数字农科院2.0

Endodermal apoplastic barriers are linked to osmotic tolerance in meso-xerophytic grass Elymus sibiricus

文献类型: 外文期刊

作者: Liu, Xin;Wang, Ping;An, Yongping;Wang, Chun-Mei;Hao, Yanbo;Zhou, Yue;Zhou, Qingping;Wang, Pei

作者机构:

关键词: casparian strip;drought tolerance;Elymus sibiricus;endodermis;suberin

期刊名称: FRONTIERS IN PLANT SCIENCE

ISSN: 1664-462X

年卷期: 2022 年 13.0 卷

页码:

收录情况: SCIE(2022版)

摘要: Drought is the most serious adversity faced by agriculture and animal husbandry industries. One strategy that plants use to adapt to water deficits is modifying the root growth and architecture. Root endodermis has cell walls reinforced with apoplastic barriers formed by the Casparian strip (CS) and suberin lamellae (SL) deposits, regulates radial nutrient transport and protects the vascular cylinder from abiotic threats. Elymus sibiricus is an economically important meso-xerophytic forage grass, characterized by high nutritional quality and strong environmental adaptability. The purpose of this study was to evaluate the drought tolerance of E. sibiricus genotypes and investigate the root structural adaptation mechanism of drought-tolerant genotypes' responding to drought. Specifically, a drought tolerant (DT) and drought sensitive (DS) genotype were screened out from 52 E. sibiricus genotypes. DT showed less apoplastic bypass flow of water and solutes than DS under control conditions, as determined with a hydraulic conductivity measurement system and an apoplastic fluorescent tracer, specifically PTS trisodium-8-hydroxy-1,3,6-pyrenetrisulphonic acid (PTS). In addition, DT accumulated less Na, Mg, Mn, and Zn and more Ni, Cu, and Al than DS, regardless of osmotic stress. Further study showed more suberin deposition in DT than in DS, which could be induced by osmotic stress in both. Accordingly, the CS and SL were deposited closer to the root tip in DT than in DS. However, osmotic stress induced their deposition closer to the root tips in DS, while likely increasing the thickness of the CS and SL in DT. The stronger and earlier formation of endodermal barriers may determine the radial transport pathways of water and solutes, and contribute to balance growth and drought response in E. sibiricus. These results could help us better understand how altered endodermal apoplastic barriers in roots regulate water and mineral nutrient transport in plants that have adapted to drought environments. Moreover, the current findings will aid in improving future breeding programs to develop drought-tolerant grass or crop cultivars.

分类号:

  • 相关文献

[1]Root endodermal suberization induced by nitrate stress regulate apoplastic pathway rather than nitrate uptake in tobacco (Nicotiana tabacum L.). Biao Zhang,Yunxiang Xu,Liwen Zhang,Shunyang Yu,Yingying Zhu,Chunju Liu,Peng Wang,Yi Shi,Lianzhen Li,Haiwei Liu. 2024

[2]Plant Growth-Promoting Rhizobacteria Isolated From Natural Habitats Promote the Growth of Elymus sibiricus and Enhance Its Resistance to Abiotic Stress. Liang, Ruiqi,Zhong, Li,Huang, Zeyao,Wang, Weixia,Lu, Guangxin,Zhu, Tingheng. 2025

[3]Nitrogen supply affects ion homeostasis by modifying root Casparian strip formation through the miR528-LAC3 module in maize. Guo, Yu,Wang, Yafei,Chen, Huan,Du, Qingguo,Wang, Zhonghua,Gong, Xiaoping,Sun, Qing,Li, Wen-Xue. 2023

[4]Genome-Wide Identification of the CIF Gene Family and Protein Interaction with GSO1s Under the p-HBA-Induced Continuous Cropping Obstacle in Pogostemon cablin. Jieyun Fang,Siru Liu,Yating Su,Muhammad Zeeshan Ul Haq,Yougen Wu,Ya Liu,Xiuxia Ren. 2025

[5]Trichoderma-secreted anthranilic acid promotes lateral root development via auxin signaling and RBOHF-induced endodermal cell wall remodeling. Yu Chen,Yansong Fu,Yanwei Xia,Youzhi Miao,Jiahui Shao,Wei Xuan,Yunpeng Liu,Weibing Xun,Qiuyan Yan,Qirong Shen,Ruifu Zhang. 2024

[6]Identification and Characterization of ABCG15—A Gene Required for Exocarp Color Differentiation in Pear. Simeng Zhang,Jiayu Xu,Ying Zhang,Yufen Cao. 2023

[7]Identification and Characterization of ABCG15-A Gene Required for Exocarp Color Differentiation in Pear. Zhang, Simeng,Xu, Jiayu,Zhang, Ying,Cao, Yufen. 2023

