Recent Advances in Minimizing Cadmium Accumulation in Wheat
Abstract
:1. Introduction
2. Limits for Grain Cd Content and Human Safety Threshold
3. Factors That Affect Cd Uptake and Accumulation
4. Toxicity and Tolerance Mechanism of Cd in Wheat
5. Omics and Functional Genes Uncovering Cd Stress in Wheat
5.1. Cd Stress and Epigenetic Response
5.2. What about the Transcriptome, Proteome and Cd Stress?
5.3. Cd Stress and Metabolome
5.4. Functional Genes and Cd Stress
6. Different Mitigation Strategies to Reduce the Uptake and Accumulation of Cd
6.1. Selection of Low Cd-Accumulating Wheat Cultivars
6.2. Exogenous Application of Plant Growth Regulators
6.3. The Use of Inorganic Amendments
6.3.1. Nitrogen Application
6.3.2. Phosphorus Application
6.3.3. Sulfur-Based Fertilizers
6.3.4. Silicon Application
6.3.5. Zinc Application
6.4. The Use of Organic Amendments
6.4.1. Composts and Manures
6.4.2. Biochar
6.5. The Use of Nanoparticles
6.6. The Use of Biological Entities
6.6.1. The Use of Bacteria
6.6.2. The Use of Fungi
6.6.3. The Use of Earthworms
6.7. The Use of Combined Strategies
7. Summary and Perspectives
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
- Sabella, E.; Luvisi, A.; Genga, A.; De Bellis, L.; Aprile, A. Molecular responses to cadmium exposure in two contrasting durum wheat genotypes. Int. J. Mol. Sci. 2021, 22, 7343. [Google Scholar] [CrossRef]
- Li, C.M.; Wang, H.C.; Liao, X.L.; Xiao, R.; Liu, K.H.; Bai, J.H.; Li, B.; He, Q. Heavy metal pollution in coastal wetlands: A systematic review of studies globally over the past three decades. J. Hazard. Mater. 2022, 424, 127312. [Google Scholar] [CrossRef] [PubMed]
- Sizmur, T.; Richardson, J. Earthworms accelerate the biogeochemical cycling of potentially toxic elements: Results of a meta-analysis. Soil Biol. Biochem. 2020, 148, 107865. [Google Scholar] [CrossRef]
- Bamagoos, A.A.; Alharby, H.F.; Abbas, G. Differential uptake and translocation of cadmium and lead by Quinoa: A multivariate comparison of physiological and oxidative stress responses. Toxics 2022, 10, 68. [Google Scholar] [CrossRef]
- Uddin, M.M.; Zakeel, M.C.M.; Zavahir, J.S.; Marikar, F.M.M.T.; Jahan, I. Heavy metal accumulation in rice and aquatic plants used as human food: A general review. Toxics 2021, 9, 360. [Google Scholar] [CrossRef] [PubMed]
- Straif, K.; Benbrahim-Tallaa, L.; Baan, R.; Grosse, Y.; Secretan, B.; El Ghissassi, F.; Bouvard, V.; Guha, N.; Freeman, C.; Galichet, L.; et al. A review of human carcinogens-Part C: Metals, arsenic, dusts, and fibres. Lancet Oncol. 2009, 10, 453–454. [Google Scholar] [CrossRef]
- Bernard, A. Renal dysfunction induced by cadmium: Biomarkers of critical effects. Biometals 2004, 17, 519–523. [Google Scholar] [CrossRef] [PubMed]
- Chen, Y.; Xu, X.; Zeng, Z.; Lin, X.; Qin, Q.; Huo, X. Blood lead and cadmium levels associated with hematological and hepatic functions in patients from an e-waste-polluted area. Chemosphere 2019, 220, 531–538. [Google Scholar] [CrossRef] [PubMed]
- Kazantzis, G. Cadmium, osteoporosis and calcium metabolism. Biometals 2004, 17, 493–498. [Google Scholar] [CrossRef]
- Obeng-Gyasi, E. Chronic cadmium exposure and cardiovascular disease in adults. J. Environ. Sci. Health 2020, 55, 726–729. [Google Scholar] [CrossRef]
- Das, P.; Samantaray, S.; Rout, G.R. Studies on cadmium toxicity in plants: A review. Environ. Pollut. 1997, 98, 29–36. [Google Scholar] [CrossRef]
- Uraguchi, S.; Kamiya, T.; Sakamoto, T.; Kasai, K.; Sato, Y.; Nagamura, Y.; Yoshida, A.; Kyozuka, J.; Ishikawa, S.; Fujiwara, T. Low-affinity cation transporter (OsLCT1) regulates cadmium transport into rice grains. Proc. Natl. Acad. Sci. USA 2011, 108, 20959–20964. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Zorrig, W.; Rouached, A.; Shahzad, Z.; Abdelly, C.; Davidian, J.C.; Berthomieu, P. Identification of three relationships linking cadmium accumulation to cadmium tolerance and zinc and citrate accumulation in lettuce. J. Plant Physiol. 2010, 167, 1239–1247. [Google Scholar] [CrossRef] [PubMed]
- Satarug, S.; Baker, J.R.; Urbenjapol, S.; Haswell-Elkins, M.; Reilly, P.E.B.; Williams, D.J.; Moore, M.R. A global perspective on cadmium pollution and toxicity in non-occupationally exposed population. Toxicol. Lett. 2003, 137, 65–83. [Google Scholar] [CrossRef]
- Gill, B.S.; Appels, R.; Botha-Oberholster, A.M.; Buell, C.R.; Bennetzen, J.L.; Chalhoub, B.; Chumley, F.; Dvorak, J.; Iwanaga, M.; Keller, B.; et al. A workshop report on wheat genome sequencing: International Genome Research on Wheat Consortium. Genetics 2004, 168, 1087–1096. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Abedi, T.; Mojiri, A. Cadmium uptake by wheat (Triticum aestivum L.): An overview. Plants 2020, 9, 500. [Google Scholar] [CrossRef] [Green Version]
- Greger, M.; Lofstedt, M. Comparison of uptake and distribution of cadmium in different cultivars of bread and durum wheat. Crop Sci. 2004, 44, 501–507. [Google Scholar] [CrossRef]
- Jafarnejadi, A.R.; Homaee, M.; Sayyad, G.; Bybordi, M. Large scale spatial variability of accumulated cadmium in the wheat farm grains. Soil Sediment Contam. 2011, 20, 98–113. [Google Scholar] [CrossRef]
- Oliver, D.P.; Gartrell, J.W.; Tiller, K.G.; Correll, R.; Cozens, G.D.; Youngberg, B.L. Differential responses of Australian wheat cultivars to cadmium concentration in wheat-grain. Aust. J. Agric. Res. 1995, 46, 873–886. [Google Scholar] [CrossRef]
- Chaudri, A.; McGrath, S.; Gibbs, P.; Chambers, B.; Carlton-Smith, C.; Godley, A.; Bacon, J.; Campbell, C.; Aitken, M. Cadmium availability to wheat grain in soils treated with sewage sludge or metal salts. Chemosphere 2007, 66, 1415–1423. [Google Scholar] [CrossRef]
- EFSA: European Food Safety Authority. Scientific opinion of the panel on contaminants in the food chain on a request from the European Commission on cadmium in food. EFSA J. 2009, 9, 756741. [Google Scholar] [CrossRef]
