Study on a Mechanism of Improving MaAPX1 Protein Activity by Mutating Methionine to Lysine
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Published:2024-07-14
Issue:7
Volume:13
Page:843
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ISSN:2076-3921
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Container-title:Antioxidants
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language:en
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Short-container-title:Antioxidants
Author:
Xiao Lu12, Jiang Guoxiang1ORCID, Lai Hongmei1, Duan Xiaoyan1, Yan Huiling3, Chen Shaoge1, Chen Zexin4ORCID, Duan Xuewu1
Affiliation:
1. Guangdong Provincial Key Laboratory of Applied Botany, South China Botanical Garden, Chinese Academy of Sciences, Guangzhou 510650, China 2. Institute of Quality Standard and Monitoring Technology for Agro-Products of Guangdong Academy of Agricultural Sciences, Guangzhou 510640, China 3. School of Food and Biological Engineering, Chengdu University, Chengdu 610106, China 4. Accurate International Biotechnology Co., Ltd., Guangzhou 510535, China
Abstract
Ascorbate peroxidases (APXs) are key components of the ascorbate–glytathione cycle, which plays an important role in removing excess reactive oxygen species (ROS) in plants. Herein, MaAPX1 was verified as being involved in the ripening and senescence of banana fruit, exhibiting responsiveness to the accumulation of ROS and the oxidation of proteins. Site-directed mutation was applied to explore the mechanism of MaAPX1 activity changes. We found that the 32-site cysteine (Cys, C) served as a potential S-nitrosylation site. The mutant MaAPX1C32S activity was decreased significantly when Cys32 was mutated to serine (Ser, S). Intriguingly, the neighboring conserved 36-site methionine (Met, M), which is adjacent to Cys32, displayed an enzyme activity that was approximately five times higher than that of the wild-type MaAPX1 when mutated to lysine (Lys, K). Utilizing LC-MS/MS spectroscopy coupled with stopped-flow analysis showed that the enhanced MaAPX1M36K activity might be due to the increased S-nitrosylation level of Cys32 and the promotion of intermediate (compound I, the first intermediate product of the reaction of APX with H2O2) production. Molecular docking simulations showed that the S-N bond between Cys32 and Lys36 in MaAPX1M36K might have a function in protecting the thiol of Cys32 from oxidation. MaAPX1M36K, a promising mutant, possesses immense potential for improving the antioxidant capabilities of APX in the realm of bioengineering technology research.
Funder
National Natural Science Foundation of China Natural Science Foundation of Basic and Applied Basic Research of Guangdong Province Special Fund for Scientific Innovation Strategy-Construction of High-level Academy of Agriculture Science Youth Mentorship Program of Guangdong Academy of Agricultural Sciences
Reference41 articles.
1. Postharvest H2O2 treatment affects flavor quality, texture quality and ROS metabolism of ‘Hongshi’ kiwifruit fruit kept at ambient conditions;Yan;Food Chem.,2023 2. Juan, C.A., Pérez de la Lastra, J.M., Plou, F.J., and Pérez-Lebeña, E. (2021). The chemistry of Reactive Oxygen Species (ROS) revisited: Outlining their role in biological macromolecules (DNA, Lipids and Proteins) and induced pathologies. Int. J. Mol. Sci., 22. 3. Rohman, M.M., Islam, M.R., Monsur, M.B., Amiruzzaman, M., Fujita, M., and Hasanuzzaman, M. (2019). Trehalose protects Maize plants from salt stress and phosphorus deficiency. Plants, 8. 4. Hamurcu, M., Khan, M.K., Pandey, A., Ozdemir, C., Avsaroglu, Z.Z., Elbasan, F., Omay, A.H., and Gezgin, S. (2020). Nitric oxide regulates watermelon (Citrullus lanatus) responses to drought stress. 3 Biotech., 10. 5. Rahman, M., Rahman, K., Sathi, K.S., Alam, M.M., Nahar, K., Fujita, M., and Hasanuzzaman, M. (2021). Supplemental selenium and boron mitigate salt-induced oxidative damages in Glycine max L.. Plants, 10.
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