Plant response to heavy metal stress toxicity: the role of metabolomics and other omics tools

被引:6
作者
Anjitha, K. S. [1 ]
Sarath, Nair G. [2 ]
Sameena, P. P. [3 ]
Janeeshma, Edappayil [4 ]
Shackira, A. M. [5 ]
Puthur, Jos T. [1 ]
机构
[1] Univ Calicut, Dept Bot, Plant Physiol & Biochem Div, CU Campus PO, Malappuram 673635, Kerala, India
[2] Mar Athanasius Coll, Dept Botany, Ernakulam 686666, Kerala, India
[3] PSMO Coll, Dept Bot, Malappuram 676306, Kerala, India
[4] MES KEVEEYAM Coll, Dept Bot, Malappuram 676552, Kerala, India
[5] Kannur Univ, Sir Syed Coll, Dept Bot, Kannur 670142, Kerala, India
关键词
GC-MS; heavy metal stress; LC-MS; metabolic engineering; metabolomics; NMR spectroscopy; OMICS; stress tolerance; INDUCED OXIDATIVE STRESS; AMINO-ACIDS; GLUCOSINOLATE CONTENT; CADMIUM ACCUMULATION; SECONDARY METABOLISM; TOLERANCE; MAIZE; RICE; LEAD; GROWTH;
D O I
10.1071/FP23145
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Metabolomic investigations offers a significant foundation for improved comprehension of the adaptability of plants to reconfigure the key metabolic pathways and their response to changing climatic conditions. Their application to ecophysiology and ecotoxicology help to assess potential risks caused by the contaminants, their modes of action and the elucidation of metabolic pathways associated with stress responses. Heavy metal stress is one of the most significant environmental hazards affecting the physiological and biochemical processes in plants. Metabolomic tools have been widely utilised in the massive characterisation of the molecular structure of plants at various stages for understanding the diverse aspects of the cellular functioning underlying heavy metal stress-responsive mechanisms. This review emphasises on the recent progressions in metabolomics in plants subjected to heavy metal stresses. Also, it discusses the possibility of facilitating effective management strategies concerning metabolites for mitigating the negative impacts of heavy metal contaminants on the growth and productivity of plants. Metabolomics is an excellent analytical profiling tool to understand the molecular network underpinning the operation of the numerous metabolic pathways present in plants. This review focuses on recent research that employed metabolomics and other omics platforms to obtain a thorough understanding of how plants respond to heavy metal stress and a detailed examination of the metabolic pathways that regulate them. A detailed picture of a cell's metabolic activities can be obtained via metabolomics, together with information on potential target pathways.
引用
收藏
页码:965 / 982
页数:18
相关论文
共 167 条
[1]   Differential partitioning of thiols and glucosinolates between shoot and root in Chinese cabbage upon excess zinc exposure [J].
Aghajanzadeh, Tahereh A. ;
Prajapati, Dharmendra H. ;
Burow, Meike .
JOURNAL OF PLANT PHYSIOLOGY, 2020, 244
[2]   Metabolic engineering of the plant primary-secondary metabolism interface [J].
Aharoni, Asaph ;
Galili, Gad .
CURRENT OPINION IN BIOTECHNOLOGY, 2011, 22 (02) :239-244
[3]   Structure, Function, Regulation and Phylogenetic Relationship of ZIP Family Transporters of Plants [J].
Ajeesh Krishna, T. P. ;
Maharajan, T. ;
Victor Roch, G. ;
Ignacimuthu, Savarimuthu ;
Antony Ceasar, Stanislaus .
FRONTIERS IN PLANT SCIENCE, 2020, 11
[4]   Mass spectrometry-based metabolomics: a guide for annotation, quantification and best reporting practices [J].
Alseekh, Saleh ;
Aharoni, Asaph ;
Brotman, Yariv ;
Contrepois, Kevin ;
D'Auria, John ;
Ewald, Jan ;
Ewald, Jennifer C. ;
Fraser, Paul D. ;
Giavalisco, Patrick ;
Hall, Robert D. ;
Heinemann, Matthias ;
Link, Hannes ;
Luo, Jie ;
Neumann, Steffen ;
Nielsen, Jens ;
de Souza, Leonardo Perez ;
Saito, Kazuki ;
Sauer, Uwe ;
Schroeder, Frank C. ;
Schuster, Stefan ;
Siuzdak, Gary ;
Skirycz, Aleksandra ;
Sumner, Lloyd W. ;
Snyder, Michael P. ;
Tang, Huiru ;
Tohge, Takayuki ;
Wang, Yulan ;
Wen, Weiwei ;
Wu, Si ;
Xu, Guowang ;
Zamboni, Nicola ;
Fernie, Alisdair R. .
NATURE METHODS, 2021, 18 (07) :747-756
[5]   Crop metabolomics: from diagnostics to assisted breeding [J].
Alseekh, Saleh ;
Bermudez, Luisa ;
Alejandro de Haro, Luis ;
Fernie, Alisdair R. ;
Carrari, Fernando .
METABOLOMICS, 2018, 14 (11)
[6]   Understanding the Active Mechanisms of Plant (Sesuvium portulacastrum L.) against Heavy Metal Toxicity [J].
Alsherif, Emad A. ;
Khanghahi, Mohammad Yaghoubi ;
Crecchio, Carmine ;
Korany, Shereen Magdy ;
Sobrinho, Renato Lustosa ;
AbdElgawad, Hamada .
PLANTS-BASEL, 2023, 12 (03)
[7]   Functional aspects of plant secondary metabolites in metal stress tolerance and their importance in pharmacology [J].
Anjitha, K. S. ;
Sameena, P. P. ;
Puthur, Jos T. .
PLANT STRESS, 2021, 2
[8]   Jacks of metal/metalloid chelation trade in plants-an overview [J].
Anjum, Naser A. ;
Hasanuzzaman, Mirza ;
Hossein, Mohammad A. ;
Thangavel, Palaniswamy ;
Roychoudhury, Aryadeep ;
Gill, Sarvajeet S. ;
Rodrigo, Miguel A. Merlos ;
Adam, Vojtech ;
Fujita, Masayuki ;
Kizek, Rene ;
Duarte, Armando C. ;
Pereira, Eduarda ;
Ahmed, Iqbal .
FRONTIERS IN PLANT SCIENCE, 2015, 6
[9]   How to analyse plant phenotypic plasticity in response to a changing climate [J].
Arnold, Pieter A. ;
Kruuk, Loeske E. B. ;
Nicotra, Adrienne B. .
NEW PHYTOLOGIST, 2019, 222 (03) :1235-1241
[10]   The fate of secondary metabolites in plants growing on Cd-, As-, and Pb-contaminated soils-a comprehensive review [J].
Asare, Michael O. ;
Szakova, Jirina ;
Tlustos, Pavel .
ENVIRONMENTAL SCIENCE AND POLLUTION RESEARCH, 2023, 30 (05) :11378-11398