Literature DB >> 20041487

An in-situ fluorescence-based optical extensometry system for imaging mechanically loaded bone.

Christopher Price1, Wen Li, John E Novotny, Liyun Wang.   

Abstract

The application and quantification of well-controlled tissue strains is required for investigations into mechanisms of tissue adaptation within the musculoskeletal system. Although many commercial and custom extensometry systems exist for large biological samples, integrated loading/strain measurement for small samples is not as readily available. Advanced imaging modules such as laser scanning microscopy provide in situ, minimally invasive tools to probe cellular and molecular processes with high spatiotemporal resolution. Currently, a need exists to devise loading/strain measurement systems that can be integrated with such advanced imaging modules. We describe the development and validation of a fluorescence-based, optical extensometry system directly integrated within a confocal microscopy platform. This system allows in situ measurement of surface strain and is compatible with the direct imaging of cellular processes within small bone samples. This optical extensometry system can accurately and reproducibly measure physiologically relevant surface strains (200 to 3000 microstrain) in beams machined from various well-characterized materials, including bovine femoral cortex, and in intact murine tibia. This simple system provides a powerful tool to further our investigation of the relationships between mechanical loading, fluid and solute transport, and mechanosensation within the musculoskeletal system. (c) 2009 Orthopaedic Research Society. Published by Wiley Periodicals, Inc.

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Year:  2010        PMID: 20041487      PMCID: PMC2930264          DOI: 10.1002/jor.21049

Source DB:  PubMed          Journal:  J Orthop Res        ISSN: 0736-0266            Impact factor:   3.494


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5.  Quantifying load-induced solute transport and solute-matrix interaction within the osteocyte lacunar-canalicular system.

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Authors:  Megan E Oest; Mark A Miller; Karen I Howard; Kenneth A Mann
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7.  Real-time measurement of solute transport within the lacunar-canalicular system of mechanically loaded bone: direct evidence for load-induced fluid flow.

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8.  A multiscale 3D finite element analysis of fluid/solute transport in mechanically loaded bone.

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