- JECFA: Joint FAO/WHO Expert Committee on Food Additives. Safety Evaluation of Certain Food Additives and Contaminants; WHO Food Additives Series 64; World Health Organization: Geneva, Switzerland, 2011. [Google Scholar]
- ATSDR: Ageency for Toxic Substances and Disease Registry. Toxicological Profile for Cadmium; Department of Health and Human Services, Public Health Service: Atlanta, GA, USA, 2012. [Google Scholar]
- Qiao, L.; Wheeler, J.; Wang, R.; Isham, K.; Klassen, N.; Zhao, W.D.; Su, M.; Zhang, J.L.; Zheng, J.; Chen, J.L. Novel quantitative trait loci for grain cadmium content identified in hard white spring wheat. Front. Plant Sci. 2021, 12, 756741. [Google Scholar] [CrossRef] [PubMed]
- Lu, M.; Cao, X.R.; Pan, J.Q.; Li, T.Q.; Khan, M.B.; Gurajala, H.K.; He, Z.L.; Yang, X. Identification of wheat (Triticum aestivum L.) genotypes for food safety on two different cadmium contaminated soils. Environ. Sci. Pollut. Res. 2020, 27, 7943–7956. [Google Scholar] [CrossRef]
- Guo, G.H.; Lei, M.; Wang, Y.W.; Song, B.; Yang, J. Accumulation of As, Cd, and Pb in sixteen wheat cultivars grown in contaminated soils and associated health risk assessment. Int. J. Environ. Res. Public Health 2018, 15, 2601. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Huang, M.L.; Zhou, S.L.; Sun, B.; Zhao, Q.G. Heavy metals in wheat grain: Assessment of potential health risk for inhabitants in Kunshan, China. Sci. Total Environ. 2008, 405, 54–61. [Google Scholar] [CrossRef]
- Awan, N.; Fatima, A.; Farhan, M. Comparative analysis of chromium and cadmium in various parts of wheat and maize. Pol. J. Environ. Stud. 2019, 28, 1561–1566. [Google Scholar] [CrossRef]
- Corguinha, A.P.B.; de Souza, G.A.; Goncalves, V.C.; Carvalho, C.D.; de Lima, W.E.A.; Martins, F.A.D.; Yamanaka, C.H.; Francisco, E.A.B.; Guilherme, L.R.G. Assessing arsenic, cadmium, and lead contents in major crops in Brazil for food safety purposes. J. Food Compos. Anal. 2015, 37, 143–150. [Google Scholar] [CrossRef] [Green Version]
- Khoshgoftarmanesh, A.H.; Shariatmadari, H.; Karimian, N.; Kalbasi, M.; van der Zee, S.E.A.T.M. Cadmium and zinc in saline soil solutions and their concentrations in wheat. Soil Sci. Soc. Am. J. 2006, 70, 582–589. [Google Scholar] [CrossRef]
- Oliver, D.P.; Gore, P.J.; Moss, H.J.; Tiller, K.G. Cadmium in wheat-grain and milling products from some Australian flour mills. Aust. J. Agric. Res. 1993, 44, 1–11. [Google Scholar] [CrossRef]
- Gao, X.P.; Mohr, R.M.; McLaren, D.L.; Grant, C.A. Grain cadmium and zinc concentrations in wheat as affected by genotypic variation and potassium chloride fertilization. Field Crop Res. 2011, 122, 95–103. [Google Scholar] [CrossRef]
- Van der Vliet, L.; Peterson, C.; Hale, B. Cd accumulation in roots and shoots of durum wheat: The roles of transpiration rate and apoplastic bypass. J. Exp. Bot. 2007, 58, 2939–2947. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Rebekic, A.; Loncaric, Z. Genotypic difference in cadmium effect on agronomic traits and grain zinc and iron concentration in winter wheat. Emir. J. Food Agric. 2016, 28, 772–778. [Google Scholar] [CrossRef]
- Arduini, I.; Masoni, A.; Mariotti, M.; Pampana, S.; Ercoli, L. Cadmium uptake and translocation in durum wheat varieties differing in grain-Cd accumulation. Plant Soil Environ. 2014, 60, 43–49. [Google Scholar] [CrossRef] [Green Version]
- Vergine, M.; Aprile, A.; Sabella, E.; Genga, A.; Siciliano, M.; Rampino, P.; Lenucci, M.S.; Luvisi, A.; De Bellis, L. Cadmium concentration in grains of durum wheat (Triticum turgidum L. subsp durum). J. Agric. Food Chem. 2017, 65, 6240–6246. [Google Scholar] [CrossRef]
- Kubo, K.; Kobayashi, H.; Fujita, M.; Ota, T.; Minamiyama, Y.; Watanabe, Y.; Nakajima, T.; Shinano, T. Varietal differences in the absorption and partitioning of cadmium in common wheat (Triticum aestivum L.). Environ. Exp. Bot. 2016, 124, 79–88. [Google Scholar] [CrossRef]
- Skrbic, B.; Durisic-Mladenovic, N.; Cvejanov, J. Principal component analysis of trace elements in Serbian wheat. J. Agric. Food Chem. 2005, 53, 2171–2175. [Google Scholar] [CrossRef]
- Zhang, D.Z.; Zhou, H.; Shao, L.L.; Wang, H.R.; Zhang, Y.B.; Zhu, T.; Ma, L.T.; Ding, Q.; Ma, L.J. Root characteristics critical for cadmium tolerance and reduced accumulation in wheat (Triticum aestivum L.). J. Environ. Manag. 2022, 305, 114365. [Google Scholar] [CrossRef]
- Liu, N.; Huang, X.; Sun, L.; Li, S.; Chen, Y.; Cao, X.; Wang, W.; Dai, J.; Rinnan, R. Screening stably low cadmium and moderately high micronutrients wheat cultivars under three different agricultural environments of China. Chemosphere 2020, 241, 125065. [Google Scholar] [CrossRef]
- Wang, Y.; Liang, H.; Li, S.; Zhang, Z.H.; Liao, Y.L.; Lu, Y.H.; Zhou, G.P.; Gao, S.J.; Nie, J.; Cao, W.D. Co-utilizing milk vetch, rice straw, and lime reduces the Cd accumulation of rice grain in two paddy soils in south China. Sci. Total Environ. 2022, 806, 150622. [Google Scholar] [CrossRef]
- Liang, X.; Strawn, D.G.; Chen, J.L.; Marshall, J. Variation in cadmium accumulation in spring wheat cultivars: Uptake and redistribution to grain. Plant Soil 2017, 421, 219–231. [Google Scholar] [CrossRef]
- Adeniji, B.A.; Budimir-Hussey, M.T.; Macfie, S.M. Production of organic acids and adsorption of Cd on roots of durum wheat (Triticum turgidum L. var. durum). Acta Physiol. Plant 2010, 32, 1063–1072. [Google Scholar] [CrossRef] [Green Version]
- Black, A.; McLaren, R.G.; Speir, T.W.; Clucas, L.; Condron, L.M. Gradient differences in soil metal solubility and uptake by shoots and roots of wheat (T. aestivum). Biol. Fertil. Soils 2014, 50, 685–694. [Google Scholar] [CrossRef]
- Hart, J.J.; Welch, R.M.; Norvell, W.A.; Kochian, L.V. Characterization of cadmium uptake, translocation and storage in near-isogenic lines of durum wheat that differ in grain cadmium concentration. New Phytol. 2006, 172, 261–271. [Google Scholar] [CrossRef] [PubMed]
