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Lueckel, B.

Publications and source records attributed to Lueckel, B..

2 recordsLinked to original sources

Context-dependent siderophore exploitability shapes microbial community structure

1)Siderophores are classically viewed as shared iron-scavenging public goods, yet their ecological roles in multispecies communities remain poorly defined. Here, we establish a synthetic microbial community to dissect how different siderophores, their uptake compatibility and spatial structure shape iron competition. Using Corynebacterium glutamicum as a model, we show that this siderophore non-producer accesses diverse xenosiderophores, including enterobactin secreted by Escherichia coli. However, exploitation was constrained and co-cultures converged to stable compositions. Dose-response experiments combined with mathematical modelling indicated that the producer retains more effective access to enterobactin than the exploiter. Presence of Pseudomonas putida altered this interaction, as it exploited enterobactin while producing pyoverdine, a siderophore inaccessible to the other community members that restricted their iron access. Across different cultivation scales, community dynamics was strongly influenced by spatial organization and initial composition. These findings identify siderophores as context-dependent iron-allocation agents that can promote microbial coexistence or exclusion.

microbiology↗

A novel biosensor for ferrous iron developed via CoBiSe:A computational method for rapid biosensor design

Genetically encoded biosensors enable monitoring of metabolite dynamics in living organisms. We present CoBiSe, a computational approach using Constraint Network Analysis to identify optimal insertion sites for reporter modules in molecular recognition elements (MREs). Applied to the iron-binding protein DtxR from Corynebacterium glutamicum, CoBiSe identified a flexible connective loop (residues 138-150) for inserting the reporter module, resulting in IronSenseR, a novel ratiometric biosensor for ferrous iron (Fe{superscript 2}). IronSenseR demonstrates high specificity for Fe{superscript 2} with dissociation constants of 1.55 {+/-} 0.08 {micro}M (FeSO4) and 2.44 {+/-} 0.28 {micro}M (FeCl2), while showing no binding to Fe3 and other divalent cations. In vivo assessment in Escherichia coli, Pseudomonas putida and Corynebacterium glutamicum confirmed IronSenseRs capability to detect changes in the intracellular iron pool. The creation of IronSenseR underlines that, by reducing search space and eliminating labor-intensive screening, CoBiSe streamlines biosensor development and enables precise creation of next-generation biosensors for diverse metabolites.

bioengineering↗