Controlling Amyloid Fibril Properties Via Ionic Liquids: The Representative Case of Ethylammonium Nitrate and Tetramethylguanidinium Acetate on the Amyloidogenesis of Lysozyme

21 July 2022, Version 2
This content is a preprint and has not undergone peer review at the time of posting.

Abstract

Proteins aggregation into amyloid fibrils has been observed in several pathological conditions and exploited in nanotechnology. It is also key in several biochemical processes. In this work we show that ionic liquids (ILs) – a vast class of organic electrolytes – can finely tune amyloid properties, opening a new playground in basic science and applications. The representative case of ethyl-ammonium nitrate (EAN) and tetramethyl-guanidinium acetate (TMGA) ILs on lysozyme is considered. Firstly, atomic force microscopy has shown that the addition of EAN and TMGA leads to thicker and thinner amyloid fibrils of greater and lower electric potential, respectively, with diameters finely tuneable by IL-concentration. Optical tweezers and neutron scattering have shed a light on their mechanism of action. TMGA interacts with the protein hydration layer only, making the relaxation dynamics of these water molecules faster. EAN interacts directly with the protein instead, making it mechanically unstable and slowing down its relaxation dynamics.

Keywords

Ionic liquids
Amyloid fibrils
Amyloidogenesis
Lysozyme
Ethyl ammonium nitrate
Tetramethyl guanidinium acetate

Supplementary materials

Title
Description
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Title
Materials, Methodology and additional figures and tables
Description
Materials, Methodology, 3 additional figures and 1 additional table
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