- Liu, K.; Lv, J.L.; He, W.X.; Zhang, H.; Cao, Y.F.; Dai, Y.C. Major factors influencing cadmium uptake from the soil into wheat plants. Ecotoxicol. Environ. Saf. 2015, 113, 207–213. [Google Scholar] [CrossRef] [PubMed]
- Jones, K.C.; Johnston, A.E. Cadmium in cereal grain and herbage from long-term experimental plots at Rothamsted, UK. Environ. Pollut. 1989, 57, 199–216. [Google Scholar] [CrossRef]
- Wang, W.; Lu, T.; Liu, L.; Yang, X.; Sun, X.; Qiu, G.; Hua, D.; Zhou, D. Zeolite-supported manganese oxides decrease the Cd uptake of wheat plants in Cd-contaminated weakly alkaline arable soils. J. Hazard. Mater. 2021, 419, 126464. [Google Scholar] [CrossRef]
- Li, Y.H.; Wang, L.; Yang, L.S.; Li, H.R. Dynamics of rhizosphere properties and antioxidative responses in wheat (Triticum aestivum L.) under cadmium stress. Ecotoxicol. Environ. Saf. 2014, 102, 55–61. [Google Scholar] [CrossRef]
- Nan, Z.R.; Zhao, C.Y.; Li, J.J.; Chen, F.H.; Sun, W. Relations between soil properties and selected heavy metal concentrations in spring wheat (Triticum aestivum L.) grown in contaminated soils. Water Air Soil Pollut. 2002, 133, 205–213. [Google Scholar] [CrossRef]
- Ran, J.; Wang, D.J.; Wang, C.; Zhang, G.; Zhang, H.L. Heavy metal contents, distribution, and prediction in a regional soil-wheat system. Sci. Total Environ. 2016, 544, 422–431. [Google Scholar] [CrossRef]
- Dahlin, A.S.; Eriksson, J.; Campbell, C.D.; Oborn, I. Soil amendment affects Cd uptake by wheat—Are we underestimating the risks from chloride inputs? Sci. Total Environ. 2016, 554, 349–357. [Google Scholar] [CrossRef]
- Yi, Z.; Lehto, N.J.; Robinson, B.H.; Cavanagh, J.E. Environmental and edaphic factors affecting soil cadmium uptake by spinach, potatoes, onion and wheat. Sci. Total Environ. 2020, 713, 136694. [Google Scholar] [CrossRef] [PubMed]
- Gray, C.W.; Yi, Z.; Munir, K.; Lehto, N.J.; Robinson, B.H.; Cavanagh, J.E. Cadmium concentrations in New Zealand wheat: Effect of cultivar type, soil properties, and crop management. J. Environ. Qual. 2019, 48, 701–708. [Google Scholar] [CrossRef] [PubMed]
- Guo, H.Y.; Tian, R.; Zhu, J.G.; Zhou, H.; Pei, D.P.; Wang, X.R. Combined cadmium and elevated ozone affect concentrations of cadmium and antioxidant systems in wheat under fully open-air conditions. J. Hazard. Mater. 2012, 209, 27–33. [Google Scholar] [CrossRef] [PubMed]
- Liptáková, Ľ.; Huttová, J.; Mistrík, I.; Tamás, L. Enhanced lipoxygenase activity is involved in the stress response but not in the harmful lipid peroxidation and cell death of short-term cadmium-treated barley root tip. J. Plant Physiol. 2013, 170, 646–652. [Google Scholar] [CrossRef] [PubMed]
- Bansal, R.; Priya, S.; Dikshit, H.K.; Jacob, S.R.; Rao, M.; Bana, R.S.; Kumari, J.; Tripathi, K.; Kumar, A.; Kumar, S.; et al. Growth and antioxidant responses in iron-biofortified lentil under cadmium stress. Toxics 2021, 9, 182. [Google Scholar] [CrossRef]
- Adrees, M.; Khan, Z.S.; Ali, S.; Hafeez, M.; Khalid, S.; Ur Rehman, M.Z.; Hussain, A.; Hussain, K.; Shahid Chatha, S.A.; Rizwan, M. Simultaneous mitigation of cadmium and drought stress in wheat by soil application of iron nanoparticles. Chemosphere 2020, 238, 124681. [Google Scholar] [CrossRef]
- Zhang, L.; Gao, B. Effect of isosteviol on wheat seed germination and seedling growth under cadmium stress. Plants 2021, 10, 1779. [Google Scholar] [CrossRef]
- Ouzounidou, G.; Moustakas, M.; Eleftheriou, E.P. Physiological and ultrastructural effects of cadmium on wheat (Triticum aestivum L.) leaves. Arch. Environ. Contam. Toxicol. 1997, 32, 154–160. [Google Scholar] [CrossRef]
- Ci, D.W.; Jiang, D.; Dai, T.B.; Jing, Q.; Cao, W.X. Effects of cadmium on plant growth and physiological traits in contrast wheat recombinant inbred lines differing in cadmium tolerance. Chemosphere 2009, 77, 1620–1625. [Google Scholar] [CrossRef]
- Rizwan, M.; Ali, S.; Abbas, T.; Zia-Ur-Rehman, M.; Hannan, F.; Keller, C.; Al-Wabel, M.I.; Ok, Y.S. Cadmium minimization in wheat: A critical review. Ecotoxicol. Environ. Saf. 2016, 130, 43–53. [Google Scholar] [CrossRef]
- Paradiso, A.; Berardino, R.; de Pinto, M.C.; Sanita di Toppi, L.; Storelli, M.M.; Tommasi, F.; De Gara, L. Increase in ascorbate-glutathione metabolism as local and precocious systemic responses induced by cadmium in durum wheat plants. Plant Cell Physiol. 2008, 49, 362–374. [Google Scholar] [CrossRef] [PubMed]
- Seth, C.S.; Remans, T.; Keunen, E.; Jozefczak, M.; Gielen, H.; Opdenakker, K.; Weyens, N.; Vangronsveld, J.; Cuypers, A. Phytoextraction of toxic metals: A central role for glutathione. Plant Cell Environ. 2012, 35, 334–346. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Szarka, A.; Tomasskovics, B.; Banhegyi, G. The ascorbate-glutathione-alpha-tocopherol triad in abiotic stress response. Int. J. Mol. Sci. 2012, 13, 4458–4483. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Keltjens, W.G.; van Beusichem, M.L. Phytochelatins as biomarkers for heavy metal stress in maize (Zea mays L.) and wheat (Triticum aestivum L.): Combined effects of copper and cadmium. Plant Soil 1998, 203, 119–126. [Google Scholar] [CrossRef]
- Ranieri, A.; Castagna, A.; Scebba, F.; Careri, M.; Zagnoni, I.; Predieri, G.; Pagliari, M.; Sanita di Toppi, L. Oxidative stress and phytochelatin characterisation in bread wheat exposed to cadmium excess. Plant Physiol. Biochem. 2005, 43, 45–54. [Google Scholar] [CrossRef]
- Stolt, J.P.; Sneller, F.E.C.; Bryngelsson, T.; Lundborg, T.; Schat, H. Phytochelatin and cadmium accumulation in wheat. Environ. Exp. Bot. 2003, 49, 21–28. [Google Scholar] [CrossRef]
- Clemens, S.; Persoh, D. Multi-tasking phytochelatin synthases. Plant Sci. 2009, 177, 266–271. [Google Scholar] [CrossRef]
