全部 标题 作者
关键词 摘要

OALib Journal期刊
ISSN: 2333-9721
费用:99美元

查看量下载量

Regulatory Effects of Exogenous Boron on Physiological Metabolism of Helianthus tuberosus under Aluminum Stress

DOI: 10.4236/oalib.1112698, PP. 1-13

Subject Areas: Cell Biology

Keywords: Aluminum Stress, Exogenous Boron, Phytoremediation of Soil, Mitigative Effect, Regulation of Physiology

Full-Text   Cite this paper   Add to My Lib

Abstract

With the acceleration of industrialization, soil pollution caused by acid deposition has gradually evolved into a major global ecological and environmental problem, among which aluminum acid stress has become one of the main environmental factors restricting plant growth and agricultural production in China. Jerusalem artilum is not only a cash crop with high utilization value in many fields, such as food and medicine, but also has ecological effects, such as environmental restoration. It has an obvious regulation effect on aluminum ions in soil, which can effectively reduce the harm of soil aluminum pollution and promote the growth of plants. Studies have shown that boron plays an important role in alleviating metal stress in plants and can effectively enhance the adaptability of plants to stress. Based on the current situation of soil aluminum pollution, this paper briefly discusses the biological characteristics of Jerusalem artichoke and its application value in the field of soil aluminum pollution control, comprehensively analyzes the mitigation effect of boron on plant stress and aims to lay a foundation for the research on the physiological response of Jerusalem artichoke in aluminum-polluted soil and the mitigation effect of exogenous boron. It provides a guarantee for the full utilization of the absorption capacity of aluminum ions, promotes the treatment process of soil aluminum pollution and improves the exploitation and utilization value of aluminate soil.

Cite this paper

Li, M. and Wu, X. (2024). Regulatory Effects of Exogenous Boron on Physiological Metabolism of Helianthus tuberosus under Aluminum Stress. Open Access Library Journal, 11, e2698. doi: http://dx.doi.org/10.4236/oalib.1112698.

