Membrane Proteomics to Understand Enhancement Effects of Millimeter-Wave Irradiation on Wheat Root under Flooding Stress
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Published:2023-05-19
Issue:10
Volume:24
Page:9014
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ISSN:1422-0067
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Container-title:International Journal of Molecular Sciences
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language:en
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Short-container-title:IJMS
Author:
Komatsu Setsuko1ORCID, Hamada Kazuna1, Furuya Takashi2, Nishiuchi Takumi3ORCID, Tani Masahiko2
Affiliation:
1. Faculty of Environment and Information Sciences, Fukui University of Technology, Fukui 910-8505, Japan 2. Research Center for Development of Far-Infrared Region, University of Fukui, Fukui 910-8507, Japan 3. Institute for Gene Research, Kanazawa University, Kanazawa 920-8640, Japan
Abstract
Millimeter-wave irradiation of wheat seeds enhances the growth of roots under flooding stress, but its mechanism is not clearly understood. To understand the role of millimeter-wave irradiation on root-growth enhancement, membrane proteomics was performed. Membrane fractions purified from wheat roots were evaluated for purity. H+-ATPase and calnexin, which are protein markers for membrane-purification efficiency, were enriched in a membrane fraction. A principal-component analysis of the proteomic results indicated that the millimeter-wave irradiation of seeds affects membrane proteins in grown roots. Proteins identified using proteomic analysis were confirmed using immunoblot or polymerase chain reaction analyses. The abundance of cellulose synthetase, which is a plasma-membrane protein, decreased under flooding stress; however, it increased with millimeter-wave irradiation. On the other hand, the abundance of calnexin and V-ATPase, which are proteins in the endoplasmic reticulum and vacuolar, increased under flooding stress; however, it decreased with millimeter-wave irradiation. Furthermore, NADH dehydrogenase, which is found in mitochondria membranes, was upregulated due to flooding stress but downregulated following millimeter-wave irradiation even under flooding stress. The ATP content showed a similar trend toward change in NADH dehydrogenase expression. These results suggest that millimeter-wave irradiation improves the root growth of wheat via the transitions of proteins in the plasma membrane, endoplasmic reticulum, vacuolar, and mitochondria.
Funder
Cooperative Research Program of Research Center for Development of Far-Infrared Region, University of Fukui
Subject
Inorganic Chemistry,Organic Chemistry,Physical and Theoretical Chemistry,Computer Science Applications,Spectroscopy,Molecular Biology,General Medicine,Catalysis
Reference57 articles.
1. Lewandowski, J. (2001). Physical Control Methods in Plant Protection, Springer. 2. Zhong, Z., Wang, X., Yin, X., Tian, J., and Komatsu, S. (2021). Morphophysiological and proteomic responses on plants of irradiation with electromagnetic waves. Int. J. Mol. Sci., 22. 3. Microwave irradiation effects on vermicasts potency, and plant growth and antioxidant activity in seedlings of Chinese cabbage (Brassica rapa subsp. pekinensis);Abbey;J. Radiat. Res. Appl. Sci.,2017 4. Microwave irradiation and citric acid assisted seed germination and phytoextraction of nickel (Ni) by Brassica napus L.: Morpho-physiological and biochemical alterations under Ni stress;Farid;Environ. Sci. Pollut. Res. Int.,2017 5. Farid, M., Abubakar, M., Asam, Z.U.Z., Sarfraz, W., Abbas, M., Shakoor, M.B., Ali, S., Ahmad, S.R., Jilani, A., and Iqbal, J. (2022). Microwave irradiation and glutamic acid-assisted phytotreatment of tannery and surgical industrial wastewater by sorghum. Molecules, 27.
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