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Stroh, K. S.

Publications and source records attributed to Stroh, K. S..

2 recordsLinked to original sources

Efficient quantification of lipid packing defect sensing by amphipathic peptides; comparing Martini 2 & 3 with CHARMM36

In biological systems, proteins can be attracted to curved or stretched regions of lipid bilayers by sensing hydrophobic defects in the lipid packing on the membrane surface. Here, we present an efficient end-state free energy calculation method to quantify such sensing in molecular dynamics simulations. We illustrate that lipid packing defect sensing can be defined as the difference in mechanical work required to stretch a membrane with and without a peptide bound to the surface. We also demonstrate that a peptides ability to concurrently induce excess leaflet area (tension) and elastic softening - a property we call the characteristic area of sensing (CHAOS) - and lipid packing sensing behavior are in fact two sides of the same coin. In essence, defect sensing displays a peptides propensity to generate tension. The here-proposed mechanical pathway is equally accurate yet, computationally, about 40 times less costly than the commonly used alchemical pathway (thermodynamic integration), allowing for more feasible free energy calculations in atomistic simulations. This enabled us to directly compare the Martini 2 and 3 coarse-grained and the CHARMM36 atomistic force-fields in terms of relative binding free energies for six representative peptides including the curvature sensor ALPS and two antiviral amphipathic helices (AH). We observed that Martini 3 qualitatively reproduces experimental trends, whilst producing substantially lower (relative) binding free energies and shallower membrane insertion depths compared to atomistic simulations. In contrast, Martini 2 tends to overestimate (relative) binding free energies. Finally, we offer a glimpse into how our end-state based free energy method can enable the inverse design of optimal lipid packing defect sensing peptides when used in conjunction with our recently developed Evolutionary Molecular Dynamics (Evo-MD) method. We argue that these optimized defect sensors - aside from their biomedical and biophysical relevance - can provide valuable targets for the development of lipid force-fields. TOC Graphic O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=111 SRC="FIGDIR/small/482978v1_ufig1.gif" ALT="Figure 1"> View larger version (32K): org.highwire.dtl.DTLVardef@1872c25org.highwire.dtl.DTLVardef@1635f0eorg.highwire.dtl.DTLVardef@f5ad91org.highwire.dtl.DTLVardef@156209f_HPS_FORMAT_FIGEXP M_FIG C_FIG

biophysics↗

TatA and TatB generate a hydrophobic mismatch that is important for function and assembly of the Tat translocon in Escherichia coli

The Tat system has the unique purpose to translocate folded proteins across energy-transducing membranes. It occurs in bacteria and archaea, as well as in eukaryotic organelles of bacterial origin. In the bacterial model system Escherichia coli, the three components TatA, TatB, and TatC assemble to functional translocons. TatA and TatB both possess an N-terminal transmembrane helix (TMH) that is followed by an amphipathic helix (APH). The TMHs of TatA and TatB generate a hydrophobic mismatch with only 12 consecutive hydrophobic residues that span the membrane. We shortened or extended this stretch of hydrophobic residues in either TatA, TatB, or both, and analyzed effects on transport functionality and translocon assembly. The wild type length functioned best but was not an absolute requirement, as some variation was clearly tolerated. Defects of shortenings or extensions were enhanced by simultaneous mutations in TatA and TatB, indicating partial compensations of mutations in TatA by wild type TatB or vice versa. Length variation in TatB destabilized TatBC-containing complexes, revealing that the 12-residues-length is important for Tat component interactions and translocon assembly. To also address potential effects on TatA associations, we characterized these by metal tagging transmission electron microscopy and carried out molecular dynamics simulations. In these simulations, interacting short TMHs of larger TatA assemblies were thinning the membrane together with laterally aligned tilted APHs that generated a deep V-shaped groove. The conserved length of 12 hydrophobic residues may thus not only be important for translocon interactions, but also for a membrane destabilization during Tat transport. If this is the case, the specific short length could be a compromise between functionality and proton leakage minimization.

biochemistry↗