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Some like it Hot: Quantification of Biomolecular Interactions using MicroScale Thermophoresis
Author(s) -
Lehmann Lynn,
Bouley Ford Nicole,
Strutz Wyatt,
Lazic Ana
Publication year - 2015
Publication title -
the faseb journal
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.709
H-Index - 277
eISSN - 1530-6860
pISSN - 0892-6638
DOI - 10.1096/fasebj.29.1_supplement.778.4
Subject(s) - microscale thermophoresis , thermophoresis , microscale chemistry , chemistry , nanotechnology , materials science , nanoparticle , mathematics , nanofluid , biochemistry , mathematics education
Characterization of biomolecular interactions, such as protein‐protein, protein‐nucleic acid or protein‐small molecule, provides critical insights into cellular processes, and is essential for the development of drug diagnostics and therapeutics.Here we present a novel, label‐free and tether‐free technology to analyze picomolar to millimolar affinities of biomolecular interactions by MicroScale Thermophoresis (MST). The entropy of the hydration shell surrounding molecules determines thermophoretic movement. MST exploits this principle by measuring interactions using optically generated temperature gradients. MST detects changes in the size, charge and hydration shell of molecules and measures biomolecule interactions under close‐to‐native conditions: immobilization‐free and in bioliquids of choice, including cell lysates, blood, and serum. Thus, MST measures interactions under close‐to‐native conditions, and without laborious sample purification. Here, we demonstrate how MST determines the picomolar to millimolar affinities of various protein:protein and protein:small molecule interactions. MST assays are highly adaptable to fit to the diverse requirements of different and complex biomolecules. NanoTemper´s unique technology is ideal for studies requiring flexibility and sensitivity at the experimental scale, making MST suitable for basic research investigations and pharmaceutical applications.

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