Tissue engineering is a multidisciplinary science based on the application of engineering approaches to biologic tissue formation. Engineered tissue internal organization represents a key aspect to increase biofunctionality before transplant and, as regarding skeletal muscles, the potential of generating contractile forces is dependent on the internal fiber organization and is reflected by some macroscopic parameters, such as the spontaneous contraction. Here we propose the application of digital image correlation (DIC) as an independent tool for an accurate and noninvasive measurement of engineered muscle tissue spontaneous contraction. To validate the proposed technique we referred to the X-MET, a promising 3-dimensional model of skeletal muscle. The images acquired through a high speed camera were correlated with a custom-made algorithm and the longitudinal strain predictions were employed for measuring the spontaneous contraction. The spontaneous contraction reference values were obtained by studying the force response.The relative error between the spontaneous contraction frequencies computed in both ways was always lower than 0.15%. In conclusion, the use of a DIC based systemallows for an accurate and noninvasive measurement of biological tissues’ spontaneous contraction, in addition to the measurement of tissue strain field on any desired region of interest during electrical stimulation.

A DIC based technique to measure the contraction of a skeletal muscle engineered tissue / Rizzuto, Emanuele; Carosio, Silvia; Faraldi, Martina; Pisu, Simona; Musaro', Antonio; DEL PRETE, Zaccaria. - In: APPLIED BIONICS AND BIOMECHANICS. - ISSN 1176-2322. - ELETTRONICO. - 2016:(2016), pp. 1-7. [10.1155/2016/7465095]

A DIC based technique to measure the contraction of a skeletal muscle engineered tissue

RIZZUTO, EMANUELE
;
PISU, SIMONA;MUSARO', Antonio;DEL PRETE, Zaccaria
2016

Abstract

Tissue engineering is a multidisciplinary science based on the application of engineering approaches to biologic tissue formation. Engineered tissue internal organization represents a key aspect to increase biofunctionality before transplant and, as regarding skeletal muscles, the potential of generating contractile forces is dependent on the internal fiber organization and is reflected by some macroscopic parameters, such as the spontaneous contraction. Here we propose the application of digital image correlation (DIC) as an independent tool for an accurate and noninvasive measurement of engineered muscle tissue spontaneous contraction. To validate the proposed technique we referred to the X-MET, a promising 3-dimensional model of skeletal muscle. The images acquired through a high speed camera were correlated with a custom-made algorithm and the longitudinal strain predictions were employed for measuring the spontaneous contraction. The spontaneous contraction reference values were obtained by studying the force response.The relative error between the spontaneous contraction frequencies computed in both ways was always lower than 0.15%. In conclusion, the use of a DIC based systemallows for an accurate and noninvasive measurement of biological tissues’ spontaneous contraction, in addition to the measurement of tissue strain field on any desired region of interest during electrical stimulation.
2016
biomedical engineering; medicine (miscellaneous); biotechnology; bioengineering
01 Pubblicazione su rivista::01a Articolo in rivista
A DIC based technique to measure the contraction of a skeletal muscle engineered tissue / Rizzuto, Emanuele; Carosio, Silvia; Faraldi, Martina; Pisu, Simona; Musaro', Antonio; DEL PRETE, Zaccaria. - In: APPLIED BIONICS AND BIOMECHANICS. - ISSN 1176-2322. - ELETTRONICO. - 2016:(2016), pp. 1-7. [10.1155/2016/7465095]
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11573/880996
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