Mechanical characterization of the mouse diaphragm with optical coherence elastography reveals fibrosis-related change of direction-dependent muscle tissue stiffness

التفاصيل البيبلوغرافية
العنوان: Mechanical characterization of the mouse diaphragm with optical coherence elastography reveals fibrosis-related change of direction-dependent muscle tissue stiffness
المؤلفون: George G. Rodney, Kirill V. Larin, James A. Loehr, Shang Wang, Irina V. Larina
المصدر: SPIE Proceedings.
بيانات النشر: SPIE, 2016.
سنة النشر: 2016
مصطلحات موضوعية: 0301 basic medicine, Muscle tissue, Materials science, medicine.diagnostic_test, business.industry, Biomechanics, Stiffness, Skeletal muscle, medicine.disease, 01 natural sciences, 010309 optics, 03 medical and health sciences, 030104 developmental biology, Optics, medicine.anatomical_structure, Optical coherence tomography, Fibrosis, 0103 physical sciences, medicine, Elastography, medicine.symptom, Muscular dystrophy, business, Biomedical engineering
الوصف: The diaphragm, composed of skeletal muscle, plays an important role in respiration through its dynamic contraction. Genetic and molecular studies of the biomechanics of mouse diaphragm can provide great insights into an improved understanding and potential treatment of the disorders that lead to diaphragm dysfunction (i.e. muscular dystrophy). However, due to the small tissue size, mechanical assessment of mouse diaphragm tissue under its proper physiological conditions has been challenging. Here, we present the application of noncontact optical coherence elastography (OCE) for quantitative elastic characterization of ex vivo mouse diaphragm. Phase-sensitive optical coherence tomography was combined with a focused air-puff system to capture and measure the elastic wave propagation from tissue surface. Experiments were performed on wildtype and dystrophic mouse diaphragm tissues containing different levels of fibrosis. The OCE measurements of elastic wave propagation were conducted along both the longitudinal and transverse axis of the muscle fibers. Cross-correlation of the temporal displacement profiles from different spatial locations was utilized to obtain the propagation time delay, which was used to calculate the wave group velocity and to further quantify the tissue Young’s modulus. Prior to and after OCE assessment, peak tetanic force was measured to monitor viability of the tissue during the elasticity measurements. Our experimental results indicate a positive correlation between fibrosis level and tissue stiffness, suggesting this elastic-wave-based OCE method could be a useful tool to monitor mechanical properties of skeletal muscle under physiological and pathological conditions.
تدمد: 0277-786X
الوصول الحر: https://explore.openaire.eu/search/publication?articleId=doi_________::2453f5f668a332f73b0ec2270f69f46aTest
https://doi.org/10.1117/12.2211160Test
رقم الانضمام: edsair.doi...........2453f5f668a332f73b0ec2270f69f46a
قاعدة البيانات: OpenAIRE