- Cobbett, C.; Goldsbrough, P. Phytochelatins and metallothioneins: Roles in heavy metal detoxification and homeostasis. Annu. Rev. Plant Biol. 2002, 53, 159–182. [Google Scholar] [CrossRef] [Green Version]
- Kovacs, V.; Gondor, O.K.; Szalai, G.; Darko, E.; Majlath, I.; Janda, T.; Pal, M. Synthesis and role of salicylic acid in wheat varieties with different levels of cadmium tolerance. J. Hazard. Mater. 2014, 280, 12–19. [Google Scholar] [CrossRef] [Green Version]
- Riaz, S.; Iqbal, M.; Hussain, I.; Rasheed, R.; Ashraf, M.A.; Mahmood, S.; Younas, M.; Iqbal, M.Z. Chronic cadmium induced oxidative stress not the DNA fragmentation modulates growth in spring wheat (Triticum aestivum). Int. J. Agric. Biol. 2014, 16, 789–794. [Google Scholar]
- Shah, T.; Xu, J.; Zou, X.; Cheng, Y.; Nasir, M.; Zhang, X. Omics approaches for engineering wheat production under abiotic stresses. Int. J. Mol. Sci. 2018, 19, 2390. [Google Scholar] [CrossRef] [Green Version]
- Zogli, P.; Libault, M. Plant response to biotic stress: Is there a common epigenetic response during plant-pathogenic and symbiotic interactions? Plant Sci. 2017, 263, 89–93. [Google Scholar] [CrossRef] [PubMed]
- Hu, J.J.; Yu, Y.X. Epigenetic response profiles into environmental epigenotoxicant screening and health risk assessment: A critical review. Chemosphere 2019, 226, 259–272. [Google Scholar] [CrossRef] [PubMed]
- Li, X.; Wang, X.; Zhang, Y.; Zhang, A.; You, C.X. Regulation of fleshy fruit ripening: From transcription factors to epigenetic modifications. Hortic. Res. 2022. [Google Scholar] [CrossRef] [PubMed]
- Tiwari, M.; Kumar, R. Genetic and molecular mechanisms underlying root architecture and function under heat stress—A hidden story. Plant Cell Environ. 2022, 45, 771–788. [Google Scholar] [CrossRef]
- Oberkofler, V.; Pratx, L.; Baurle, I. Epigenetic regulation of abiotic stress memory: Maintaining the good things while they last. Curr. Opin. Plant Biol. 2021, 61, 102007. [Google Scholar] [CrossRef]
- Greco, M.; Sáez, C.A.; Contreras, R.A.; Rodríguez-Rojas, F.; Bitonti, M.B.; Brown, M.T. Cadmium and/or copper excess induce interdependent metal accumulation, DNA methylation, induction of metal chelators and antioxidant defences in the seagrass Zostera marina. Chemosphere 2019, 224, 111–119. [Google Scholar] [CrossRef] [Green Version]
- Carra, A.; Mica, E.; Gambino, G.; Pindo, M.; Moser, C.; Pè, M.E.; Schubert, A. Cloning and characterization of small non-coding RNAs from grape. Plant J. Cell Mol. Biol. 2009, 59, 750–763. [Google Scholar] [CrossRef]
- Fard, E.M.; Bakhshi, B.; Keshavarznia, R.; Nikpay, N.; Shahbazi, M.; Salekdeh, G.H. Drought responsive microRNAs in two barley cultivars differing in their level of sensitivity to drought stress. Plant Physiol. Biochem. 2017, 118, 121–129. [Google Scholar] [CrossRef]
- Shafiq, S.; Zeb, Q.; Ali, A.; Sajjad, Y.; Nazir, R.; Widemann, E.; Liu, L.Y. Lead, cadmium and zinc phytotoxicity alter DNA Methylation levels to confer heavy metal tolerance in wheat. Int. J. Mol. Sci. 2019, 20, 4676. [Google Scholar] [CrossRef] [Green Version]
- Zheng, L.; Ma, S.; Shen, D.; Fu, H.; Wang, Y.; Liu, Y.; Shah, K.; Yue, C.; Huang, J. Genome-wide identification of Gramineae histone modification genes and their potential roles in regulating wheat and maize growth and stress responses. BMC Plant Biol. 2021, 21, 543. [Google Scholar] [CrossRef] [PubMed]
- Van de Peer, Y.; Ashman, T.L.; Soltis, P.S.; Soltis, D.E. Polyploidy: An evolutionary and ecological force in stressful times. Plant Cell 2021, 33, 11–26. [Google Scholar] [CrossRef]
- Kumari, N.; Parmar, P.; Sharma, V. Differential gene expression in two contrasting wheat cultivars under cadmium stress. Biol. Plant. 2015, 59, 701–707. [Google Scholar] [CrossRef]
- Wang, K.L.; Zhang, Y.; Zhang, H.M.; Lin, X.C.; Xia, R.; Song, L.; Wu, A.M. MicroRNAs play important roles in regulating the rapid growth of the Phyllostachys edulis culm internode. New Phytol. 2021, 231, 2215–2230. [Google Scholar] [CrossRef] [PubMed]
- Zhou, M.; Zheng, S.G.; Liu, R.; Lu, L.; Zhang, C.H.; Zhang, L.; Yant, L.; Wu, Y. The genome-wide impact of cadmium on microRNA and mRNA expression in contrasting Cd responsive wheat genotypes. BMC Genom. 2019, 20, 615. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Zhou, M.; Zheng, S.G.; Li, Y.F.; Liu, R.; Zhang, L.; Wu, Y. Comparative profiling of roots small RNA expression and corresponding gene ontology and pathway analyses for low- and high-cadmium-accumulating genotypes of wheat in response to cadmium stress. Funct. Integr. Genom. 2020, 20, 177–190. [Google Scholar] [CrossRef]
- Qiu, Z.; Hai, B.; Guo, J.; Li, Y.; Zhang, L. Characterization of wheat miRNAs and their target genes responsive to cadmium stress. Plant Physiol. Biochem. 2016, 101, 60–67. [Google Scholar] [CrossRef] [Green Version]
- Liu, Y.; Wang, X.; Yuan, L.; Liu, Y.; Shen, T.; Zhang, Y. Comparative small RNA profiling and functional exploration on wheat with high- and low-cadmium accumulation. Front. Genet. 2021, 12, 635599. [Google Scholar] [CrossRef]
- Zhou, M.; Zheng, S.G.; Liu, R.; Lu, J.; Lu, L.; Zhang, C.H.; Liu, Z.H.; Luo, C.P.; Zhang, L.; Wu, Y. Comparative analysis of root transcriptome profiles between low- and high-cadmium-accumulating genotypes of wheat in response to cadmium stress. Funct. Integr. Genom. 2019, 19, 281–294. [Google Scholar] [CrossRef]
- Zhang, T.; Xiao, J.; Zhao, Y.; Zhang, Y.; Jie, Y.; Shen, D.; Yue, C.; Huang, J.; Hua, Y.; Zhou, T. Comparative physiological and transcriptomic analyses reveal ascorbate and glutathione coregulation of cadmium toxicity resistance in wheat genotypes. BMC Plant Biol. 2021, 21, 459. [Google Scholar] [CrossRef]
- Wu, S.; Hu, C.; Wang, X.; Wang, Y.; Yu, M.; Xiao, H.; Shabala, S.; Wu, K.; Tan, Q.; Xu, S.; et al. Cadmium-induced changes in composition and co-metabolism of glycerolipids species in wheat root: Glycerolipidomic and transcriptomic approach. J. Hazard. Mater. 2022, 423, 127115. [Google Scholar] [CrossRef]
