the promoter of the hexose transporter, which contained four sugar boxes induced by sucrose that activated downstream gene expression. Overexpression of the PpASR gene conferred tolerance to stresses in tobacco. Transient expression of PpASR in tomato promoted fruit softening and ripening. Taken together, this study provides new evidence on the important role of ASR in cross-signaling between ABA and sucrose to regulate peach anti-stress. The findings of this study also provide new insights into the regulatory mechanism underlying fruit development.
引用
收藏
页码:85 / 100
页数:16
相关论文
共 50 条
[31]   Isolation, Characterization, and Expression Analysis of NAC Transcription Factor from Andrographis paniculata (Burm. f.) Nees and Their Role in Andrographolide Production [J].
Kumar, Ramesh ;
Kumar, Chavlesh ;
Choudhury, Debjani Roy ;
Ranjan, Aashish ;
Raipuria, Ritesh Kumar ;
Dubey, Kaushik Kumar Dhar ;
Mishra, Ayushi ;
Kumar, Chetan ;
Manzoor, Malik Muzafar ;
Kumar, Ashok ;
Kumari, Abha ;
Singh, Kuldeep ;
Singh, Gyanendra Pratap ;
Singh, Rakesh .
GENES, 2024, 15 (04)
[32]   Functional Analysis of Zinc Finger Protein Transcription Factor ZmZFP69 Under Low-Temperature Stress at Maize Seedling Stage [J].
Li, Si-Nan ;
Sun, Yan ;
Li, Yun-Long ;
Sun, Ming-Hao ;
Li, Shu-Jun ;
Yin, Yue ;
Yu, Tao ;
Li, Xin ;
Cai, Quan ;
Zhang, Jian-Guo .
PLANTS-BASEL, 2025, 14 (14)
[33]   Functional analysis of CsCBF3 transcription factor in tea plant (Camellia sinensis) under cold stress [J].
Ying Yin ;
Qing-ping Ma ;
Zi-xuan Zhu ;
Qiao-yun Cui ;
Chang-song Chen ;
Xuan Chen ;
Wan-ping Fang ;
Xing-hui Li .
Plant Growth Regulation, 2016, 80 :335-343
[34]   Functional analysis of CsCBF3 transcription factor in tea plant (Camellia sinensis) under cold stress [J].
Yin, Ying ;
Ma, Qing-ping ;
Zhu, Zi-xuan ;
Cui, Qiao-yun ;
Chen, Chang-song ;
Chen, Xuan ;
Fang, Wan-ping ;
Li, Xing-hui .
PLANT GROWTH REGULATION, 2016, 80 (03) :335-343
[35]   Genome-Wide Identification of NAC Transcription Factor Family and Functional Analysis of the Abiotic Stress-Responsive Genes in Medicago sativa L. [J].
Min, Xueyang ;
Jin, Xiaoyu ;
Zhang, Zhengshe ;
Wei, Xingyi ;
Ndayambaza, Boniface ;
Wang, Yanrong ;
Liu, Wenxian .
JOURNAL OF PLANT GROWTH REGULATION, 2020, 39 (01) :324-337
[36]   A putative functional MYB transcription factor induced by low temperature regulates anthocyanin biosynthesis in purple kale (Brassica Oleracea var. acephala f. tricolor) [J].
Zhang, Bin ;
Hu, Zongli ;
Zhang, Yanjie ;
Li, Yali ;
Zhou, Shuang ;
Chen, Guoping .
PLANT CELL REPORTS, 2012, 31 (02) :281-289
[37]   The CONSTANS-like 4 transcription factor, AtCOL4, positively regulates abiotic stress tolerance through an abscisic acid-dependent manner in Arabidopsis [J].
Min, Ji-Hee ;
Chung, Jung-Sung ;
Lee, Kyeong-Hwan ;
Kim, Cheol Soo .
JOURNAL OF INTEGRATIVE PLANT BIOLOGY, 2015, 57 (03) :313-324
[38]   Identification, characterization and functional analysis of grape (Vitis vinifera L.) mitochondrial transcription termination factor (mTERF) genes in responding to biotic stress and exogenous phytohormone [J].
Yin, Xiangjing ;
Gao, Yu ;
Song, Shiren ;
Hassani, Danial ;
Lu, Jiang .
BMC GENOMICS, 2021, 22 (01)
[39]   Functional analysis of AHK1/ATHK1 and cytokinin receptor histidine kinases in response to abscisic acid, drought, and salt stress in Arabidopsis [J].
Tran, Lam-Son Phan ;
Urao, Takeshi ;
Qin, Feng ;
Maruyama, Kyonoshin ;
Kakimoto, Tatsuo ;
Shinozaki, Kazuo ;
Yamaguchi-Shinozaki, Kazuko .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2007, 104 (51) :20623-20628
[40]   Foatf1, a bZIP transcription factor of Fusarium oxysporum f. sp cubense, is involved in pathogenesis by regulating the oxidative stress responses of Cavendish banana (Musa spp.) [J].
Qi, Xingzhu ;
Guo, Lijia ;
Yang, Laying ;
Huang, Junsheng .
PHYSIOLOGICAL AND MOLECULAR PLANT PATHOLOGY, 2013, 84 :76-85