A study of saliva lubrication using a compliant oral mimic
File(s)T Reddyhoff - paper.pdf (1.51 MB)
Accepted version
Author(s)
Type
Journal Article
Abstract
Due to ethical issues and the difficulty in obtaining biological tissues, it is important to find synthetic elastomers that can be used as replacement test media for research purposes. An important example of this is friction testing to understand the mechanisms behind mouthfeel attributes during food consumption (e.g. syrupy, body and clean finish), which requires an oral mimic. In order to assess the suitability of possible materials to mimic oral surfaces, a sliding contact is produced by loading and sliding a hemispherical silica pin against either a polydimethyl siloxane (PDMS), agarose, or porcine tongue sample. Friction is measured and elastohydrodynamic film thickness is calculated based on the elastic modulus of the samples, which is measured using an indentation method. Tests were performed with both saliva and pure water as the lubricating fluid and results compared to unlubricated conditions.
PDMS mimics the tongue well in terms of protein adhesion, with both samples showing significant reductions in friction when lubricated with saliva versus water, whereas agarose showed no difference between saliva and water lubricated conditions. This is attributed to PDMS's OSi(CH3)2- group which provides excellent adhesion for the saliva protein molecules, in contrast with the hydrated agarose surface. The measured modulus of the PDMS (2.2 MPa) is however significantly greater than that of tongue (3.5 kPa) and agarose (66–174 kPa). This affects both the surface (boundary) friction, at low sliding speeds, and the entrained elastohydrodynamic film thickness, at high speeds.
Utilising the transparent PDMS sample, we also use fluorescence microscopy to monitor the build-up and flow of dyed-tagged saliva proteins within the contact during sliding. Results confirm the lubricous boundary film forming nature of saliva proteins by showing a strong correlation between friction and average protein intensity signals (cross correlation coefficient = 0.87). This demonstrates a powerful method to study mouthfeel mechanisms.
PDMS mimics the tongue well in terms of protein adhesion, with both samples showing significant reductions in friction when lubricated with saliva versus water, whereas agarose showed no difference between saliva and water lubricated conditions. This is attributed to PDMS's OSi(CH3)2- group which provides excellent adhesion for the saliva protein molecules, in contrast with the hydrated agarose surface. The measured modulus of the PDMS (2.2 MPa) is however significantly greater than that of tongue (3.5 kPa) and agarose (66–174 kPa). This affects both the surface (boundary) friction, at low sliding speeds, and the entrained elastohydrodynamic film thickness, at high speeds.
Utilising the transparent PDMS sample, we also use fluorescence microscopy to monitor the build-up and flow of dyed-tagged saliva proteins within the contact during sliding. Results confirm the lubricous boundary film forming nature of saliva proteins by showing a strong correlation between friction and average protein intensity signals (cross correlation coefficient = 0.87). This demonstrates a powerful method to study mouthfeel mechanisms.
Date Issued
2019-07-01
Date Acceptance
2019-01-19
Citation
Food Hydrocolloids, 2019, 92 (1), pp.10-18
ISSN
0268-005X
Publisher
Elsevier
Start Page
10
End Page
18
Journal / Book Title
Food Hydrocolloids
Volume
92
Issue
1
Copyright Statement
© 2019 Elsevier Ltd. All rights reserved. . This manuscript is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International Licence http://creativecommons.org/licenses/by-nc-nd/4.0/
Sponsor
PepsiCo Inc.
Identifier
https://www.sciencedirect.com/science/article/pii/S0268005X1831885X
Grant Number
PO 4101581801
Subjects
Science & Technology
Physical Sciences
Life Sciences & Biomedicine
Chemistry, Applied
Food Science & Technology
Chemistry
Saliva
Oral mimic
Mouthfeel
Friction
Roughness
Stiffness
Lubrication
Fluorescence microscopy
PDMS
Agarose
ELASTIC PROPERTIES
FRICTION
TRIBOLOGY
INDENTATION
POLYDIMETHYLSILOXANE
EMULSIONS
VISCOSITY
EXPOSURE
RECOVERY
RHEOLOGY
0904 Chemical Engineering
0908 Food Sciences
0912 Materials Engineering
Food Science
Publication Status
Published
Date Publish Online
2019-01-23