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CARBALLIDO LOPEZ, R.

Publications and source records attributed to CARBALLIDO LOPEZ, R..

2 recordsLinked to original sources

Quantification of membrane fluidity in bacteria using TIR-FCS

Cell membrane fluidity is an important phenotypic feature that regulates the diffusion, function and folding of transmembrane and membrane-associated proteins. It is particularly interesting to study it in bacteria as variations in membrane fluidity are known to affect fundamental cellular processes such as respiration, transport and antibiotic resistance. As such key parameter, membrane fluidity is regulated to adapt to environmental variations and stresses like temperature fluctuations or osmotic shocks. Membrane fluidity has been however scarcely studied quantitatively in bacterial cells, mostly because of the lack of available tools. Here, we developed an assay based on total internal reflection fluorescence correlation spectroscopy (TIR-FCS) to directly measure membrane fluidity in live bacteria via the diffusivity of fluorescent membrane markers. We used this assay to quantify the fluidity of the cytoplasmic membrane of the Gram-positive model bacterium Bacillus subtilis in response to a cold shock, caused by a shift from 37{degrees}C to 20{degrees}C. In our experimental conditions, steady-state fluidity was recovered within 30 mins, and the steady-state fluidity at 20{degrees}C was about half of that at 37{degrees}C. Our minimally invasive assay opens up exciting perspectives and could be used to study a wide range of phenomena affecting the bacterial membrane, from disruption by antibiotics, antimicrobial peptides, or osmotic shocks. SignificanceUsing fluorescence correlation spectroscopy (FCS) with total internal reflection fluorescence (TIRF) illumination, we measured the diffusion speed of fluorescent membrane markers as a readout for membrane fluidity of growing B. subtilis cells. Quantification of the effect of cold shock provided unique information about the dynamics of the plasma membrane of B. subtilis. The unprecedented capability of TIR-FCS to quantify membrane fluidity in living bacteria opens the door to a whole set of new studies that will shed light on the bacterial plasma membrane and its interactions with the environment.

biophysics↗

New PALM-compatible integration vectors for use in the Gram-positive model bacterium Bacillus subtilis

Improvements in super-resolution and single-molecule techniques together with the development of new fluorescent proteins and labelling methods have allowed super-resolution microscopy to be applied to bacterial cells. Cloning vectors remain important tools for researchers to perform efficient labelling. Here, we describe the creation of four PhotoActivated Localization Microscopy (PALM)-compatible integration plasmids for the Gram-positive model organism Bacillus subtilis. These plasmids carry either the photoswitchable green fluorescent protein dronPA or the photoactivatable red fluorescent protein PAmCherry1, codon-optimized or not for B. subtilis. For fast and interchangeable cloning, we have inserted multi cloning sites at both the C-terminal and the N-terminal end of the fluorophores. The plasmids replicate in Escherichia coli and allow integration at the ectopic amyE or thrC loci of B. subtilis via double homologous recombination, for stable chromosomal insertions of dronPA and PAmCherry1 protein fusions respectively. Dual color imaging is accessible with the simultaneous use of the two vectors. Insertion of the gene encoding the LacI repressor under control of a constitutive promoter in each of the four plasmids yielded four derivative vectors that, combined with an array of lacO operator sites, allow Fluorescent Repressor-Operator System (FROS) localization studies. We demonstrated the successful photoactivation of the LacI-dronPA or PAmCherry1 fusions, and used them to report with nanoscale precision the subcellular localization of bacteriophage SPP1 DNA in infected B. subtilis cells as proof of concept. Our PALM-compatible integration vectors expand the genetic toolbox for single molecule localization microscopy studies in B. subtilis.

microbiology↗