- Wang, Y.; Qian, Y.R.; Hu, H.; Xu, Y.; Zhang, H.J. Comparative proteomic analysis of Cd-responsive proteins in wheat roots. Acta Physiol. Plant 2011, 33, 349–357. [Google Scholar] [CrossRef]
- Wang, Y.; Hu, H.; Xu, Y.; Li, X.X.; Zhang, H.J. Differential proteomic analysis of cadmium-responsive proteins in wheat leaves. Biol. Plant. 2011, 55, 586–590. [Google Scholar] [CrossRef]
- Jian, M.; Zhang, D.; Wang, X.; Wei, S.; Zhao, Y.; Ding, Q.; Han, Y.; Ma, L. Differential expression pattern of the proteome in response to cadmium stress based on proteomics analysis of wheat roots. BMC Genom. 2020, 21, 343. [Google Scholar] [CrossRef] [PubMed]
- Tsugawa, H.; Rai, A.; Saito, K.; Nakabayashi, R. Metabolomics and complementary techniques to investigate the plant phytochemical cosmos. Nat. Prod. Rep. 2021, 38, 1729–1759. [Google Scholar] [CrossRef]
- Lu, M.; Yu, S.; Lian, J.P.; Wang, Q.; He, Z.L.; Feng, Y.; Yang, X.E. Physiological and metabolomics responses of two wheat (Triticum aestivum L.) genotypes differing in grain cadmium accumulation. Sci. Total Environ. 2021, 769, 145345. [Google Scholar] [CrossRef]
- Han, H.; Zhang, H.; Qin, S.M.; Zhang, J.; Yao, L.G.; Chen, Z.J.; Yang, J.J. Mechanisms of Enterobacter bugandensis TJ6 immobilization of heavy metals and inhibition of Cd and Pb uptake by wheat based on metabolomics and proteomics. Chemosphere 2021, 276, 130157. [Google Scholar] [CrossRef]
- Qin, S.Y.; Xu, Y.F.; Nie, Z.J.; Liu, H.G.; Gao, W.; Li, C.; Zhao, P. Metabolomic and antioxidant enzyme activity changes in response to cadmium stress under boron application of wheat (Triticum aestivum). Environ. Sci. Pollut. Res. 2022. [Google Scholar] [CrossRef]
- Shim, D.; Hwang, J.U.; Lee, J.; Lee, S.; Choi, Y.; An, G.; Martinoia, E.; Lee, Y. Orthologs of the class A4 heat shock transcription factor HsfA4a confer cadmium tolerance in wheat and rice. Plant Cell 2009, 21, 4031–4043. [Google Scholar] [CrossRef] [Green Version]
- Zhou, M.; Zheng, S.; Liu, R.; Lu, J.; Lu, L.; Zhang, C.; Liu, Z.; Luo, C.; Zhang, L.; Yant, L.; et al. Genome-wide identification, phylogenetic and expression analysis of the heat shock transcription factor family in bread wheat (Triticum aestivum L.). BMC Genom. 2019, 20, 505. [Google Scholar] [CrossRef]
- Siemianowski, O.; Mills, R.F.; Williams, L.E.; Antosiewicz, D.M. Expression of the P(₁B)-type ATPase AtHMA4 in tobacco modifies Zn and Cd root to shoot partitioning and metal tolerance. Plant Biotechnol. J. 2011, 9, 64–74. [Google Scholar] [CrossRef] [PubMed]
- Qiao, K.; Gong, L.; Tian, Y.B.; Wang, H.; Chai, T.Y. The metal-binding domain of wheat heavy metal ATPase 2 (TaHMA2) is involved in zinc/cadmium tolerance and translocation in Arabidopsis. Plant Cell Rep. 2018, 37, 1343–1352. [Google Scholar] [CrossRef] [PubMed]
- Zhang, L.; Gao, C.; Chen, C.; Zhang, W.; Huang, X.Y.; Zhao, F.J. Overexpression of rice OsHMA3 in wheat greatly decreases cadmium accumulation in wheat grains. Environ. Sci. Technol. 2020, 54, 10100–10108. [Google Scholar] [CrossRef] [PubMed]
- Qiao, K.; Wang, F.H.; Liang, S.; Wang, H.; Hu, Z.L.; Chai, T.Y. New biofortification tool: Wheat TaCNR5 enhances zinc and manganese tolerance and increases zinc and manganese accumulation in rice grains. J. Agric. Food Chem. 2019, 67, 9877–9884. [Google Scholar] [CrossRef]
- Djemal, R.; Khoudi, H. The ethylene-responsive transcription factor of durum wheat, TdSHN1, confers cadmium, copper, and zinc tolerance to yeast and transgenic tobacco plants. Protoplasma 2022, 259, 19–31. [Google Scholar] [CrossRef]
- Wei, J.; Liao, S.; Li, M.; Zhu, B.; Wang, H.; Gu, L.; Yin, H.; Du, X. AetSRG1 contributes to the inhibition of wheat Cd accumulation by stabilizing phenylalanine ammonia lyase. J. Hazard. Mater. 2022, 428, 128226. [Google Scholar] [CrossRef]
- Ma, S.J.; Nan, Z.R.; Hu, Y.H.; Chen, S.; Yang, X.Y.; Su, J.Q. Phosphorus supply level is more important than wheat variety in safe utilization of cadmium-contaminated calcareous soil. J. Hazard. Mater. 2022, 424, 127224. [Google Scholar] [CrossRef]
- Kubo, K.; Watanabe, Y.; Oyanagi, A.; Kaneko, S.; Chono, M.; Matsunaka, H.; Seki, M.; Fujita, M. Cadmium concentration in grains of Japanese wheat cultivars genotypic difference and relationship with agronomic characteristics. Plant Prod. Sci. 2008, 11, 243–249. [Google Scholar] [CrossRef] [Green Version]
- Bermudez, G.M.A.; Jasan, R.; Pla, R.; Pignata, M.L. Heavy metal and trace element concentrations in wheat grains: Assessment of potential non-carcinogenic health hazard through their consumption. J. Hazard. Mater. 2011, 193, 264–271. [Google Scholar] [CrossRef]
- Yang, S.; Wu, P.; Jeyakumar, P.; Wang, H.; Zheng, X.; Liu, W.; Wang, L.; Li, X.; Ru, S. Technical solutions for minimizing wheat grain cadmium: A field study in North China. Sci. Total Environ. 2021, 818, 151791. [Google Scholar] [CrossRef]
- Agami, R.A.; Mohamed, G.F. Exogenous treatment with indole-3-acetic acid and salicylic acid alleviates cadmium toxicity in wheat seedlings. Ecotoxicol. Environ. Saf. 2013, 94, 164–171. [Google Scholar] [CrossRef]
- Wang, Z.F.; Li, Q.; Wu, W.G.; Guo, J.; Yang, Y.L. Cadmium stress tolerance in wheat seedlings induced by ascorbic acid was mediated by NO signaling pathways. Ecotoxicol. Environ. Saf. 2017, 135, 75–81. [Google Scholar] [CrossRef]
- Zhou, Z.; Wei, C.; Liu, H.T.; Jiao, Q.J.; Li, G.Z.; Zhang, J.J.; Zhang, B.A.; Jin, W.H.; Lin, D.; Chen, G.; et al. Exogenous ascorbic acid application alleviates cadmium toxicity in seedlings of two wheat (Triticum aestivum L.) varieties by reducing cadmium uptake and enhancing antioxidative capacity. Environ. Sci. Pollut. Res. 2022, 29, 21739–21750. [Google Scholar] [CrossRef] [PubMed]
