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arXiv · 1307.6870

Measuring ligand-receptor binding kinetics and dynamics using k-space image correlation spectroscopy

Abstract

Accurate measurements of kinetic rate constants for interacting biomolecules is crucial for understanding the mechanisms underlying intracellular signalling pathways. The magnitude of binding rates plays a very important molecular regulatory role which can lead to very different cellular physiological responses under different conditions. Here, we extend the k-space image correlation spectroscopy (kICS) technique to study the kinetic binding rates of systems wherein: (a) fluorescently labelled, free ligands in solution interact with unlabelled, diffusing receptors in the plasma membrane and (b) systems where labelled, diffusing receptors are allowed to bind/unbind and interconvert between two different diffusing states on the plasma membrane. We develop the necessary mathematical framework for the kICS analysis and demonstrate how to extract the elevant kinetic binding parameters of the underlying molecular system from fluorescence video-microscopy image time-series. Finally, by examining real data for two model experimental systems, we demonstrate how kICS can be a powerful tool to measure molecular transport coefficients and binding kinetics.

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BibTeXRIS

Hugo B. Brandao, Hussain Sangji, Elvis Pandzic, Susanne Bechstedt, Gary J. Brouhard, Paul W. Wiseman. 2013-07-25. Measuring ligand-receptor binding kinetics and dynamics using k-space image correlation spectroscopy. https://doi.org/10.1016/j.ymeth.2013.07.042

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