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Acoustic Force Elastography Microscopy

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Abstract

Objective: Hydrogel scaffolds have attracted attention to develop cellular therapy and tissue engineering platforms for regenerative medicine applications. Among factors, local mechanical properties of scaffolds drive the functionalities of cell niche. Dynamic mechanical analysis (DMA), the standard method to characterize mechanical properties of hydrogels, restricts development in tissue engineering because the measurement provides a single elasticity value for the sample, requires direct contact, and represents a destructive evaluation preventing longitudinal studies on the same sample. We propose a novel technique, acoustic force elastography microscopy (AFEM), to evaluate elastic properties of tissue engineering scaffolds.

Results: AFEM can resolve localized and two-dimensional (2D) elastic properties of both transparent and opaque materials with advantages of being non-contact and non-destructive. Gelatin hydrogels, neat synthetic oligo[poly(ethylene glycol)fumarate] (OPF) scaffolds, OPF hydroxyapatite nanocomposite scaffolds and ex vivo biological tissue were examined with AFEM to evaluate the elastic modulus. These measurements of Young's modulus range from approximately 2 kPa to over 100 kPa were evaluated and are in good agreement with finite element simulations, surface wave measurements, and DMA tests.

Conclusion: The AFEM can resolve localized and 2D elastic properties of hydrogels, scaffolds and thin biological tissues. These materials can either be transparent or non-transparent and their evaluation can be done in a non-contact and non-destructive manner, thereby facilitating longitudinal evaluation.

Significance: AFEM is a promising technique to quantify elastic properties of scaffolds for tissue engineering and will be applied to provide new insights for exploring elastic changes of cell-laden scaffolds for tissue engineering and material science.

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References
1.
Carone T, Hasenwinkel J . Mechanical and morphological characterization of homogeneous and bilayered poly(2-hydroxyethyl methacrylate) scaffolds for use in CNS nerve regeneration. J Biomed Mater Res B Appl Biomater. 2006; 78(2):274-82. DOI: 10.1002/jbm.b.30483. View

2.
Askari E, Cengiz I, Alves J, Henriques B, Flores P, Fredel M . Micro-CT based finite element modelling and experimental characterization of the compressive mechanical properties of 3-D zirconia scaffolds for bone tissue engineering. J Mech Behav Biomed Mater. 2019; 102:103516. DOI: 10.1016/j.jmbbm.2019.103516. View

3.
Liu H, Kijanka P, Urban M . Two-dimensional (2D) dynamic vibration optical coherence elastography (DV-OCE) for evaluating mechanical properties: a potential application in tissue engineering. Biomed Opt Express. 2021; 12(3):1217-1235. PMC: 7984779. DOI: 10.1364/BOE.416661. View

4.
Elisseeff J, Ferran A, Hwang S, Varghese S, Zhang Z . The role of biomaterials in stem cell differentiation: applications in the musculoskeletal system. Stem Cells Dev. 2006; 15(3):295-303. DOI: 10.1089/scd.2006.15.295. View

5.
Liu H, Kijanka P, Urban M . Optical coherence tomography for evaluating capillary waves in blood and plasma. Biomed Opt Express. 2020; 11(2):1092-1106. PMC: 7041467. DOI: 10.1364/BOE.382819. View