First Lysine Lactylation Profiling in Vibrio alginolyticus and Initial Characterization of VaCobQ as a Candidate Delactylase
Abstract
1. Introduction
2. Materials and Methods
2.1. Bacterial Strains and Protein Extraction
2.2. Immunoaffinity Enrichment of Lysine Lactylated Peptides
2.3. LC-MS/MS Analysis
2.4. Database Search
2.5. Cloning the cobQ Gene from Vibrio alginolyticus
2.6. Bioinformatics
2.7. CO-IP and Western Blot
3. Result and Discussion
3.1. Identification of Lysine-Lactylated Peptides and Proteins in V. alginolyticus
3.2. Analysis of Lactylated-Lysine Sequence Motifs
3.3. Functional Annotation of Lysine Lactylated Proteins in Vibrio alginolyticus
3.4. Protein Domain Enrichment Analysis and Subcellular Localization Analysis
3.5. Validation of CRP and TPI Lysine-Lactylated Proteins Using Co-Immunoprecipitation and Western Blotting
3.6. Overlap Between Lysine Lactylation, Succinylation and Acetylation in V. alginolyticus
3.7. Lactylated Proteins of Vibrio alginolyticus in Central Metabolic Pathways
3.8. Protein–Protein Interaction Network of Lysine-Lactylated Proteins in Vibrio alginolyticus
3.9. Identification of Kla Sites on T3SS Regulatory Proteins
3.10. VaCobQ: A Candidate Delactylase with No Homology to Known Sirtuin Family Deacylases
3.11. In Vitro and In Vivo Evidence Suggesting a Role for VaCobQ in Delactylation
Supplementary Materials
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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| Gene Name | Protein Description | Overlap Site |
|---|---|---|
| purT | Formate-dependent phosphoribosylglycinamide formyltransferase | [K340] |
| pepA | Probable cytosol aminopeptidase | [K262] |
| pnp | Polyribonucleotide nucleotidyltransferase | [K532] |
| sucB | Dihydrolipoyllysine-residue succinyltransferase component of 2-oxoglutarate dehydrogenase complex | [K153] |
| pyrD | Dihydroorotate dehydrogenase (quinone) | [K207] |
| Protein Name | Protein Description | Kla Sites | Sources |
|---|---|---|---|
| CRP | cAMP-activated global transcriptional regulator | [K5;K23;K27;K36;K53;K90;K101;K153;167;K189;K202] | [32] |
| PhoB | Two-component sensor | [K91;K105;K110;K204;K213] | [31] |
| PhoR | Two-component sensor | [K154;K304] | [31] |
| AphB | Regulator | [K2;K24;K54;K94;K103;K203;K271;K277] | [33] |
| Hfq | sRNA chaperone protein | [K3] | [34] |
| H-NS | Regulator | [K6;K57;K99;K108] | [33] |
| Fur | Ferric uptake regulator protein | [K59;K151] | [31] |
| RpoN | Regulator | [K2;K265;K298;K310;K312;K339;K343;K354;K400;K438;K447] | [35] |
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Zhang, Y.; Wei, Z.; Fan, J.; Zhang, W.; Yang, S.; Jian, J.; Wang, N.; Wei, J.; Pang, H. First Lysine Lactylation Profiling in Vibrio alginolyticus and Initial Characterization of VaCobQ as a Candidate Delactylase. Microorganisms 2026, 14, 926. https://doi.org/10.3390/microorganisms14040926
Zhang Y, Wei Z, Fan J, Zhang W, Yang S, Jian J, Wang N, Wei J, Pang H. First Lysine Lactylation Profiling in Vibrio alginolyticus and Initial Characterization of VaCobQ as a Candidate Delactylase. Microorganisms. 2026; 14(4):926. https://doi.org/10.3390/microorganisms14040926
Chicago/Turabian StyleZhang, Yujia, Zhiqing Wei, Jiaxin Fan, Weijie Zhang, Shuai Yang, Jichang Jian, Na Wang, Jianyi Wei, and Huanying Pang. 2026. "First Lysine Lactylation Profiling in Vibrio alginolyticus and Initial Characterization of VaCobQ as a Candidate Delactylase" Microorganisms 14, no. 4: 926. https://doi.org/10.3390/microorganisms14040926
APA StyleZhang, Y., Wei, Z., Fan, J., Zhang, W., Yang, S., Jian, J., Wang, N., Wei, J., & Pang, H. (2026). First Lysine Lactylation Profiling in Vibrio alginolyticus and Initial Characterization of VaCobQ as a Candidate Delactylase. Microorganisms, 14(4), 926. https://doi.org/10.3390/microorganisms14040926