- He, X.; Zhang, H.; Ye, X.; Hong, J.; Ding, G. Nitrogen assimilation related genes in Brassicanapus: Systematic characterization and expression analysis identified Hub genes in multiple nutrient stress responses. Plants 2021, 10, 2160. [Google Scholar] [CrossRef] [PubMed]
- Yang, Y.J.; Xiong, J.; Tao, L.X.; Cao, Z.Z.; Tang, W.; Zhang, J.P.; Yu, X.Y.; Fu, G.F.; Zhang, X.F.; Lu, Y.L. Regulatory mechanisms of nitrogen (N) on cadmium (Cd) uptake and accumulation in plants: A review. Sci. Total Environ. 2020, 708, 135186. [Google Scholar] [CrossRef] [PubMed]
- Cheng, Y.R.; Yang, T.; Xiang, W.H.; Li, S.Y.; Fan, X.; Sha, L.A.; Kang, H.Y.; Wu, D.D.; Zhang, H.Q.; Zeng, J.; et al. Ammonium-nitrogen addition at the seedling stage does not reduce grain cadmium concentration in two common wheat (Triticum aestivum L.) cultivars. Environ. Pollut. 2021, 286, 117575. [Google Scholar] [CrossRef]
- Wangstrand, H.; Eriksson, J.; Oborn, I. Cadmium concentration in winter wheat as affected by nitrogen fertilization. Eur. J. Agron. 2007, 26, 209–214. [Google Scholar] [CrossRef]
- Mitchell, L.G.; Grant, C.A.; Racz, G.J. Effect of nitrogen application on concentration of cadmium and nutrient ions in soil solution and in durum wheat. Can. J. Soil Sci. 2000, 80, 107–115. [Google Scholar] [CrossRef]
- Cho, H.; Bouain, N.; Zheng, L.; Rouached, H. Plant resilience to phosphate limitation: Current knowledge and future challenges. Crit. Rev. Biotechnol. 2021, 41, 63–71. [Google Scholar] [CrossRef]
- Chen, X.X.; Liu, Y.M.; Zhao, Q.Y.; Cao, W.Q.; Chen, X.P.; Zou, C.Q. Health risk assessment associated with heavy metal accumulation in wheat after long-term phosphorus fertilizer application. Environ. Pollut. 2020, 262, 114348. [Google Scholar] [CrossRef]
- Jian, S.F.; Huang, X.J.; Yang, X.N.; Zhong, C.; Miao, J.H. Sulfur regulates the trade-off between growth and andrographolide accumulation via nitrogen metabolism in Andrographis paniculata. Front. Plant Sci. 2021, 12, 687954. [Google Scholar] [CrossRef] [PubMed]
- Narayan, O.P.; Verma, N.; Jogawat, A.; Dua, M.; Johri, A.K. Sulfur transfer from the endophytic fungus Serendipita indica improves maize growth and requires the sulfate transporter SiSulT. Plant Cell 2021, 33, 1268–1285. [Google Scholar] [CrossRef] [PubMed]
- Khan, M.I.; Nazir, F.; Asgher, M.; Per, T.S.; Khan, N.A. Selenium and sulfur influence ethylene formation and alleviate cadmium-induced oxidative stress by improving proline and glutathione production in wheat. J. Plant Physiol. 2015, 173, 9–18. [Google Scholar] [CrossRef] [PubMed]
- Shi, G.; Lu, H.; Liu, H.; Lou, L.; Zhang, P.; Song, G.; Zhou, H.; Ma, H. Sulfate application decreases translocation of arsenic and cadmium within wheat (Triticum aestivum L.) plant. Sci. Total Environ. 2020, 713, 136665. [Google Scholar] [CrossRef]
- Bhat, J.A.; Shivaraj, S.M.; Singh, P.; Navadagi, D.B.; Tripathi, D.K.; Dash, P.K.; Solanke, A.U.; Sonah, H.; Deshmukh, R. Role of silicon in mitigation of heavy metal stresses in crop plants. Plants 2019, 8, 71. [Google Scholar] [CrossRef] [Green Version]
- Rahman, S.U.; Qi, X.B.; Kamran, M.; Yasin, G.; Cheng, H.F.; Rehim, A.; Riaz, L.; Rizwan, M.; Ali, S.; Alsahli, A.A.; et al. Silicon elevated cadmium tolerance in wheat (Triticum aestivum L.) by endorsing nutrients uptake and antioxidative defense mechanisms in the leaves. Plant Physiol. Biochem. 2021, 166, 148–159. [Google Scholar] [CrossRef]
- Song, A.; Li, Z.; Wang, E.; Xu, D.; Wang, S.; Bi, J.; Wang, H.; Jeyakumar, P.; Li, Z.; Fan, F. Supplying silicon alters microbial community and reduces soil cadmium bioavailability to promote health wheat growth and yield. Sci. Total Environ. 2021, 796, 148797. [Google Scholar] [CrossRef]
- Naeem, A.; Zia-Ur-Rehman, M.; Akhtar, T.; Zia, M.H.; Aslam, M. Silicon nutrition lowers cadmium content of wheat cultivars by regulating transpiration rate and activity of antioxidant enzymes. Environ. Pollut. 2018, 242, 126–135. [Google Scholar] [CrossRef]
- Huang, H.L.; Rizwan, M.; Li, M.; Song, F.R.; Zhou, S.J.; He, X.; Ding, R.; Dai, Z.H.; Yuan, Y.; Cao, M.H.; et al. Comparative efficacy of organic and inorganic silicon fertilizers on antioxidant response, Cd/Pb accumulation and health risk assessment in wheat (Triticum aestivum L.). Environ. Pollut. 2019, 255, 113146. [Google Scholar] [CrossRef]
- Zhou, Z.; Zhang, B.; Liu, H.; Liang, X.; Ma, W.; Shi, Z.; Yang, S. Zinc effects on cadmium toxicity in two wheat varieties (Triticum aestivum L.) differing in grain cadmium accumulation. Ecotoxicol. Environ. Saf. 2019, 183, 109562. [Google Scholar] [CrossRef]
- Sarwar, N.; Bibi, S.; Ahmad, M.; Ok, Y.S. Effectiveness of zinc application to minimize cadmium toxicity and accumulation in wheat (Triticum aestivum L.). Environ. Earth Sci. 2014, 71, 1663–1672. [Google Scholar] [CrossRef]
- Javed, H.; Naeem, A.; Rengel, Z.; Dahlawi, S. Timing of foliar Zn application plays a vital role in minimizing Cd accumulation in wheat. Environ. Sci. Pollut. Res. Int. 2016, 23, 16432–16439. [Google Scholar] [CrossRef]
- Zhou, J.; Zhang, C.; Du, B.; Cui, H.; Fan, X.; Zhou, D.; Zhou, J. Effects of zinc application on cadmium (Cd) accumulation and plant growth through modulation of the antioxidant system and translocation of Cd in low- and high-Cd wheat cultivars. Environ. Pollut. 2020, 265, 115045. [Google Scholar] [CrossRef] [PubMed]
- Lwin, C.S.; Seo, B.H.; Kim, H.U.; Owens, G.; Kim, K.R. Application of soil amendments to contaminated soils for heavy metal immobilization and improved soil quality—A critical review. Soil Sci. Plant Nutr. 2018, 64, 156–167. [Google Scholar] [CrossRef]
- Gruter, R.; Costerousse, B.; Mayer, J.; Mader, P.; Thonar, C.; Frossard, E.; Schulin, R.; Tandy, S. Long-term organic matter application reduces cadmium but not zinc concentrations in wheat. Sci. Total Environ. 2019, 669, 608–620. [Google Scholar] [CrossRef] [Green Version]
