PIP2, An Auxin Induced Plant Peptide Hormone Regulates Root and Hypocotyl Elongation in Arabidopsis

被引:10
|
作者
Hussain, Saddam [1 ,2 ]
Wang, Wei [2 ]
Ahmed, Sajjad [2 ]
Wang, Xutong [2 ]
Adnan [2 ]
Cheng, Yuxin [2 ]
Wang, Chen [2 ]
Wang, Yating [2 ]
Zhang, Na [2 ]
Tian, Hainan [2 ]
Chen, Siyu [2 ]
Hu, Xiaojun [1 ]
Wang, Tianya [2 ]
Wang, Shucai [1 ,2 ]
机构
[1] Linyi Univ, Sch Life Sci, Lab Plant Mol Genet & Crop Gene Editing, Linyi, Shandong, Peoples R China
[2] Northeast Normal Univ, Key Lab Mol Epigenet MOE, Changchun, Peoples R China
来源
基金
中国国家自然科学基金; 国家重点研发计划;
关键词
auxin; peptide hormone; PIP2; PIP3; root elongation; Arabidopsis; HETEROTRIMERIC G-PROTEIN; FLORAL ORGAN ABSCISSION; LATERAL ROOT; GENE-EXPRESSION; CLE PEPTIDES; INFLORESCENCE-DEFICIENT; CELL-PROLIFERATION; AUX/IAA PROTEINS; LEAF SENESCENCE; GROWTH;
D O I
10.3389/fpls.2021.646736
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Auxin is one of the traditional plant hormones, whereas peptide hormones are peptides with hormone activities. Both auxin and plant peptide hormones regulate multiple aspects of plant growth and development, and there are cross-talks between auxin and plant peptide hormones. PAMP-INDUCED SECRETED PEPTIDES (PIPs) and PIP-LIKEs (PIPLs) are a new family of plant peptide hormone, and PIPL3/TARGET OF LBD SIXTEEN 2 (TOLS2) has been shown to regulate lateral root formation in Arabidopsis. We report here the identification of PIP2 as an auxin response gene, and we found it plays a role in regulating root and hypocotyl development in Arabidopsis. By using quantitative RT-PCR, we found that the expression of PIP2 but not PIP1 and PIP3 was induced by auxin, and auxin induced expression of PIP2 was reduced in nph4-1 and arf19-4, the lost-of-function mutants of Auxin Response Factor 7 (ARF7) and ARF19, respectively. By generating and characterizing overexpressing transgenic lines and gene edited mutants for PIP2, we found that root length in the PIP2 overexpression plant seedlings was slightly shorter when compared with that in the Col wild type plants, but root length of the pip2 mutant seedlings remained largely unchanged. For comparison, we also generated overexpressing transgenic lines and gene edited mutants for PIP3, as well as pip2 pip3 double mutants. Surprisingly, we found that root length in the PIP3 overexpression plant seedlings is shorter than that of the PIP2 overexpression plant seedlings, and the pip3 mutant seedlings also produced short roots. However, root length in the pip2 pip3 double mutant seedlings is largely similar to that in the pip3 single mutant seedlings. On the other hand, hypocotyl elongation assays indicate that only the 35S:PIP2 transgenic plant seedlings produced longer hypocotyls when compared with the Col wild type seedlings. Further analysis indicates that PIP2 promotes cell division as well as cell elongation in hypocotyls. Taken together, our results suggest that PIP2 is an auxin response gene, and PIP2 plays a role in regulating root and hypocotyl elongation in Arabidopsis likely via regulating cell division and cell elongation.
