Title :
A Multiscale Framework Based on the Physiome Markup Languages for Exploring the Initiation of Osteoarthritis at the Bone–Cartilage Interface
Author :
Shim, Vickie B. ; Hunter, Peter J. ; Pivonka, Peter ; Fernandez, Justin W.
Author_Institution :
Auckland Bioeng. Inst., Auckland, New Zealand
Abstract :
The initiation of osteoarthritis (OA) has been linked to the onset and progression of pathologic mechanisms at the cartilage-bone interface. Most importantly, this degenerative disease involves cross-talk between the cartilage and subchondral bone environments, so an informative model should contain the complete complex. In order to evaluate this process, we have developed a multiscale model using the open-source ontologies developed for the Physiome Project with cartilage and bone descriptions at the cellular, micro, and macro levels. In this way, we can effectively model the influence of whole body loadings at the macro level and the influence of bone organization and architecture at the micro level, and have cell level processes that determine bone and cartilage remodeling. Cell information is then passed up the spatial scales to modify micro architecture and provide a macro spatial characterization of cartilage inflammation. We evaluate the framework by linking a common knee injury (anterior cruciate ligament deficiency) to proinflammatory mediators as a possible pathway to initiate OA. This framework provides a “virtual bone-cartilage” tool for evaluating hypotheses, treatment effects, and disease onset to inform and strengthen clinical studies.
Keywords :
biological organs; bone; cellular biophysics; diseases; injuries; patient treatment; bone organization; bone-cartilage interface; cartilage inflammation; cartilage remodeling; cell information; cell level process; degenerative disease; disease onset; informative model; knee injury; macrolevel; macrospatial characterization; microarchitecture; microlevel; multiscale framework; multiscale model; open-source ontology; osteoarthritis; pathologic mechanism; physiome markup languages; proinflammatory mediators; subchondral bone environment; treatment effects; Biological system modeling; Bones; Knee; Load modeling; Loading; Numerical models; Strain; Cartilage; finite elements (FEs); multiscale; osteoarthritis (OA); Anterior Cruciate Ligament; Biomechanics; Bone and Bones; Cartilage; Computational Biology; Finite Element Analysis; Humans; Inflammation; Models, Biological; Osteoarthritis; Programming Languages;
Journal_Title :
Biomedical Engineering, IEEE Transactions on
DOI :
10.1109/TBME.2011.2165955