» Articles » PMID: 33881594

Reproducibility and Accuracy of Microscale Thermophoresis in the NanoTemper Monolith: a Multi Laboratory Benchmark Study

Abstract

Microscale thermophoresis (MST), and the closely related Temperature Related Intensity Change (TRIC), are synonyms for a recently developed measurement technique in the field of biophysics to quantify biomolecular interactions, using the (capillary-based) NanoTemper Monolith and (multiwell plate-based) Dianthus instruments. Although this technique has been extensively used within the scientific community due to its low sample consumption, ease of use, and ubiquitous applicability, MST/TRIC has not enjoyed the unambiguous acceptance from biophysicists afforded to other biophysical techniques like isothermal titration calorimetry (ITC) or surface plasmon resonance (SPR). This might be attributed to several facts, e.g., that various (not fully understood) effects are contributing to the signal, that the technique is licensed to only a single instrument developer, NanoTemper Technology, and that its reliability and reproducibility have never been tested independently and systematically. Thus, a working group of ARBRE-MOBIEU has set up a benchmark study on MST/TRIC to assess this technique as a method to characterize biomolecular interactions. Here we present the results of this study involving 32 scientific groups within Europe and two groups from the US, carrying out experiments on 40 Monolith instruments, employing a standard operation procedure and centrally prepared samples. A protein-small molecule interaction, a newly developed protein-protein interaction system and a pure dye were used as test systems. We characterized the instrument properties and evaluated instrument performance, reproducibility, the effect of different analysis tools, the influence of the experimenter during data analysis, and thus the overall reliability of this method.

Citing Articles

Surface plasmon resonance, molecular docking, and molecular dynamics simulation studies of lysozyme interaction with tannic acid.

Turkoglu E, Tastekil I, Sarica P Food Sci Nutr. 2024; 12(10):7392-7404.

PMID: 39479698 PMC: 11521726. DOI: 10.1002/fsn3.4315.


Chemical modification of hyaluronan oligosaccharides differentially modulates hyaluronan-hyaladherin interactions.

Dodd R, Blundell C, Sattelle B, Enghild J, Milner C, Day A J Biol Chem. 2024; 300(9):107668.

PMID: 39128716 PMC: 11460632. DOI: 10.1016/j.jbc.2024.107668.


The thylakoid proton antiporter KEA3 regulates photosynthesis in response to the chloroplast energy status.

Uflewski M, Rindfleisch T, Korkmaz K, Tietz E, Mielke S, Correa Galvis V Nat Commun. 2024; 15(1):2792.

PMID: 38555362 PMC: 10981695. DOI: 10.1038/s41467-024-47151-5.


Structural Studies of Inhibitors with Clinically Relevant Influenza Endonuclease Variants.

Kohlbrand A, Stokes R, Sankaran B, Cohen S Biochemistry. 2024; 63(3):264-272.

PMID: 38190441 PMC: 10851415. DOI: 10.1021/acs.biochem.3c00536.


Label-free measurement of antimicrobial peptide interactions with lipid vesicles and nanodiscs using microscale thermophoresis.

Rainsford P, Rylandsholm F, Jakubec M, Silk M, Juskewitz E, Ericson J Sci Rep. 2023; 13(1):12619.

PMID: 37537266 PMC: 10400562. DOI: 10.1038/s41598-023-39785-0.


References
1.
Baaske P, Wienken C, Reineck P, Duhr S, Braun D . Optical thermophoresis for quantifying the buffer dependence of aptamer binding. Angew Chem Int Ed Engl. 2010; 49(12):2238-41. DOI: 10.1002/anie.200903998. View

2.
Lopez-Mendez B, Uebel S, Lundgren L, Sedivy A . Microscale Thermophoresis and additional effects measured in NanoTemper Monolith instruments. Eur Biophys J. 2021; 50(3-4):653-660. DOI: 10.1007/s00249-021-01529-1. View

3.
Duhr S, Braun D . Thermophoretic depletion follows Boltzmann distribution. Phys Rev Lett. 2006; 96(16):168301. DOI: 10.1103/PhysRevLett.96.168301. View

4.
Wang B, Goodpaster A, Kennedy M . Coefficient of Variation, Signal-to-Noise Ratio, and Effects of Normalization in Validation of Biomarkers from NMR-based Metabonomics Studies. Chemometr Intell Lab Syst. 2014; 128:9-16. PMC: 3963315. DOI: 10.1016/j.chemolab.2013.07.007. View

5.
Jerabek-Willemsen M, Wienken C, Braun D, Baaske P, Duhr S . Molecular interaction studies using microscale thermophoresis. Assay Drug Dev Technol. 2011; 9(4):342-53. PMC: 3148787. DOI: 10.1089/adt.2011.0380. View