Abstract
ABSTRACTBacterial membranes are complex mixtures with dispersity that is dynamic over scales of both space and time. In order to capture adsorption onto and transport within these mixtures, we conduct simultaneous second harmonic generation (SHG) and two photon fluorescence measurements on two different gram-positive bacterial species as the cells uptake membrane-specific probe molecules. Our results show that SHG can not only monitor the movement of small molecules across membrane leaflets, but is also sensitive to higher-level ordering of the molecules within the membrane. Further, we show that the membranes of Staphylococcus aureus remain more dynamic after longer times at room temperature in comparison to Enterococcus faecalis. Our findings provide insight into the variability of activities seen between structurally similar molecules in gram-positive bacteria while also demonstrating the power of SHG to examine these dynamics.STATEMENT OF SIGNIFICANCEBacterial membranes are highly adept at discerning and modifying their interactions with different small molecules in their environment. Here we show how second harmonic generation (SHG) spectroscopy can track the dynamics of structurally similar membrane probes in two gram-positive bacterial species. Our results reveal behavior that is dependent on both the probe molecule and the membrane composition. Specifically, we observe flip-flop between leaflets for one molecule, while the other molecule produces a signal indicative of larger scale ordering in the membrane. These phenomena can all be explained by considering potential differences in the membrane fluidity and surface charge between the two bacterial species. Overall, our work highlights the dynamic differences between bacterial membranes and SHG’s sensitivity to probing these systems.
Publisher
Cold Spring Harbor Laboratory
Reference70 articles.
1. Membrane-Active Small Molecules: Designs Inspired by Antimicrobial Peptides
2. Boudjemaa, R. , C. Cabriel , F. Dubois-Brissonnet , N. Bourg , G. Dupuis , A. Gruss , S. Lévêque-Fort , R. Briandet , M.-P. Fontaine-Aupart , and K. Steenkeste , 2018. Failure of daptomycin to kill Staphylococcus aureus: impact of bacterial membrane fatty acid composition. Antimicrobial Agents and Chemotherapy.
3. Saito, H. , J. Harp , and E. Fozo , 2014. Incorporation of exogenous fatty acids protects Enterococcus faecalis from membrane-damaging agents. Applied and environmental microbiology 80.
4. Hines, K. M. , A. Waalkes , K. Penewit , E. A. Holmes , S. J. Salipante , B. J. Werth , and L. Xu , 2017. Characterization of the Mechanisms of Daptomycin Resistance among Gram-Positive Bacterial Pathogens by Multidimensional Lipidomics 2:e00492–17.
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