[8]Regulation by distinct MYB transcription factors defines the roles of OsCYP86A9 in anther development and root suberin deposition. Huang, Xiaoyan,Li, Yiqi,Chang, Zhenyi,Yan, Wei,Xu, Chunjue,Zhang, Baolei,He, Zhaohuan,Wang, Changjian,Zheng, Minting,Li, Zhiai,Xia, Jixing,Li, Guoliang,Tang, Xiaoyan,Wu, Jianxin. 2024

[9]Genome-wide identification of the cotton FAR gene family reveals GhFAR3 as a positive regulator of Verticillium dahliae resistance. Cheng, Wenhan,Gao, Siqi,He, Zhaojie,Aini, Nurimanguli,Zhao, Zengqiang,Xiong, Xianpeng,Wang, Ning,Chen, Rui,Feng, Keyun. 2025

[10]The Ability To Regulate Transmembrane P.otassium Transport In Root I s Critical For Drought Tolerance In Barley. Zhang, Shuo,Cai, Kangfeng,Wu, Xiaojian,Gao, Huaizhou,Zeng, Fanrong,Han, Zhigang,Zhang, Guoping,Chen, Xiaohui. 2019

[11]Osnar2.1 Positively Regulates Drought Tolerance A.nd Grain Yield Under D rought Stress Conditions In Rice. Fan, Xiaorong,Yin, Xiaoming,Chen, Jingguang,Fan, Xiaoru,Hu, Zhi,Qi, Tiantian,Xu, Guohua,Iqbal, Muhammad Faseeh,Zhu, Longlong,Chen, Jingguang. 2019

[12]Expressing TERF1 in tobacco enhances drought tolerance and abscisic acid sensitivity during seedling development. Zhang, XL,Zhang, ZJ,Chen, J,Chen, Q,Wang, XC,Huang, RF. 2005

[13]Genetic Dissection And Simultaneous Improvement O.f Drought And Low N itrogen Tolerances By Designed Qtl Pyramiding In Rice. Wang, Bingbing,Ali, Jauhar,Xu, Jianlong,Zheng, Tianqing,Zhang, Wenzhong,Xu, Jianlong,Li, Zhikang,Chen, Kai,Cui, Yanru,Li, Zhikang,Zhu, Yajun,Wu, Zhichao,Feng, Bo,Feng, Bo. 2018

[14]QTLs affecting morph-physiological traits related to drought tolerance detected in overlapping introgression lines of rice (Oryza sativa L.). Zhao, Xiu-Qin,Xu, Jian-Long,Zhao, Ming,Zhu, Ling-Hua,Fu, Bin-Ying,Gao, Yong-Ming,Li, Zhi-Kang,Zhao, Xiu-Qin,Xu, Jian-Long,Lafitte, Renee,Fu, Bin-Ying,Gao, Yong-Ming,Li, Zhi-Kang. 2008

[15]An analysis of the polymorphisms in a gene for being involved in drought tolerance in maize. Li, Liang,Hao, Zhuanfang,Li, Xinhai,Xie, Chuanxiao,Li, Mingshun,Zhang, Degui,Weng, Jianfeng,Su, Zhijun,Zhang, Shihuang,Liang, Xiaoling. 2011

[16]GmDREB2, a soybean DRE-binding transcription factor, conferred drought and high-salt tolerance in transgenic plants. Chen, Ming,Wang, Qiao-Yan,Cheng, Xian-Guo,Xu, Zhao-Shi,Li, an-Cheng Li,Ye, Xing-Guo,Xia, Lan-Qin,Ma, You-Zhi. 2007

[17]Identification of drought-responsive genes by cDNA-amplified fragment length polymorphism in maize. Liu, L.,Hao, Z.,Weng, J.,Li, M.,Zhang, D.,Bai, L.,Li, X.,Zhang, S.,Liu, L.,Wang, L.. 2012

[18]Transcriptional Profiles of Drought-Related Genes in Modulating Metabolic Processes and Antioxidant Defenses in Lolium multiflorum. Pan, Ling,Zhang, Xinquan,Ma, Xiao,Huang, LinKai,Nie, Gang,Wang, Pengxi,Yang, Zhongfu,Li, Ji,Wang, Jianping,Zhou, Meiliang. 2016

[19]Genetic dissection of seminal root architecture in elite durum wheat germplasm. Sanguineti, M. C.,Li, S.,Maccaferri, M.,Corneti, S.,Rotondo, F.,Chiari, T.,Tuberosa, R.. 2007

[20]Comparative transcriptome sequencing of tolerant rice introgression line and its parents in response to drought stress. Huang, Liyu,Zhang, Fan,Zhang, Fan,Wang, Wensheng,Zhou, Yongli,Fu, Binying,Li, Zhikang,Zhang, Fan. 2014

作者其他论文 更多>>