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Hill, J. T.

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

2 recordsLinked to original sources

Mechanism and kinetics of copper complexes binding to the influenza A M2 channel

Copper(II) is known to bind in the influenza virus His37 cluster in the homotetrameric M2 proton channel and block the proton current needed for uncoating. Copper complexes based on iminodiacetate also block the M2 proton channel and show reduced cytotoxicity and zebrafish-embryo toxicity. In voltage-clamp oocyte studies using the ubiquitous amantadine-insensitive M2 S31N variant, the current block showed fast and slow phases in contrast to the single phase found for amantadine block of WT M2. Here we evaluate the mechanism of block by copper adamantyl iminodiacitate (Cu(AMT-IDA)) and copper cyclooctyl iminodiacitate (Cu(CO-IDA)) complexes and address whether the complexes can covalently bind to one or more of the His37 imidazoles. The current traces were fitted to parametrized master equations. The energetics of binding and the rate constants suggest that the first step is copper-complex binding within the channel and the slow step in the current block is the covalent bond formation between copper complex and histidine. Isothermal titration calorimetry (ITC) indicates that a single imidazole binds strongly to the copper complexes. Structural optimization using density functional theory (DFT) reveals that the complexes fit inside the channel and project the Cu(II) towards the His37 cluster allowing one imidazole to form a covalent bond with the Cu(II). Electrophysiology and DFT studies also show that the complexes block the G34E amantadine-resistant mutant in spite of some crowding in the binding site by the glutamates.

biophysics

SLALOM: A Simple and Rapid Method for Enzymatic Synthesis of CRISPR-Cas9 sgRNA Libraries

CRISPR-Cas9 sgRNA libraries have transformed functional genetic screening and have enabled innovative CRISPR-based methods, such as the visualization of chromatin dynamics in living cells. These libraries have the potential to be applied to a vast number of biological systems and aid in the development of new technologies, but their synthesis is hindered by the cost, time requirements, and technical difficulty of current sgRNA library generation methods. Here, we describe SLALOM--a rapid enzymatic method for generating robust, variant-matched sgRNA libraries from any source of DNA in under 3 hours. This method utilizes a custom sgRNA scaffold sequence and a novel method for detaching oligonucleotides from solid supports using a strand displacing polymerase. Using this method, we have constructed libraries targeting the E. coli genome and the transcriptome of developing zebrafish hearts, demonstrating its potential to expand the reach of CRISPR technology and facilitate methods requiring custom sgRNA libraries.

molecular biology