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Mechanobiological model for simulation of injured cartilage degradation via pro-inflammatory cytokines and mechanical stimulus.
Eskelinen, Atte S A; Tanska, Petri; Florea, Cristina; Orozco, Gustavo A; Julkunen, Petro; Grodzinsky, Alan J; Korhonen, Rami K.
Afiliação
  • Eskelinen ASA; Department of Applied Physics, University of Eastern Finland, Finland.
  • Tanska P; Department of Applied Physics, University of Eastern Finland, Finland.
  • Florea C; Department of Applied Physics, University of Eastern Finland, Finland.
  • Orozco GA; Departments of Biological Engineering, Electrical Engineering and Computer Science and Mechanical Engineering, Massachusetts Institute of Technology, Cambridge, United States of America.
  • Julkunen P; Department of Applied Physics, University of Eastern Finland, Finland.
  • Grodzinsky AJ; Department of Applied Physics, University of Eastern Finland, Finland.
  • Korhonen RK; Department of Clinical Neurophysiology, Kuopio University Hospital, Finland.
PLoS Comput Biol ; 16(6): e1007998, 2020 06.
Article em En | MEDLINE | ID: mdl-32584809
Post-traumatic osteoarthritis (PTOA) is associated with cartilage degradation, ultimately leading to disability and decrease of quality of life. Two key mechanisms have been suggested to occur in PTOA: tissue inflammation and abnormal biomechanical loading. Both mechanisms have been suggested to result in loss of cartilage proteoglycans, the source of tissue fixed charge density (FCD). In order to predict the simultaneous effect of these degrading mechanisms on FCD content, a computational model has been developed. We simulated spatial and temporal changes of FCD content in injured cartilage using a novel finite element model that incorporates (1) diffusion of the pro-inflammatory cytokine interleukin-1 into tissue, and (2) the effect of excessive levels of shear strain near chondral defects during physiologically relevant loading. Cytokine-induced biochemical cartilage explant degradation occurs near the sides, top, and lesion, consistent with the literature. In turn, biomechanically-driven FCD loss is predicted near the lesion, in accordance with experimental findings: regions near lesions showed significantly more FCD depletion compared to regions away from lesions (p<0.01). Combined biochemical and biomechanical degradation is found near the free surfaces and especially near the lesion, and the corresponding bulk FCD loss agrees with experiments. We suggest that the presence of lesions plays a role in cytokine diffusion-driven degradation, and also predisposes cartilage for further biomechanical degradation. Models considering both these cartilage degradation pathways concomitantly are promising in silico tools for predicting disease progression, recognizing lesions at high risk, simulating treatments, and ultimately optimizing treatments to postpone the development of PTOA.
Assuntos

Texto completo: 1 Base de dados: MEDLINE Assunto principal: Estresse Mecânico / Biofísica / Cartilagem / Citocinas / Mediadores da Inflamação Tipo de estudo: Prognostic_studies Limite: Animals / Humans Idioma: En Ano de publicação: 2020 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Assunto principal: Estresse Mecânico / Biofísica / Cartilagem / Citocinas / Mediadores da Inflamação Tipo de estudo: Prognostic_studies Limite: Animals / Humans Idioma: En Ano de publicação: 2020 Tipo de documento: Article