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Mandl, J.

Publications and source records attributed to Mandl, J..

3 recordsLinked to original sources

Lactoferricins access the cytosol of Escherichia coli within few seconds

We report the real-time response of E. coli to lactoferricin-derived antimicrobial peptides (AMPs) on length-scales bridging microscopic cell-sizes to nanoscopic lipid packing using millisecond time-resolved synchrotron small-angle X-ray scattering. Coupling a multi-scale scattering data analysis to biophysical assays for peptide partitioning revealed that the AMPs rapidly saturate the bacterial envelope and reach the cytosol within less than three seconds--much faster than previously considered. Final cytosolic AMP concentrations of ~ 100 mM suggest an efficient shut-down of metabolism as primary cause for bacterial killing. On the other hand, the damage of the cell envelope is a collateral effect of AMP activity that does not kill the bacteria. This implies that the impairment of the membrane barrier is a necessary but not sufficient condition for microbial killing by lactoferricins. The most efficient AMP studied exceeds others in both speed of reaching cytoplasm and lowest cytosolic peptide concentration.

biophysics

Responding kinetic of B-cell receptor repertoire to the Toll-like receptor 7/8 stimulation in non-human primates

TLR7 and 8 regulate B cell immunity, but the precise details of the mechanism are still unclear. Here, we studied the kinetics of both heavy and light chains (IgKL) of B-cell receptor (BCR) repertoire responding to the TLR7/8 stimulation in two geniuses of non-human primates (NHPs), African green monkeys (AGMs) and rhesus macaques (RMs). We evaluated the activation of lymphocytes by flow cytometry, and studied characteristics of BCR repertoire in terms of gene usage, repertoire diversity, and the number of lineages. Although AGMs had a weaker activation than RMs, and a different responding kinetic, both AGMs and RMs presented an increased IgKL repertoire diversity and lineages expansion. It suggested that the responding time rather than initiation of TLR7/8-induced IgKL repertoire response related to B cell activation. Expanded IgKL lineages with frequency from 0.001% to 1% had an elevated mutation rate and expanded IgH lineages used more IgA/G/E, suggesting that the TLR7/8 stimulation expanded low-frequent but high-mutated lineages. Besides, most of expanded IgKL lineages were {lambda} isotype. In conclusion, TLR7/8 selectively expands IgKL lineages with a high mutation rate, low frequency, and {lambda} isotype. The selective effect of TLR7/8 on BCR repertoire allows TLR7/8 agonists to be adjuvant for selectively accelerating antibody maturation.

immunology

Evolution of the Analytical Scattering Model of Live Escherichia Coli

We have revised a previously reported multi-scale model for (ultra) small angle X-ray (USAXS/SAXS) and (very) small angle neutron scattering (VSANS/SANS) of live Escherichia coli based on compositional/metabolomic and ultrastructural constraints. The cellular body is modelled, as previously described, by an ellipsoid with multiple shells. However, scattering originating from flagella was substituted by a term accounting for the oligosaccharide cores of the lipopolysaccharide leaflet of the outer membrane including its cross-term with the cellular body. This was mainly motivated by (U)SAXS experiments showing indistinguishable scattering for bacteria in the presence and absence of flagella or fimbrae. The revised model succeeded in fitting USAXS/SAXS and differently contrasted VSANS/SANS data of E. coli ATCC 25922 over four orders of magnitude in length scale, providing specifically detailed insight into structural features of the cellular envelope, including the distance of the inner and outer membranes, as well as the scattering length densities of all bacterial compartments. Consecutively, the model was also successfully applied to E. coli K12, used for our original modelling, as well as for two other E. coli strains, detecting significant differences between the different strains in terms of bacterial size, intermembrane distance and its positional fluctuations. These findings corroborate the general applicability of our approach to quantitatively study the effect of bactericidal compounds on ultrastructural features of Gram-negative bacteria without the need to resort to any invasive staining or labelling agents.

biophysics