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Revealing Detailed Cartilage Function Through Nanoparticle Diffusion Imaging: A Computed Tomography & Finite Element Study.
Tuppurainen, Juuso; Paakkari, Petri; Jäntti, Jiri; Nissinen, Mikko T; Fugazzola, Maria C; van Weeren, René; Ylisiurua, Sampo; Nieminen, Miika T; Kröger, Heikki; Snyder, Brian D; Joenathan, Anisha; Grinstaff, Mark W; Matikka, Hanna; Korhonen, Rami K; Mäkelä, Janne T A.
Afiliação
  • Tuppurainen J; Department of Technical Physics, University of Eastern Finland, POB 1627, 70211, Kuopio, Finland. juuso.tuppurainen@uef.fi.
  • Paakkari P; Diagnostic Imaging Center, Kuopio University Hospital, Kuopio, Finland. juuso.tuppurainen@uef.fi.
  • Jäntti J; Department of Technical Physics, University of Eastern Finland, POB 1627, 70211, Kuopio, Finland.
  • Nissinen MT; Diagnostic Imaging Center, Kuopio University Hospital, Kuopio, Finland.
  • Fugazzola MC; Department of Technical Physics, University of Eastern Finland, POB 1627, 70211, Kuopio, Finland.
  • van Weeren R; Diagnostic Imaging Center, Kuopio University Hospital, Kuopio, Finland.
  • Ylisiurua S; Department of Technical Physics, University of Eastern Finland, POB 1627, 70211, Kuopio, Finland.
  • Nieminen MT; Department of Clinical Sciences, Faculty of Veterinary Medicine, Utrecht University, Utrecht, The Netherlands.
  • Kröger H; Department of Clinical Sciences, Faculty of Veterinary Medicine, Utrecht University, Utrecht, The Netherlands.
  • Snyder BD; Research Unit of Health Sciences and Technology, University of Oulu, Oulu, Finland.
  • Joenathan A; Department of Diagnostic Radiology, Oulu University Hospital, Oulu, Finland.
  • Grinstaff MW; Research Unit of Health Sciences and Technology, University of Oulu, Oulu, Finland.
  • Matikka H; Department of Diagnostic Radiology, Oulu University Hospital, Oulu, Finland.
  • Korhonen RK; Department of Orthopaedics and Traumatology, Kuopio University Hospital, Kuopio, Finland.
  • Mäkelä JTA; Kuopio Musculoskeletal Research Unit, University of Eastern Finland, Kuopio, Finland.
Ann Biomed Eng ; 52(9): 2584-2595, 2024 Sep.
Article em En | MEDLINE | ID: mdl-39012563
ABSTRACT
The ability of articular cartilage to withstand significant mechanical stresses during activities, such as walking or running, relies on its distinctive structure. Integrating detailed tissue properties into subject-specific biomechanical models is challenging due to the complexity of analyzing these characteristics. This limitation compromises the accuracy of models in replicating cartilage function and impacts predictive capabilities. To address this, methods revealing cartilage function at the constituent-specific level are essential. In this study, we demonstrated that computational modeling derived individual constituent-specific biomechanical properties could be predicted by a novel nanoparticle contrast-enhanced computer tomography (CECT) method. We imaged articular cartilage samples collected from the equine stifle joint (n = 60) using contrast-enhanced micro-computed tomography (µCECT) to determine contrast agents' intake within the samples, and compared those to cartilage functional properties, derived from a fibril-reinforced poroelastic finite element model. Two distinct imaging techniques were investigated conventional energy-integrating µCECT employing a cationic tantalum oxide nanoparticle (Ta2O5-cNP) contrast agent and novel photon-counting µCECT utilizing a dual-contrast agent, comprising Ta2O5-cNP and neutral iodixanol. The results demonstrate the capacity to evaluate fibrillar and non-fibrillar functionality of cartilage, along with permeability-affected fluid flow in cartilage. This finding indicates the feasibility of incorporating these specific functional properties into biomechanical computational models, holding potential for personalized approaches to cartilage diagnostics and treatment.
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Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Assunto principal: Cartilagem Articular / Análise de Elementos Finitos / Nanopartículas Limite: Animals Idioma: En Revista: Ann Biomed Eng Ano de publicação: 2024 Tipo de documento: Article

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Assunto principal: Cartilagem Articular / Análise de Elementos Finitos / Nanopartículas Limite: Animals Idioma: En Revista: Ann Biomed Eng Ano de publicação: 2024 Tipo de documento: Article