- Rehman, M.Z.U.; Rizwan, M.; Khalid, H.; Ali, S.; Naeem, A.; Yousaf, B.; Liu, G.; Sabir, M.; Farooq, M. Farmyard manure alone and combined with immobilizing amendments reduced cadmium accumulation in wheat and rice grains grown in field irrigated with raw effluents. Chemosphere 2018, 199, 468–476. [Google Scholar] [CrossRef] [PubMed]
- Zong, Y.; Xiao, Q.; Malik, Z.; Su, Y.; Wang, Y.; Lu, S. Crop straw-derived biochar alleviated cadmium and copper phytotoxicity by reducing bioavailability and accumulation in a field experiment of rice-rape-corn rotation system. Chemosphere 2021, 280, 130830. [Google Scholar] [CrossRef]
- Rehman, M.Z.U.; Zafar, M.; Waris, A.A.; Rizwan, M.; Ali, S.; Sabir, M.; Usman, M.; Ayub, M.A.; Ahmad, Z. Residual effects of frequently available organic amendments on cadmium bioavailability and accumulation in wheat. Chemosphere 2020, 244, 125548. [Google Scholar] [CrossRef]
- Abbas, T.; Rizwan, M.; Ali, S.; Adrees, M.; Mahmood, A.; Zia-ur-Rehman, M.; Ibrahim, M.; Arshad, M.; Qayyum, M.F. Biochar application increased the growth and yield and reduced cadmium in drought stressed wheat grown in an aged contaminated soil. Ecotoxicol. Environ. Saf. 2018, 148, 825–833. [Google Scholar] [CrossRef]
- Majeed, A.; Niaz, A.; Rizwan, M.; Imran, M.; Alsahli, A.A.; Alyemeni, M.N.; Ali, S. Effects of biochar, farm manure, and pressmud on mineral nutrients and cadmium availability to wheat (Triticum aestivum L.) in Cd-contaminated soil. Physiol. Plant. 2021, 173, 191–200. [Google Scholar] [CrossRef]
- Khan, M.K.; Pandey, A.; Hamurcu, M.; Gezgin, S.; Athar, T.; Rajput, V.D.; Gupta, O.P.; Minkina, T. Insight into the prospects for nanotechnology in wheat biofortification. Biology 2021, 10, 1123. [Google Scholar] [CrossRef] [PubMed]
- Rizwan, M.; Ali, S.; Ali, B.; Adrees, M.; Arshad, M.; Hussain, A.; Zia Ur Rehman, M.; Waris, A.A. Zinc and iron oxide nanoparticles improved the plant growth and reduced the oxidative stress and cadmium concentration in wheat. Chemosphere 2019, 214, 269–277. [Google Scholar] [CrossRef]
- Adrees, M.; Khan, Z.S.; Hafeez, M.; Rizwan, M.; Hussain, K.; Asrar, M.; Alyemeni, M.N.; Wijaya, L.; Ali, S. Foliar exposure of zinc oxide nanoparticles improved the growth of wheat (Triticum aestivum L.) and decreased cadmium concentration in grains under simultaneous Cd and water deficient stress. Ecotoxicol Environ Saf 2021, 208, 111627. [Google Scholar] [CrossRef] [PubMed]
- Hussain, A.; Rizwan, M.; Ali, S.; Rehman, M.Z.U.; Qayyum, M.F.; Nawaz, R.; Ahmad, A.; Asrar, M.; Ahmad, S.R.; Alsahli, A.A.; et al. Combined use of different nanoparticles effectively decreased cadmium (Cd) concentration in grains of wheat grown in a field contaminated with Cd. Ecotoxicol. Environ. Saf. 2021, 215, 112139. [Google Scholar] [CrossRef] [PubMed]
- Khan, Z.S.; Rizwan, M.; Hafeez, M.; Ali, S.; Javed, M.R.; Adrees, M. The accumulation of cadmium in wheat (Triticum aestivum) as influenced by zinc oxide nanoparticles and soil moisture conditions. Environ. Sci. Pollut. Res. Int. 2019, 26, 19859–19870. [Google Scholar] [CrossRef] [PubMed]
- Noman, M.; Ahmed, T.; Hussain, S.; Niazi, M.B.K.; Shahid, M.; Song, F.M. Biogenic copper nanoparticles synthesized by using a copper-resistant strain Shigella flexneri SNT22 reduced the translocation of cadmium from soil to wheat plants. J. Hazard. Mater. 2020, 398, 123175. [Google Scholar] [CrossRef] [PubMed]
- Ali, S.; Rizwan, M.; Hussain, A.; Rehman, M.Z.U.; Ali, B.; Yousaf, B.; Wijaya, L.; Alyemeni, M.N.; Ahmad, P. Silicon nanoparticles enhanced the growth and reduced the cadmium accumulation in grains of wheat (Triticum aestivum L.). Plant Physiol. Biochem. 2019, 140, 1–8. [Google Scholar] [CrossRef] [PubMed]
- Vazquez, A.; Zawoznik, M.; Benavides, M.P.; Groppa, M.D. Azospirillum brasilense Az39 restricts cadmium entrance into wheat plants and mitigates cadmium stress. Plant Sci. 2021, 312, 111056. [Google Scholar] [CrossRef]
- Wang, X.H.; Wang, Q.; Nie, Z.W.; He, L.Y.; Sheng, X.F. Ralstonia eutropha Q2–8 reduces wheat plant above-ground tissue cadmium and arsenic uptake and increases the expression of the plant root cell wall organization and biosynthesis-related proteins. Environ. Pollut. 2018, 242, 1488–1499. [Google Scholar] [CrossRef]
- Cheng, C.; Wang, Q.; Wang, Q.X.; He, L.Y.; Sheng, X.F. Wheat-associated Pseudomonas taiwanensis WRS8 reduces cadmium uptake by increasing root surface cadmium adsorption and decreasing cadmium uptake and transport related gene expression in wheat. Environ. Pollut. 2021, 268, 115850. [Google Scholar] [CrossRef]
- Wang, X.H.; Luo, W.W.; Wang, Q.; He, L.Y.; Sheng, X.F. Metal(loid)-resistant bacteria reduce wheat Cd and As uptake in metal(loid)-contaminated soil. Environ. Pollut. 2018, 241, 529–539. [Google Scholar] [CrossRef] [PubMed]
- Wang, X.Y.; Liang, J.W.; Liu, Z.Y.; Kuang, Y.X.; Han, L.N.; Chen, H.; Xie, X.A.; Hu, W.T.; Tang, M. Transcriptional regulation of metal metabolism- and nutrient absorption-related genes in Eucalyptus grandis by arbuscular mycorrhizal fungi at different zinc concentrations. BMC Plant Biol. 2022, 22, 76. [Google Scholar] [CrossRef] [PubMed]
- Yang, X.; Qin, J.H.; Li, J.C.; Lai, Z.A.; Li, H.S. Upland rice intercropping with Solanum nigrum inoculated with arbuscular mycorrhizal fungi reduces grain Cd while promoting phytoremediation of Cd-contaminated soil. J. Hazard. Mater. 2021, 406, 124325. [Google Scholar] [CrossRef] [PubMed]
- Jamal-Abad, A.K.; Khara, J. Effects of arbuscular mycorrhizal fungus (Glomus veruciforme) on changes of some physiological parameters in cadmium treated wheat plants. Pak. J. Biol. Sci. 2007, 10, 4279–4282. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Shahabivand, S.; Maivan, H.Z.; Goltapeh, E.M.; Sharifi, M.; Aliloo, A.A. The effects of root endophyte and arbuscular mycorrhizal fungi on growth and cadmium accumulation in wheat under cadmium toxicity. Plant Physiol. Biochem. 2012, 60, 53–58. [Google Scholar] [CrossRef]
