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Dynamic Lysine Acetylation Disrupts Isocitrate Lyase Function and Enables Metabolic Optimisation

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dc.contributor.author Martínez-Vivancos, Adrián
dc.contributor.author Gomariz-Turpin, Beatriz
dc.contributor.author Lozano-Terol, Gema
dc.contributor.author Sola-Martínez, Rosa-Alba
dc.contributor.author Ortega, Álvaro
dc.contributor.author Gallego-Jara, Julia
dc.contributor.author de-Diego-Puente, Teresa
dc.date.accessioned 2026-04-06T11:08:17Z
dc.date.available 2026-04-06T11:08:17Z
dc.date.issued 2026-04
dc.identifier.citation Martínez-Vivancos A, Gomariz-Turpin B, Lozano-Terol G, Sola-Martínez RA, Ortega Á, Gallego-Jara J, et al. Dynamic Lysine Acetylation Disrupts Isocitrate Lyase Function and Enables Metabolic Optimisation. Microbial Biotechnology. abril de 2026;19(4):e70334. doi:10.1111/1751-7915.70334
dc.identifier.uri https://sms.carm.es/ricsmur/handle/123456789/25734
dc.description.abstract Proteomic studies have suggested that Escherichia coli isocitrate lyase (ICL) undergoes multiple acetylation events, partially inhibiting its activity. However, the molecular basis of this regulation and the contribution of individual lysine residues had not been defined. This study demonstrates that acetylation of ICL in E. coli is acetyl-phosphate-dependent and reversible by the CobB deacetylase, establishing a key post-translational regulatory mechanism within the glyoxylate shunt. Site-specific acetylation at K13 and K308 inhibits ICL activity by destabilising the tetrameric assembly and rendering the protein more prone to degradation, whereas lysine-to-arginine substitutions at these positions alleviate this inhibition, enhancing carbon flux distribution, metabolic flexibility and biomass yield without the burden of plasmid-based overexpression. Leveraging this regulatory insight, a KR mutant bearing lysine-to-arginine substitutions at residues 13 and 308, engineered directly into the chromosomal aceA gene, maintained wild-type growth rates while reducing acetate overflow and improving metabolic balance during glucose depletion and acetate assimilation, leading to a 61% increase in lycopene production. These findings highlight regulatory-based metabolic engineering as a powerful strategy to optimise bioproduction and pave the way for extending this approach to other central metabolic enzymes to develop robust microbial cell factories for the sustainable synthesis of biofuels, biochemicals and high-value compounds.
dc.language.iso eng
dc.publisher WILEY
dc.rights Atribución/Reconocimiento 4.0 Internacional
dc.rights.uri https://creativecommons.org/licenses/by/4.0/deed.es *
dc.subject.mesh Isocitrate Lyase/metabolism/genetics
dc.subject.mesh Escherichia coli/genetics/enzymology/metabolism/growth & development
dc.subject.mesh Lysine/metabolism
dc.subject.mesh Acetylation
dc.subject.mesh Escherichia coli Proteins/metabolism/genetics
dc.subject.mesh Metabolic Engineering
dc.subject.mesh Protein Processing, Post-Translational
dc.subject.mesh Sirtuins
dc.title Dynamic Lysine Acetylation Disrupts Isocitrate Lyase Function and Enables Metabolic Optimisation
dc.type info:eu-repo/semantics/article 
dc.identifier.pmid 41910453
dc.relation.publisherversion https://sfamjournals.onlinelibrary.wiley.com/doi/10.1111/1751-7915.70334
dc.type.version info:eu-repo/semantics/publishedVersion 
dc.identifier.doi 10.1111/1751-7915.70334
dc.journal.title Microbial Biotechnology
dc.identifier.essn 1751-7915


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