Impact of Nanomaterials on the Regulation of Gene Expression and Metabolomics of Plants under Salt Stress

被引:35
作者
Abideen, Zainul [1 ]
Hanif, Maria [2 ]
Munir, Neelma [2 ]
Nielsen, Brent L. [3 ]
机构
[1] Univ Karachi, Dr Muhammad Ajmal Khan Inst Sustainable Halophyte, Karachi 75270, Pakistan
[2] Lahore Coll Women Univ, Dept Biotechnol, Lahore 54000, Pakistan
[3] Brigham Young Univ, Dept Microbiol & Mol Biol, Provo, UT 84602 USA
来源
PLANTS-BASEL | 2022年 / 11卷 / 05期
关键词
salinity; ecophysiology; environment; salt tolerance; photosynthesis; NA+/H+ ANTIPORTER GENE; BETAINE ALDEHYDE DEHYDROGENASE; AELUROPUS-LITTORALIS DIRECTS; IRON-OXIDE NANOPARTICLES; SALINITY STRESS; ABIOTIC STRESS; TRANSGENIC TOBACCO; CONFERS SALT; ARABIDOPSIS-THALIANA; SALICORNIA-BRACHIATA;
D O I
10.3390/plants11050691
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Plant salinity resistance results from a combination of responses at the physiological, molecular, cellular, and metabolic levels. This article focuses on plant stress tolerance mechanisms for controlling ion homeostasis, stress signaling, hormone metabolism, anti-oxidative enzymes, and osmotic balance after nanoparticle applications. Nanoparticles are used as an emerging tool to stimulate specific biochemical reactions related to plant ecophysiological output because of their small size, increased surface area and absorption rate, efficient catalysis of reactions, and adequate reactive sites. Regulated ecophysiological control in saline environments could play a crucial role in plant growth promotion and survival of plants under suboptimal conditions. Plant biologists are seeking to develop a broad profile of genes and proteins that contribute to plant salt resistance. These plant metabolic profiles can be developed due to advancements in genomic, proteomic, metabolomic, and transcriptomic techniques. In order to quantify plant stress responses, transmembrane ion transport, sensors and receptors in signaling transduction, and metabolites involved in the energy supply require thorough study. In addition, more research is needed on the plant salinity stress response based on molecular interactions in response to nanoparticle treatment. The application of nanoparticles as an aspect of genetic engineering for the generation of salt-tolerant plants is a promising area of research. This review article addresses the use of nanoparticles in plant breeding and genetic engineering techniques to develop salt-tolerant crops.
引用
收藏
页数:23
相关论文
共 183 条
[1]   Tolerance of mannitol-accumulating transgenic wheat to water stress and salinity [J].
Abebe, T ;
Guenzi, AC ;
Martin, B ;
Cushman, JC .
PLANT PHYSIOLOGY, 2003, 131 (04) :1748-1755
[2]   Phragmites karka plants adopt different strategies to regulate photosynthesis and ion flux in saline and water deficit conditions [J].
Abideen, Zainul ;
Koyro, Hans-Werner ;
Huchzermeyer, Bernhard ;
Ahmed, Muhammad Zaheer ;
Zulfiqar, Faisal ;
Egan, Todd ;
Khan, M. Ajmal .
PLANT BIOSYSTEMS, 2021, 155 (03) :524-534
[3]   Salinity improves growth, photosynthesis and bioenergy characteristics of Phragmites karka [J].
Abideen, Zainul ;
Qasim, Muhammad ;
Hussain, Tabassum ;
Rasheed, Aysha ;
Gul, Bilquees ;
Koyro, Hans-Werner ;
Ansari, Raziuddin ;
Khan, M. Ajmal .
CROP & PASTURE SCIENCE, 2018, 69 (09) :944-953
[4]   Moderate salinity stimulates growth and photosynthesis of Phragmites karka by water relations and tissue specific ion regulation [J].
Abideen, Zainul ;
Koyro, Hans-Werner ;
Huchzermeyer, Bernhard ;
Ahmed, Muhammad Zaheer ;
Gul, Bilquees ;
Khan, M. Ajmal .
ENVIRONMENTAL AND EXPERIMENTAL BOTANY, 2014, 105 :70-76
[5]   Investigation of seedling-stage salinity tolerance QTLs using backcross lines derived from Oryza sativa L. Pokkali [J].
Alam, Rebjana ;
Rahman, M. Sazzadur ;
Seraj, Zeba I. ;
Thomson, Michael J. ;
Ismail, Abdelbagi M. ;
Tumimbang-Raiz, Ellen ;
Gregorio, Glenn B. .
PLANT BREEDING, 2011, 130 (04) :430-437
[6]   Transformation of tobacco with an Arabidopsis thaliana gene involved in trehalose biosynthesis increases tolerance to several abiotic stresses [J].
Almeida, AM ;
Villalobos, E ;
Araújo, SS ;
Leyman, B ;
Van Dijck, P ;
Alfaro-Cardoso, L ;
Fevereiro, PS ;
Torné, JM ;
Santos, DM .
EUPHYTICA, 2005, 146 (1-2) :165-176
[7]   Identification and Characterization of Salt-Responsive MicroRNAs in Vicia faba by High-Throughput Sequencing [J].
Alzahrani, Saud M. ;
Alaraidh, Ibrahim A. ;
Khan, Muhammad A. ;
Migdadi, Hussein M. ;
Alghamdi, Salem S. ;
Alsahli, Abdluaziz A. .
GENES, 2019, 10 (04)
[8]   Some prospective strategies for improving crop salt tolerance [J].
Ashraf, M. ;
Athar, H. R. ;
Harris, P. J. C. ;
Kwon, T. R. .
ADVANCES IN AGRONOMY, VOL 97, 2008, 97 :45-110
[9]  
Attia-Ismail SA, 2016, HALOPHYTIC AND SALT-TOLERANT FEEDSTUFFS: IMPACTS ON NUTRITION, PHYSIOLOGY AND REPRODUCTION OF LIVESTOCK, P127
[10]   Towards a definition of inorganic nanoparticles from an environmental, health and safety perspective [J].
Auffan, Melanie ;
Rose, Jerome ;
Bottero, Jean-Yves ;
Lowry, Gregory V. ;
Jolivet, Jean-Pierre ;
Wiesner, Mark R. .
NATURE NANOTECHNOLOGY, 2009, 4 (10) :634-641