- Baghaie, A.H.; Aghili, F.; Jafarinia, R. Soil-indigenous arbuscular mycorrhizal fungi and zeolite addition to soil synergistically increase grain yield and reduce cadmium uptake of bread wheat (through improved nitrogen and phosphorus nutrition and immobilization of Cd in roots). Environ. Sci. Pollut. Res. 2019, 26, 30794–30807. [Google Scholar] [CrossRef]
- Xiao, R.; Ali, A.; Xu, Y.Q.; Abdelrahman, H.; Li, R.H.; Lin, Y.B.; Bolan, N.; Shaheen, S.M.; Rinklebe, J.; Zhang, Z.Q. Earthworms as candidates for remediation of potentially toxic elements contaminated soils and mitigating the environmental and human health risks: A review. Environ. Int. 2022, 158, 106924. [Google Scholar] [CrossRef]
- Wu, Y.; Chen, C.; Wang, G.; Xiong, B.; Zhou, W.; Xue, F.; Qi, W.; Qiu, C.; Liu, Z. Mechanism underlying earthworm on the remediation of cadmium-contaminated soil. Sci. Total Environ. 2020, 728, 138904. [Google Scholar] [CrossRef]
- Xiao, R.; Liu, X.Y.; Ali, A.; Chen, A.L.; Zhang, M.Y.; Li, R.H.; Chang, H.; Zhang, Z.Q. Bioremediation of Cd-spiked soil using earthworms (Eisenia fetida): Enhancement with biochar and Bacillus megatherium application. Chemosphere 2021, 264, 128517. [Google Scholar] [CrossRef]
- Lai, C.; Li, D.; Qin, J.; Li, J.; Yan, Z.; Chen, G.; Li, H. The migration of cadmium and lead in soil columns and their bioaccumulation in a multi-species soil system. Chemosphere 2021, 262, 127718. [Google Scholar] [CrossRef]
- Kaya, C.; Ashraf, M.; Alyemeni, M.N.; Ahmad, P. Responses of nitric oxide and hydrogen sulfide in regulating oxidative defence system in wheat plants grown under cadmium stress. Physiol. Plant. 2020, 168, 345–360. [Google Scholar] [CrossRef] [PubMed]
- Singh, S.; Prasad, S.M.; Sharma, S.; Dubey, N.K.; Ramawat, N.; Prasad, R.; Singh, V.P.; Tripathi, D.K.; Chauhan, D.K. Silicon and nitric oxide-mediated mechanisms of cadmium toxicity alleviation in wheat seedlings. Plant Physiol. Biochem. 2020, 140, 1–8. [Google Scholar] [CrossRef] [PubMed]
- Bashir, A.; Rizwan, M.; Zia Ur Rehman, M.; Zubair, M.; Riaz, M.; Qayyum, M.F.; Alharby, H.F.; Bamagoos, A.A.; Ali, S. Application of co-composted farm manure and biochar increased the wheat growth and decreased cadmium accumulation in plants under different water regimes. Chemosphere 2020, 246, 125809. [Google Scholar] [CrossRef] [PubMed]
- Ilyas, N.; Akhtar, N.; Yasmin, H.; Sahreen, S.; Hasnain, Z.; Kaushik, P.; Ahmad, A.; Ahmad, P. Efficacy of citric acid chelate and Bacillus sp. in amelioration of cadmium and chromium toxicity in wheat. Chemosphere 2022, 290, 133342. [Google Scholar] [CrossRef] [PubMed]
- Han, H.; Wu, X.; Bolan, N.; Kirkham, M.B.; Yang, J.; Chen, Z. Inhibition of cadmium uptake by wheat with urease-producing bacteria combined with sheep manure under field conditions. Chemosphere 2022, 293, 133534. [Google Scholar] [CrossRef]
- Zeshan, A.; Abdullah, M.; Adil, M.F.; Wei, D.; Noman, M.; Ahmed, T.; Sehar, S.; Ouyang, Y.; Shamsi, I.H. Improvement of morpho-physiological, ultrastructural and nutritional profiles in wheat seedlings through astaxanthin nanoparticles alleviating the cadmium toxicity. J. Hazard. Mater. 2022, 424, 126511. [Google Scholar] [CrossRef]
- Farooq, M.; Ullah, A.; Usman, M.; Siddique, K.H.M. Application of zinc and biochar help to mitigate cadmium stress in bread wheat raised from seeds with high intrinsic zinc. Chemosphere 2020, 260, 127652. [Google Scholar] [CrossRef]
Cd in Soil (mg/kg) | Cd in Wheat Grain (mg/kg) | Area | References |
---|---|---|---|
0.57 | 0.083–0.126 | Soda Springs, United States | [24] |
0.38 | 0.048–0.145 | Zhejiang province, China | [25] |
2.06 | 0.10–0.25 | Henan province, China | [26] |
0.099–1.007 | 0.006–0.179 | Kunshan, China | [27] |
Not reported | 0.9317 | Lahore, Pakistan | [28] |
0.21 | 0.015–0.083 | Sao Gotardo, Brazil | [29] |
3.20 | 0.01–0.03 | Qom, Iran | [30] |
Not reported | 0.003–0.07 | Sydney, Australia | [31] |
Country | Maximum Permitted Concentration of Grain Cd (mg/kg DW) | References |
---|---|---|
Australia | 0.05 | [19] |
Canada | 0.20 | [32,33] |
China | 0.10 | [27] |
Croatia | 0.20 | [34] |
European Union | 0.235 | [20] |
Iran | 0.20 | [30] |
Italy | 0.20 | [35,36] |
Japan | 0.20 | [37] |
New Zealand | 0.10 | [20] |
Pakistan | 0.10 | [28] |
Serbian | 0.20 | [38] |
United States | 0.20 | [33] |
Gene | Function | References |
---|---|---|
TaHsfA4a | Confer Cd tolerance by upregulating metallothionein gene expression | [101] |
TaHMA2 | Transport Cd2+ across membranes | [104] |
OsHMA3 | Reduce root-to-shoot Cd translocation in wheat and Cd accumulation in wheat grain | [105] |
TaHMA3 and TaVP1 | Increase Cd tolerance in wheat and reduce Cd translocation to aboveground parts | [39] |
TaCNR5 | Increase Cd translocation from roots to shoots | [106] |
TdSHN1 | Confer Cd tolerances by increasing activities of superoxide dismutase and catalases | [107] |
AetSRG1 | Decrease Cd accumulation and electrolyte leakage, increase reactive oxygen species production and promote the synthesis of endogenous salicylic acid through interacting with phenylalanine ammonia lyase | [108] |
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Zhou, M.; Li, Z. Recent Advances in Minimizing Cadmium Accumulation in Wheat. Toxics 2022, 10, 187. https://doi.org/10.3390/toxics10040187
Zhou M, Li Z. Recent Advances in Minimizing Cadmium Accumulation in Wheat. Toxics. 2022; 10(4):187. https://doi.org/10.3390/toxics10040187
Chicago/Turabian StyleZhou, Min, and Zhengguo Li. 2022. "Recent Advances in Minimizing Cadmium Accumulation in Wheat" Toxics 10, no. 4: 187. https://doi.org/10.3390/toxics10040187
APA StyleZhou, M., & Li, Z. (2022). Recent Advances in Minimizing Cadmium Accumulation in Wheat. Toxics, 10(4), 187. https://doi.org/10.3390/toxics10040187