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Biology subjects

Avellan, R.

Publications and source records attributed to Avellan, R..

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↗

Chemical coupling of biological magnetosomes with amine-functionalized therapeutic antibody conjugates

BackgroundImmunotherapy, particularly in cancer treatment, can be enhanced using antibody-drug or antibody-radionuclide conjugates. These conjugates disrupt cell signaling and induce cell death, requiring the targeted antigen to be highly expressed on tumor cells to avoid damage to healthy tissues. A promising strategy to improve delivery is the use of magnetosomes, biological magnetic nanoparticles, which can be guided to tumor sites using magnetic fields. However, most antibody-drug or antibody-radionuclide conjugates are functionalized using the antibody amine groups of the lysine residues on the heavy chains. Therefore, these amine groups are no longer available to bind the antibodies to the magnetosomes. ResultsHere, we explore an alternative approach to bind amine-functionalized antibodies to magnetosomes. Using SulfoSuccinimidyl-4-(N-Maleimidomethyl)Cyclohexane-1-Carboxylate (S-SMCC) as a crosslinker, the antibodies are chemically attached to the magnetosome membrane via thiol groups through antibody partial reduction. Our results demonstrate that this chemical process preserves the integrity and functionality of both magnetosomes and antibodies. Moreover, we prove that the produced magnetosome-antibody conjugates are stable under various in vivo-like conditions. ConclusionThis coupling method offers significant advantages, enabling the coupling of therapeutic molecules to antibodies combined with the magnetic properties of magnetosomes. This new strategy aims to improve cancer therapy through targeted delivery and rapid accumulation at tumor sites.

bioengineering↗