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Kasson, P.

Publications and source records attributed to Kasson, P..

2 recordsLinked to original sources

Precise triggering and chemical control of single-virus fusion within endosomes

Many enveloped viruses infect cells within endocytic compartments. The drop in pH that accompanies endosomal maturation, often in conjunction with proteolytic factors, serves as a trigger for viral fusion proteins to insert into the endosomal membrane and drive fusion. The dynamics of this process has been studied by tracking viruses within living cells, which limits the precision with which fusion can be synchronized and controlled, and by reconstituting viral fusion to synthetic membranes, which introduces non-physiological membrane curvature and composition. To overcome these limitations, we have engineered the chemically controllable triggering of single-virus fusion within endosomes. We isolate influenza virus:endosome conjugates from cells prior to fusion, immobilize them in a microfluidic flow cell, and then rapidly and controllably trigger fusion. This platform demonstrates lipid-mixing kinetics that are grossly similar to influenza fusion with model membranes but display some subtle differences. Because it preserves endosomal membrane asymmetry and protein composition, it also provides a means to test how perturbations to endosomal trafficking and cellular restriction factors affect viral membrane fusion.

biophysics

Antibiotic uptake across gram-negative outer membranes: better predictions towards better antibiotics

Crossing the gram-negative bacterial membrane poses a major barrier to antibiotic development, as many small molecules that can biochemically inhibit key bacterial processes are rendered microbiologically ineffective by their poor cellular uptake. The outer membrane is the major permeability barrier for many drug-like molecules, and the chemical properties that enable efficient uptake into mammalian cells fail to predict bacterial uptake. We have developed a computational method for accurate prospective prediction of outer-membrane uptake of drug-like molecules, which we combine with a new medium-throughput experimental assay. Parallel molecular dynamics simulations are used to successfully and quantitatively predict experimental permeabilities. For most polar molecules we test, outer membrane permeability also correlates well with whole-cell uptake. The ability to accurately predict and measure outer-membrane uptake of a wide variety of small molecules will enable simpler determination of which molecular scaffolds and which derivatives are most promising prior to extensive chemical synthesis. It will also assist in formulating a more systematic understanding of the chemical determinants of outer-membrane permeability.

biochemistry