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Quantifying Young's moduli of protein fibrils and particles with bimodal force spectroscopy

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posted on 2024-07-11, 10:36 authored by Jay Gilbert, Mirren CharnleyMirren Charnley, Christopher Cheng, Nicholas ReynoldsNicholas Reynolds, Owen G. Jones
Force spectroscopy is a means of obtaining mechanical information of individual nanometer-scale structures in composite materials, such as protein assemblies for use in consumer films or gels. As a recently developed force spectroscopy technique, bimodal force spectroscopy relates frequency shifts in cantilevers simultaneously excited at multiple frequencies to the elastic properties of the contacted material, yet its utility for quantitative characterization of biopolymer assemblies has been limited. In this study, a linear correlation between experimental frequency shift and Young's modulus of polymer films was used to calibrate bimodal force spectroscopy and quantify Young's modulus of two protein nanostructures: β-lactoglobulin fibrils and zein nanoparticles. Crosssectional Young's modulus of protein fibrils was determined to be 1.6 GPa while the modulus of zein nanoparticles was determined as 854 MPa. Parallel measurement of β-lactoglobulin fibril by a competing pulsed-force technique found a higher cross-sectional Young's modulus, highlighting the importance of comparative calibration against known standards in both pulsed and bimodal force spectroscopies. These findings demonstrate a successful procedure for measuring mechanical properties of individual protein assemblies with potential use in biological or packaging applications using bimodal force spectroscopy.

Funding

ARC Training Centre in Biodevices

Australian Research Council

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PDF (Accepted manuscript)

ISSN

1559-4106

Journal title

Biointerphases

Volume

12

Issue

4

Article number

41001

Publisher

American Vacuum Society

Copyright statement

Copyright © 2017 American Vacuum Society. The author's final peer-reviewed accepted manuscript version, available here, may be downloaded for personal use only. Any other use requires prior permission of the author and AIP Publishing. This article appeared in Gilbert, J., Charnley, M., Cheng, C., Reynolds, N. and Jones, O., 2017. Quantifying Young's moduli of protein fibrils and particles with bimodal force spectroscopy. Biointerphases, 12(4), p.041001, and may be found at https://doi.org/10.1116/1.4996447.

Language

eng

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