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Colville, M. J.

Publications and source records attributed to Colville, M. J..

2 recordsLinked to original sources

Litmus-Body: a Molecularly Targeted Sensor for Cell-Surface pH Measurements

Precise pH measurements in the immediate environment of receptors is essential for elucidating the mechanisms through which local pH changes associated with diseased phenotypes manifest into aberrant receptor function. However, current pH sensors lack the molecular specificity required to make these measurements. Herein we present the Litmus-body, our recombinant protein-based pH sensor, which through fusion to an anti-mouse IgG nanobody is capable of molecular targeting to specific proteins on the cell surface. By normalizing a pH-dependent green fluorescent protein to a long-Stokes shift red fluorophore or fluorescent protein, we readily report pH independent of sensor concentration using a single 488-nm excitation. Our Litmus-body showed excellent responsiveness in solution, with a greater than 50-fold change across the physiological regime of pH. The sensor was further validated for use on live cells, shown to be specific to the protein of interest, and was able to successfully recapitulate the numerous pH changes along the endocytic pathway.

cell biology

High-speed device synchronization in optical microscopy with an open-source hardware control platform

Recent advances in fluorescence microscopy have enabled the visualization of subcellular structures at unprecedented resolution. However, the complexity of state-of-the-art microscopes has increased considerably, often requiring the precise control and synchronization of multiple peripheral devices at high speeds. Drawing inspiration from open-source prototyping systems, like the Arduino, we describe the development of a new control platform that adopts the best features of these systems - affordability, facile programmability, and flexible connectivity - but with the scientific-grade inputs and outputs (I/O) and built-in routines that are necessary to control peripherals in advanced microscopy applications. Notably, our platform includes waveform generators and I/O for point-and azimuthal-scanning of excitation in laser-based applications. As a proof of concept, we show how the integration of waveform generation, multiplexed analog outputs, and native hardware triggers into a single central hub provides a versatile platform for performing fast circle-scanning acquisitions, including ring scanning-angle interference microscopy (SAIM), total internal reflection fluorescence (TIRF and ring TIRF) microscopy, and multiangle TIRF (MA-TIRF). We also demonstrate how the low communication latency of our hardware platform can reduce image intensity and reconstruction artifacts arising from synchronization errors produced by software control. Our complete platform, including hardware design files, firmware, API, software, and all associated source code, will be hosted for community-based development and collaboration.

biophysics