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O'Shea, S.

Publications and source records attributed to O'Shea, S..

2 recordsLinked to original sources

Microbial community diversity predicts invasion resistance of freshwater biofilms against antibiotic-resistant bacteria

Rivers receive continuous inputs of antibiotic-resistant bacteria (ARB) from wastewater, agriculture, and other anthropogenic sources, yet it remains unclear whether the recipient ecological component and its microbial communities determine whether introduced ARB establish or disappear. Ecological invasion theory predicts that invasion success depends on biodiversity, community stability, and occupation of ecological niche space, but these mechanisms have rarely been evaluated together in natural microbial communities. Here, we challenged river biofilms collected from 20 sites in 12 European rivers across six countries with a model antibiotic-resistant Escherichia coli carrying a conjugative IncP-1 plasmid The invasion assays were carried out under standardized laboratory flume conditions. River biofilms differed markedly in their permissiveness to invasion despite identical invasion conditions. Higher bacterial diversity consistently accelerated invader loss rates, whereas communities containing more abundant and diverse close phylogenetic neighbours of the invader exhibited stronger exclusion during early biofilm establishment. Diversity loss during transition into the experimental system emerged as the strongest explanatory variable of invasion resistance prior to biofilm maturation, whereas Shannon diversity became the dominant predictor in mature communities. Integrating these complementary ecological dimensions substantially improved explanatory prediction of ARB persistence compared with individual predictors alone. Particularly invasion-resistant biofilms also exhibited distinct ecological community composition consistent with mature, structurally complex microbial assemblages. Together, our findings demonstrate that the establishment of ARB in the environment is not stochastic but can be predicted from measurable ecological properties of recipient microbiomes, highlighting microbial biodiversity and community organization as natural barriers to antimicrobial resistance dissemination.

microbiology↗

Condensate formation of the human RNA-binding protein SMAUG1 is controlled by its intrinsically disordered regions and interactions with 14-3-3 proteins

SMAUG1 is a human RNA-binding protein that is known to be dysregulated in a wide range of diseases. It is evolutionarily conserved and has been shown to form condensates containing translationally repressed RNAs. This indicates that condensation is central to proper SMAUG1 function; however, the factors governing condensation are largely unknown. In this work, we show that SMAUG1 drives the formation of liquid-like condensates in cells through its non-conventional C-terminal prion-like disordered region. We use biochemical assays to show that this liquid-liquid phase separation is independent of RNA binding and does not depend on other large, disordered regions that potentially harbor several binding sites for partner proteins. Using a combination of computational predictions, structural modeling, in vitro and in cell measurements, we also show that SMAUG1-driven condensation is negatively regulated by direct interactions with members of the 14-3-3 protein family. These interactions are mediated by four distinct phospho-regulated short linear motifs embedded in the disordered regions of SMAUG1, working synergistically. Interactions between SMAUG1 and 14-3-3 proteins drive the dissolution of condensates, alter the dynamics of the condensed state, and are likely to be intertwined with currently unknown regulatory mechanisms. Our results provide information on how SMAUG1 phase separation is regulated and the first known instance of 14-3-3 proteins being able to completely dissolve condensates by directly interacting with a phase separation driver, which might be a general mechanism in cells to regulate biological condensation. Graphical abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=96 SRC="FIGDIR/small/527857v1_ufig1.gif" ALT="Figure 1"> View larger version (25K): org.highwire.dtl.DTLVardef@868746org.highwire.dtl.DTLVardef@1b3318org.highwire.dtl.DTLVardef@1b78868org.highwire.dtl.DTLVardef@5c7e5e_HPS_FORMAT_FIGEXP M_FIG C_FIG HighlightsO_LISMAUG1 is a human RNA-binding protein capable of condensation with unknown regulation C_LIO_LIA prion-like domain of SMAUG1 drives condensation via liquid-liquid phase separation C_LIO_LISMAUG1 interacts with 14-3-3 proteins via four phospho-regulated short linear motifs C_LIO_LI14-3-3 interactions change the dynamics of SMAUG1 condensates, promoting their dissolution C_LIO_LIThis is the first described regulatory mechanism for SMAUG1-driven condensation C_LI

molecular biology↗