References

[1]  Hu, X., Chen, F., Wine, M.L. and Fang, X. (2017) Increasing Acidity of Rain in Subtropical Tea Plantation Alters Aluminum and Nutrient Distributions at the Root-Soil Interface and in Plant Tissues. Plant and Soil, 417, 261-274. https://doi.org/10.1007/s11104-017-3256-3
[2]  Ali, S.R. (2021) Impacts of Acid Rain on Environment. Academicia: An International Multidisciplinary Research Journal, 11, 776-781. https://doi.org/10.5958/2249-7137.2021.02669.0
[3]  Steiner, T., Zhang, Y., Möller, J.N., Agarwal, S., Löder, M.G.J., Greiner, A., et al. (2022) Municipal Biowaste Treatment Plants Contribute to the Contamination of the Environment with Residues of Biodegradable Plastics with Putative Higher Persistence Potential. Scientific Reports, 12, Article No. 9021. https://doi.org/10.1038/s41598-022-12912-z
[4]  Shao, Y., Yan, T., Wang, K., Huang, S., Yuan, W. and Qin, F.G.F. (2020) Soil Heavy Metal Lead Pollution and Its Stabilization Remediation Technology. Energy Reports, 6, 122-127. https://doi.org/10.1016/j.egyr.2020.11.074
[5]  Niu, Q. (2023) Overview of the Relationship between Aluminum Expo-sure and Human Health. In: Niu, Q., Ed., Neurotoxicity of Aluminum, Springer, 1-32. https://doi.org/10.1007/978-981-99-1592-7_1
[6]  Li, K., Lu, H., Nkoh, J.N. and Xu, R. (2023) The Important Role of Surface Hydroxyl Groups in Aluminum Activation during Phyllosilicate Mineral Acidification. Chemosphere, 313, Article ID: 137570. https://doi.org/10.1016/j.chemosphere.2022.137570
[7]  Chen, T.Q., Guo, Z. and Zhang, H.O. (2022) Research Progress of Heavy Metal Cotaminated Soil Remediation Technology. Scientific Journal of Humanities and Social Sciences, 4, 61-66.
[8]  Santos, E., Matos, M. and Benito, C. (2020) Isolation and Characterization of a New MATE Gene Located in the Same Chromosome Arm of the Aluminium Tolerance (Alt1) Rye Locus. Plant Biology, 22, 691-700. https://doi.org/10.1111/plb.13107
[9]  Costa, M.C.G. and Coutinho, í.A.C. (2022) Root Systems of Agricultural Crops and Their Response to Physical and Chemical Subsoil Constraints. In: Oliveira, T.S.D. and Bell, R.W., Eds., Subsoil Constraints for Crop Production, Springer, 225-261. https://doi.org/10.1007/978-3-031-00317-2_10
[10]  Yan, L., Riaz, M., Liu, J., Liu, Y., Zeng, Y. and Jiang, C. (2021) Boron Reduces Aluminum Deposition in Alkali-Soluble Pectin and Cytoplasm to Release Aluminum Toxicity. Journal of Hazardous Materials, 401, Article ID: 123388. https://doi.org/10.1016/j.jhazmat.2020.123388
[11]  Singh, S., Tripathi, D.K., Singh, S., Sharma, S., Dubey, N.K., Chau-han, D.K., et al. (2017) Toxicity of Aluminium on Various Levels of Plant Cells and Organism: A Review. Environmental and Experimental Botany, 137, 177-193. https://doi.org/10.1016/j.envexpbot.2017.01.005
[12]  Lopushnyak, V., Hrytsuliak, H., Kozova, I., Jakubowski, T., Kotsyubynska, Y., Polutrenko, M., et al. (2022) Biological Absorption of Chemical Elements in Topinambur Plants by Separation of Wastewater in Podzol Soil. Journal of Ecological Engineering, 23, 18-24. https://doi.org/10.12911/22998993/150648
[13]  Zhang, A., Han, D., Wang, Y., Mu, H., Zhang, T., Yan, X., et al. (2017) Transcriptomic and Proteomic Feature of Salt Stress-Regulated Network in Jerusalem Artichoke (Helianthus tuberosus L.) Root Based on De Novo Assembly Sequencing Analysis. Planta, 247, 715-732. https://doi.org/10.1007/s00425-017-2818-1
[14]  Blevins, D.G. and Lukaszewski, K.M. (1998) Boron in Plant Structure and Function. Annual Review of Plant Physiology and Plant Molecular Biology, 49, 481-500. https://doi.org/10.1146/annurev.arplant.49.1.481
[15]  Hajiboland, R., Bahrami-Rad, S. and Bastani, S. (2014) Aluminum Alleviates Boron-Deficiency Induced Growth Impairment in Tea Plants. Biologia plantarum, 58, 717-724. https://doi.org/10.1007/s10535-014-0425-6
[16]  O’Neill, M.A., Ishii, T., Albersheim, P. and Darvill, A.G. (2004) Rham-nogalacturonan II: Structure and Function of a Borate Cross-Linked Cell Wall Pectic Polysaccharide. Annual Review of Plant Biology, 55, 109-139. https://doi.org/10.1146/annurev.arplant.55.031903.141750
[17]  Lenoble, M.E., Blevins, D.G., Sharp, R.E. and Cumbie, B.G. (1996) Prevention of Aluminium Toxicity with Supplemental Boron. I. Maintenance of Root Elongation and Cellular Structure. Plant, Cell & Environment, 19, 1132-1142. https://doi.org/10.1111/j.1365-3040.1996.tb00428.x
[18]  Yang, Y., Gu, H., Fan, W. and Abdullahi, B.A. (2004) Effects of Boron on Aluminum Toxicity on Seedlings of Two Soybean Cultivars. Water, Air, & Soil Pollution, 154, 239-248. https://doi.org/10.1023/b:wate.0000022969.30022.6e
[19]  Dell, B. and Huang, L. (1997) Physiological Responses of Plants to Low Boron. Plant and Soil, 193, 103-120. https://doi.org/10.1023/a:1004264009230
[20]  Liu, G., Dong, X., Liu, L., Wu, L., Peng, S. and Jiang, C. (2014) Boron Deficiency Is Correlated with Changes in Cell Wall Structure That Lead to Growth Defects in the Leaves of Navel Orange Plants. Scientia Horticulturae, 176, 54-62. https://doi.org/10.1016/j.scienta.2014.06.036
[21]  Loomis, W.D. and Durst, R.W. (1992) Chemistry and Biology of Bo-ron. Biofactors, 3, 229-239.
