bioRxiv Science⌕ Search

Biology subjects

Lorentzen, O. M.

Publications and source records attributed to Lorentzen, O. M..

2 recordsLinked to original sources

Biofilm selection constitutively activates c-di-GMP synthesis by the bifunctional enzyme MbaA

Biofilms, in which microbes are encased within a self-produced matrix, represent the primary mode of microbial life. Yet, our understanding of the molecular mechanisms governing biofilm formation remains incomplete, limiting the development of targeted interventions against biofilm-associated infections. By selecting for Vibrio cholerae biofilms, we identified mutations in the polyamine-regulated, bifunctional enzyme MbaA that alter its enzymatic activity in metabolizing the conserved second messenger cyclic diguanylate (c-di-GMP). These mutations occur in both the c-di-GMP-producing GGDEF domain and the c-di-GMP- hydrolyzing EAL domain of MbaA. Mutagenesis and enzyme kinetic analyses revealed regulatory crosstalk between these domains, where mutations in either domain enhanced production of c-di-GMP by MbaA while concurrently reducing its hydrolytic activity. In the wild- type enzyme, c-di-GMP metabolism is regulated by specific polyamines. Biofilm-evolved mutations not only shift MbaAs enzymatic activity but also disrupt this post-translational regulation, rendering the enzyme insensitive to external polyamine signaling. Our findings illustrate how evolutionary pressure can rewire existing enzymes, driving a transition from a planktonic to a biofilm-associated lifestyle.

microbiology↗

The Biofilm Lifestyle Shapes the Evolution of β-Lactamases

The evolutionary relationship between the biofilm lifestyle and antibiotic resistance enzymes remains a subject of limited understanding. Here, we investigate how {beta}-lactamases affect biofilm formation in Vibrio cholerae and how selection for a biofilm lifestyle impacts the evolution of these enzymes. Seven genetically diverse {beta}-lactamases expressed in V. cholerae displayed a strong inhibitory effect on biofilm production, ranging from 17% to 61%. To understand how natural evolution affects this antagonistic pleiotropy under biofilm selecting conditions, we randomly mutagenized one {beta}-lactamase and selected for elevated biofilm formation. Our results revealed that biofilm evolution selects for mutations predominantly clustered around the {beta}-lactamases active site, yielding functional variants still proficient in {beta}-lactam hydrolysis without biofilm inhibition. Mutational analysis of evolved variants demonstrated that restoration of biofilm development could be achieved either independent of enzymatic function or by actively leveraging enzymatic activity to increase biofilm formation. Taken together, the biofilm lifestyle can impose a profound selective pressure on antimicrobial resistance enzymes. Shedding light on such evolutionary interplays is of great importance to understand the various factors driving antimicrobial resistance. Impact statement{beta}-lactamases inhibit biofilm formation and the selection for increased biofilm production can mitigate this antagonistic pleiotropic effect. The emergence of {beta}-lactamase variants avoiding biofilm inhibition strongly suggests that the biofilm lifestyle affects the evolutionary fate of these enzymes.

microbiology↗