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Biology subjects

Sengel, J. T.

Publications and source records attributed to Sengel, J. T..

3 recordsLinked to original sources

Dynamic exchange of antimicrobial peptides stabilize persistent lipid pores

Antimicrobial peptides (AMPs) are a promising broad-spectrum complement to conventional antibiotics. But despite their relatively simple structures, the reported modes of action of AMPs are diverse, ranging from formation of stable ion-channel-like structures, or disruption of biochemical pathways, to comprehensive membrane solubilization. This apparent complexity of function is a significant hurdle in their future application and rational design. Here, we combine single-molecule tracking with optical single-channel recording in synthetic mimics of bacterial membranes to image the pores formed by AMPs in real time, mapping the diffusion of individual AMPs relative to sites of membrane permeablization. Using alamethicin, magainin-II and melittin as archetypes of three principal membrane-disrupting AMP classes, we observe AMP molecules freely diffusing on the membrane, but with an enhancement of local peptide surface density within a nanoscopic region surrounding each pore locus. We do not observe this enhancement for indolicidin, an AMP which is not believed to use pore formation as its main mode of toxicity. Corroborated by molecular dynamics simulations that replicate our experiments, these results suggest defects formed by membrane-active AMPs are persistent but dynamic structures, stabilised by individual peptides free to diffuse into and out of the pore. Whilst alamethicin, magainin-II and melittin are often placed in different mechanistic pore-forming groups, the broad similarities between observations in these different AMPs encourages a continuum view of pore-forming ability, rather than discrete categories of mechanism.

biophysics↗

Orchestrating Self-Replication in Artificial Cells through Digital Microfluidics

A defining feature of living cells is their ability to self-replicate; but creating artificial cells with this capability remains challenging, due to the complexity of biological division machinery. Rather than seeking to reconstitute this machinery, here we take direct control of DNA replication and compartment division using digital microfluidics. This approach allows us to precisely orchestrate these two fundamental processes, providing insight into how they must be coupled for successful self-replication. Our system achieves autonomous cycles of replication and division, with daughter compartments inheriting parental DNA and maintaining genetic continuity across multiple generations - a key feature of living systems that has been di!cult to achieve in artificial cells. By implementing these processes through direct physical manipulation rather than biochemical complexity, we provide a simple testbed that will help to disentangle the essential requirements for self-replicating systems.

synthetic biology↗

De novo design of α-helical peptide channels with designer stoichiometry

Despite advances in peptide and protein design, the rational design of membrane-spanning peptides that form conducting channels remains challenging due to our imperfect understanding of the sequence-to-structure relationships that drive membrane insertion, assembly, and conductance. Here, we describe the design and computational and experimental characterization of a series of coiled coil-based peptides that form transmembrane -helical barrels. Through a combination of rational and computational design, we obtain barrels with 5 to 7 helices, as characterized in detergent micelles. In lipid bilayers, these peptide assemblies exhibit two conductance states with relative populations dependent on the applied potential: (i) a low-conductance states that correlate with variations in the modeled coiled-coil barrel geometries, indicating stable transmembrane -helical barrels; and (ii) high-conductance states in which single pores change size in discrete steps. Notably, the high-conductance states are similar for all peptides in contrast to the low-conductance states. This indicates the formation of large, dynamic pores through the recruitment and expulsion of peptides, as observed in natural barrel-stave peptide pores. These findings establish rational routes to design and tune functional membrane-spanning peptide channels with specific conductance and geometry.

synthetic biology↗