[22]  Papadakis, I.E., Dimassi, K.N., Bosabalidis, A.M., Therios, I.N., Patakas, A. and Gianna-koula, A. (2004) Effects of B Excess on Some Physiological and Anatomical Parameters of ‘Navelina’ Orange Plants Grafted on Two Rootstocks. Environmental and Experimental Botany, 51, 247-257. https://doi.org/10.1016/j.envexpbot.2003.11.004
[23]  Mesquita, G.L., Zambrosi, F.C.B., Tanaka, F.A.O., Boaretto, R.M., Quaggio, J.A., Ribeiro, R.V., et al. (2016) Anatomical and Physiological Responses of Citrus Trees to Varying Boron Availabil-ity Are Dependent on Rootstock. Frontiers in Plant Science, 7, Article 224. https://doi.org/10.3389/fpls.2016.00224
[24]  Brown, P.H., Hu, H. and Roberts, W.G. (1999) Occurrence of Sugar Alco-hols Determines Boron Toxicity Symptoms of Ornamental Species. Journal of the American Society for Horticultural Science, 124, 347-352. https://doi.org/10.21273/jashs.124.4.347
[25]  Yang, L., Liu, J., Wu, Y., Qi, Y., Wang, J., Lai, N., et al. (2018) Proteome Profile Analysis of Boron-Induced Alleviation of Aluminum-Toxicity in Citrus Grandis Roots. Ecotoxicology and Environmental Safety, 162, 488-498. https://doi.org/10.1016/j.ecoenv.2018.07.028
[26]  Marschner, H., Römheld, V., Horst, W.J. and Martin, P. (1986) Root-Induced Changes in the Rhizosphere: Importance for the Mineral Nutrition of Plants. Zeitschrift für Pflanzenernährung und Bodenkunde, 149, 441-456. https://doi.org/10.1002/jpln.19861490408
[27]  Kidd, P.S., Llugany, M., Poschenrieder, C., Gunse, B. and Barcelo, J. (2001) The Role of Root Exudates in Aluminium Resistance and Silicon-Induced Amelioration of Aluminium Toxicity in Three Varieties of Maize (Zea Mays L.). Journal of Experimental Botany, 52, 1339-1352. https://doi.org/10.1093/jxb/52.359.1339
[28]  Degenhardt, J., Larsen, P.B., Howell, S.H. and Kochian, L.V. (1998) Alu-minum Resistance in the Arabidopsis Mutant alr-104 Is Caused by an Aluminum-Induced Increase in Rhizosphere pH. Plant Physiology, 117, 19-27. https://doi.org/10.1104/pp.117.1.19
[29]  Horst, W.J., Wang, Y. and Eticha, D. (2010) The Role of the Root Apoplast in Aluminium-Induced Inhibition of Root Elongation and in Aluminium Resistance of Plants: A Review. Annals of Botany, 106, 185-197. https://doi.org/10.1093/aob/mcq053
[30]  Riaz, M., Yan, L., Wu, X., Hussain, S., Aziz, O., Imran, M., et al. (2018) Boron Reduces Aluminum-Induced Growth Inhibition, Oxidative Damage and Alterations in the Cell Wall Components in the Roots of Trifoliate Orange. Ecotoxicology and Environmental Safety, 153, 107-115. https://doi.org/10.1016/j.ecoenv.2018.02.002
[31]  Yan, L., Riaz, M., Wu, X., Du, C., Liu, Y. and Jiang, C. (2018) Ameliora-tive Effects of Boron on Aluminum Induced Variations of Cell Wall Cellulose and Pectin Components in Trifoliate Orange (Poncirus trifoliate (L.) Raf.) Rootstock. Environmental Pollution, 240, 764-774. https://doi.org/10.1016/j.envpol.2018.05.022
[32]  Riaz, M., Yan, L., Wu, X., Hussain, S., Aziz, O. and Jiang, C. (2018) Boron Increases Root Elongation by Reducing Aluminum Induced Disorganized Distribution of HG Epitopes and Alterations in Subcellular Cell Wall Structure of Trifoliate Orange Roots. Ecotoxicology and Environmental Safety, 165, 202-210. https://doi.org/10.1016/j.ecoenv.2018.09.004
[33]  Riaz, M., Yan, L., Wu, X., Hussain, S., Aziz, O., Wang, Y., et al. (2018) Boron Alleviates the Aluminum Toxicity in Trifoliate Orange by Regulating Antioxidant Defense System and Reducing Root Cell Injury. Journal of Environmental Management, 208, 149-158. https://doi.org/10.1016/j.jenvman.2017.12.008
[34]  Yan, L., Riaz, M., Wu, X., Du, C., Liu, Y., Lv, B., et al. (2018) Boron Inhibits Aluminum-Induced Toxicity to Citrus by Stimulating Antioxidant Enzyme Activity. Journal of Environmental Science and Health, Part C, 36, 145-163. https://doi.org/10.1080/10590501.2018.1490513
[35]  Yan, L., Riaz, M., Du, C., Liu, Y., Zeng, Y. and Jiang, C. (2019) Ameliorative Role of Boron to Toxicity of Aluminum in Trifoliate Orange Roots. Ecotoxicology and Environmental Safety, 179, 212-221. https://doi.org/10.1016/j.ecoenv.2019.04.054
[36]  Inostroza-Blancheteau, C., Rengel, Z., Alberdi, M., de la Luz Mora, M., Aquea, F., Arce-Johnson, P., et al. (2011) Molecular and Physiological Strategies to Increase Aluminum Resistance in Plants. Molecular Biology Reports, 39, 2069-2079. https://doi.org/10.1007/s11033-011-0954-4
[37]  Zhu, C.Q., Cao, X.C., Zhu, L.F., Hu, W.J., Hu, A.Y., Abliz, B., et al. (2019) Boron Reduces Cell Wall Aluminum Content in Rice (Oryza sativa) Roots by Decreasing H2O2 Accumulation. Plant Physiology and Biochemistry, 138, 80-90. https://doi.org/10.1016/j.plaphy.2019.02.022
[38]  Dyar, J.J. and Webb, K.L. (1961) A Relationship between Boron & Auxin in C14 Translocation in Bean Plants. Plant Physiology, 36, 672-676. https://doi.org/10.1104/pp.36.5.672
[39]  Fackler, U., Goldbach, H., Weiler, E.W. and Amberger, A. (1985) Influence of Boron-Deficiency on Indol-3yl-Acetic Acid and Abscisic Acid Levels in Root and Shoot Tips. Journal of Plant Physiology, 119, 295-299. https://doi.org/10.1016/s0176-1617(85)80096-1

Full-Text


Contact Us

[email protected]

QQ:3279437679

WhatsApp +8615387084133