引用
收藏
页数:12
相关论文
共 50 条
  • [11] Aluminium-induced inhibition of root elongation in Arabidopsis is mediated by ethylene and auxin
    Sun, Pei
    Tian, Qiu-Ying
    Chen, Jie
    Zhang, Wen-Hao
    JOURNAL OF EXPERIMENTAL BOTANY, 2010, 61 (02) : 347 - 356
  • [12] The SCOOP12 peptide regulates defense response and root elongation in Arabidopsis thaliana
    Gully, Kay
    Pelletier, Sandra
    Guillou, Marie-Charlotte
    Ferrand, Marina
    Aligon, Sophie
    Pokotylo, Igor
    Perrin, Adrien
    Vergne, Emilie
    Fagard, Mathilde
    Ruelland, Eric
    Grappin, Philippe
    Bucher, Etienne
    Renou, Jean-Pierre
    Aubourg, Sebastien
    JOURNAL OF EXPERIMENTAL BOTANY, 2019, 70 (04) : 1349 - 1365
  • [13] The compound NMA regulates root and hypocotyl development in Arabidopsis thaliana via crosstalk between the auxin and ethylene signalling pathways
    Xue, Shuqi
    Li, Chuning
    Zhang, Sufen
    Xu, Fengyang
    Qi, Xiaoting
    Zhao, Xin
    PLANT GROWTH REGULATION, 2024, 104 (02) : 1169 - 1182
  • [14] The POLARIS peptide of Arabidopsis regulates auxin transport and root growth via effects on ethylene signaling
    Chilley, Paul M.
    Casson, Stuart A.
    Tarkowski, Petr
    Hawkins, Nathan
    Wang, Kevin L. -C.
    Hussey, Patrick J.
    Beale, Mike
    Ecker, Joseph R.
    Sandberg, Goran K.
    Lindsey, Keith
    PLANT CELL, 2006, 18 (11): : 3058 - 3072
  • [15] Disruption and overexpression of auxin response factor 8 gene of Arabidopsis affect hypocotyl elongation and root growth habit, indicating its possible involvement in auxin homeostasis in light condition
    Tian, C
    Muto, H
    Higuchi, K
    Matamura, T
    Tatematsu, K
    Koshiba, T
    Yamamoto, KT
    PLANT JOURNAL, 2004, 40 (03): : 333 - 343
  • [16] Binding-induced lipid domains: Peptide-membrane interactions with PIP2 and PS
    Chen, Xiaobing
    Al-Mualem, Ziareena
    Shafieenezhad, Azam
    Senning, Eric N.
    Baiz, Carlos R.
    BIOPHYSICAL JOURNAL, 2024, 123 (03) : 155A - 156A
  • [17] PHYTOCHROME INTERACTING FACTOR 4 regulates microtubule organization to mediate high temperature-induced hypocotyl elongation in Arabidopsis
    Zhou, Dingding
    Wang, Xiaohong
    Wang, Xiangfeng
    Mao, Tonglin
    PLANT CELL, 2023, 35 (06): : 2044 - 2061
  • [18] Overexpression of PIP2;5 Aquaporin Alleviates Effects of Low Root Temperature on Cell Hydraulic Conductivity and Growth in Arabidopsis
    Lee, Seong Hee
    Chung, Gap Chae
    Jang, Ji Young
    Ahn, Sung Ju
    Zwiazek, Janusz J.
    PLANT PHYSIOLOGY, 2012, 159 (01) : 479 - 488
  • [19] A network comprising ELONGATED HYPOCOTYL 5, microRNA397b, and auxin-associated factors regulates root hair growth in Arabidopsis
    Gaddam, Subhash Reddy
    Sharma, Ashish
    Bhatia, Chitra
    Trivedi, Prabodh Kumar
    PLANT PHYSIOLOGY, 2024, 196 (02) : 1460 - 1474
  • [20] Enhancement of hypocotyl elongation by LOV KELCH PROTEIN2 production is mediated by auxin and phytochrome-interacting factors in Arabidopsis thaliana
    Yuji Miyazaki
    Yusuke Jikumaru
    Tomoyuki Takase
    Aya Saitoh
    Asuka Sugitani
    Yuji Kamiya
    Tomohiro Kiyosue
    Plant Cell Reports, 2016, 35 : 455 - 467