81 research outputs found
Changing the mechanical unfolding pathway of FnIII10 by tuning the pulling strength
We investigate the mechanical unfolding of the tenth type III domain from
fibronectin, FnIII10, both at constant force and at constant pulling velocity,
by all-atom Monte Carlo simulations. We observe both apparent two-state
unfolding and several unfolding pathways involving one of three major, mutually
exclusive intermediate states. All the three major intermediates lack two of
seven native beta-strands, and share a quite similar extension. The unfolding
behavior is found to depend strongly on the pulling conditions. In particular,
we observe large variations in the relative frequencies of occurrence for the
intermediates. At low constant force or low constant velocity, all the three
major intermediates occur with a significant frequency. At high constant force
or high constant velocity, one of them, with the N- and C-terminal beta-strands
detached, dominates over the other two. Using the extended Jarzynski equality,
we also estimate the equilibrium free-energy landscape, calculated as a
function of chain extension. The application of a constant pulling force leads
to a free-energy profile with three major local minima. Two of these correspond
to the native and fully unfolded states, respectively, whereas the third one
can be associated with the major unfolding intermediates.Comment: 15 pages, 9 figure
Adhesion of <i>Pseudomonas fluorescens</i> biofilms to glass, stainless steel and cellulose
Objectives:
The adhesion of colloidal probes of stainless steel, glass and cellulose to Pseudomonas fluorescens biofilms was examined using atomic force microscopy (AFM) to allow comparisons between surfaces to which biofilms might adhere.
Results:
Biofilm was grown on a stainless steel substrate and covered most of the surface after 96 h. AFM approach and retraction curves were obtained when the biofilm was immersed in a tryptone/soy medium. On approach, all the colloidal probes experienced a long non-contact phase more than 100 nm in length, possibly due to the steric repulsion by extracellular polymers from the biofilm and hydrophobic effects. Retraction data showed that the adhesion varied from position to position on the biofilm. The mean value of adhesion of glass to the biofilm (48 ± 7 nN) was the greatest, followed by stainless steel (30 ± 7 nN) and cellulose (7.8 ± 0.4 nN).
Conclusion:
The method allows understanding of adhesion between the three materials and biofilm, and development of a better strategy to remove the biofilm from these surfaces relevant to different industrial applications
Novel Nanohybrids of Silver Particles on Clay Platelets for Inhibiting Silver-Resistant Bacteria
We develop a novel nanohybrid showing a strong antibacterial activity on all of the tested pathogens, including methicillin-resistant Staphylococcus auerus and silver-resistant E. coli. The nanohybrid consists of silver nanoparticles (AgNPs) supported on 1 nm-thick silicate platelets (NSPs). The AgNP/NSP nanohybrid enables to encapsulate bacteria and triggers death signals from the cell membrane. The geographic shape of the NSPs concentrates AgNPs but impedes their penetration into attached cells, mitigating the detrimental effect of silver ion deposition in applied tissues. Moreover, the tightly tethered AgNPs on NSP surface achieve a stronger biocidal effect than silver nitrate, but bypassing Ag+ mechanism, on silver-resistant bacteria. This nanohybrid presents an effective and safe antimicrobial agent in a new perspective
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