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The Lysine Acetylation Modification in the Porin Aha1 of Aeromonas hydrophila Regulates the Uptake of Multidrug Antibiotics

Protein lysine acetylation (Kac) modification plays important roles in diverse physiological functions. However, there is little evidence on the role of Kac modification in bacterial antibiotic resistance. Here, we compared the differential expressions of whole-cell proteins and Kac peptides in oxyt...

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Autores principales: Zhang, Lishan, Yao, Zujie, Tang, Huamei, Song, Qingli, Song, Huanhuan, Yao, Jindong, Li, Zhen, Xie, Xiaofang, Lin, Yuexu, Lin, Xiangmin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Biochemistry and Molecular Biology 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9386498/
https://www.ncbi.nlm.nih.gov/pubmed/35605723
http://dx.doi.org/10.1016/j.mcpro.2022.100248
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author Zhang, Lishan
Yao, Zujie
Tang, Huamei
Song, Qingli
Song, Huanhuan
Yao, Jindong
Li, Zhen
Xie, Xiaofang
Lin, Yuexu
Lin, Xiangmin
author_facet Zhang, Lishan
Yao, Zujie
Tang, Huamei
Song, Qingli
Song, Huanhuan
Yao, Jindong
Li, Zhen
Xie, Xiaofang
Lin, Yuexu
Lin, Xiangmin
author_sort Zhang, Lishan
collection PubMed
description Protein lysine acetylation (Kac) modification plays important roles in diverse physiological functions. However, there is little evidence on the role of Kac modification in bacterial antibiotic resistance. Here, we compared the differential expressions of whole-cell proteins and Kac peptides in oxytetracycline sensitive and oxytetracycline resistance (OXY(R)) strains of Aeromonas hydrophila using quantitative proteomics technologies. We observed a porin family protein Aha1 downregulated in the OXY(R) strain, which may have an important role in the OXY resistance. Interestingly, seven of eight Kac peptides of Aha1 decreased abundance in OXY(R) as well. Microbiologic assays showed that the K57R, K187R, and K197R Aha1 mutants significantly increased antibiotic resistance to OXY and reduced the intracellular OXY accumulation in OXY stress. Moreover, these Aha1 mutants displayed multidrug resistance features to tetracyclines and β-lactam antibiotics. The 3D model prediction showed that the Kac states of K57, K187, and K197 sites located at the extracellular pore vestibule of Aha1 may be involved in the uptake of specific types of antibiotics. Overall, our results indicate a novel antibiotic resistance mechanism mediated by Kac modification, which may provide a clue for the development of antibiotic therapy strategies.
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spelling pubmed-93864982022-08-22 The Lysine Acetylation Modification in the Porin Aha1 of Aeromonas hydrophila Regulates the Uptake of Multidrug Antibiotics Zhang, Lishan Yao, Zujie Tang, Huamei Song, Qingli Song, Huanhuan Yao, Jindong Li, Zhen Xie, Xiaofang Lin, Yuexu Lin, Xiangmin Mol Cell Proteomics Research Protein lysine acetylation (Kac) modification plays important roles in diverse physiological functions. However, there is little evidence on the role of Kac modification in bacterial antibiotic resistance. Here, we compared the differential expressions of whole-cell proteins and Kac peptides in oxytetracycline sensitive and oxytetracycline resistance (OXY(R)) strains of Aeromonas hydrophila using quantitative proteomics technologies. We observed a porin family protein Aha1 downregulated in the OXY(R) strain, which may have an important role in the OXY resistance. Interestingly, seven of eight Kac peptides of Aha1 decreased abundance in OXY(R) as well. Microbiologic assays showed that the K57R, K187R, and K197R Aha1 mutants significantly increased antibiotic resistance to OXY and reduced the intracellular OXY accumulation in OXY stress. Moreover, these Aha1 mutants displayed multidrug resistance features to tetracyclines and β-lactam antibiotics. The 3D model prediction showed that the Kac states of K57, K187, and K197 sites located at the extracellular pore vestibule of Aha1 may be involved in the uptake of specific types of antibiotics. Overall, our results indicate a novel antibiotic resistance mechanism mediated by Kac modification, which may provide a clue for the development of antibiotic therapy strategies. American Society for Biochemistry and Molecular Biology 2022-05-21 /pmc/articles/PMC9386498/ /pubmed/35605723 http://dx.doi.org/10.1016/j.mcpro.2022.100248 Text en © 2022 The Authors https://creativecommons.org/licenses/by/4.0/This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Research
Zhang, Lishan
Yao, Zujie
Tang, Huamei
Song, Qingli
Song, Huanhuan
Yao, Jindong
Li, Zhen
Xie, Xiaofang
Lin, Yuexu
Lin, Xiangmin
The Lysine Acetylation Modification in the Porin Aha1 of Aeromonas hydrophila Regulates the Uptake of Multidrug Antibiotics
title The Lysine Acetylation Modification in the Porin Aha1 of Aeromonas hydrophila Regulates the Uptake of Multidrug Antibiotics
title_full The Lysine Acetylation Modification in the Porin Aha1 of Aeromonas hydrophila Regulates the Uptake of Multidrug Antibiotics
title_fullStr The Lysine Acetylation Modification in the Porin Aha1 of Aeromonas hydrophila Regulates the Uptake of Multidrug Antibiotics
title_full_unstemmed The Lysine Acetylation Modification in the Porin Aha1 of Aeromonas hydrophila Regulates the Uptake of Multidrug Antibiotics
title_short The Lysine Acetylation Modification in the Porin Aha1 of Aeromonas hydrophila Regulates the Uptake of Multidrug Antibiotics
title_sort lysine acetylation modification in the porin aha1 of aeromonas hydrophila regulates the uptake of multidrug antibiotics
topic Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9386498/
https://www.ncbi.nlm.nih.gov/pubmed/35605723
http://dx.doi.org/10.1016/j.mcpro.2022.100248
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