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Biomechanical performance of functional cartilage is executed by the exclusive anisotropic composition and spatially varying intricate architecture in articulating ends of diarthrodial joint. Osteochondral tissue constituting the articulating ends comprise superfical soft cartilage over hard subchondral bone sandwiching interfacial soft-hard tissue. The shock-absorbent, lubricating property of cartilage and mechanical stability of subchondral bone regions are rendered by extended chemical structure of glycosaminoglycans and mineral deposition, respectively. Extracellular matrix glycosaminoglycans analogous polysaccharides are major class of hydrogels investigated for restoration of functional cartilage. Recently, injectable hydrogels have gained momentum as it offers patient compliance, tunable mechanical properties, cell deliverability, and facile administration at physiological condition with long-term functionality and hyaline cartilage construction. Interestingly, facile modifiable functional groups in carbohydrate polymers impart tailorability of desired physicochemical properties and versatile injectable chemistry for the development of highly potent biomimetic in situ forming scaffold. The scaffold design strategies have also evolved from single component to bi- or multilayered and graded constructs with osteogenic properties for deep subchondral regeneration. This review highlights the significance of polysaccharide structure-based functions in engineering cartilage tissue, injectable chemistries, strategies for combining analogous matrices with cells/stem cells and biomolecules and multicomponent approaches for osteochondral mimetic constructs. Further, the rheology and precise spatiotemporal positioning of cells in hydrogel bioink for rapid prototyping of complex three-dimensional anisotropic cartilage have also been discussed.
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http://dx.doi.org/10.1021/acs.biomac.6b01619 | DOI Listing |
J Orthop Res
September 2025
Institute of Orthopaedic Research and Biomechanics, University Medical Center Ulm, Ulm, Germany.
Osteoporotic hip fractures are a considerable cause of pain and disability particularly among the elderly. Osteoporosis causes loss of bone stability, which in turn leads to an increased risk of fractures especially in metaphyseal bone. Moreover, the body's capacity for healing is diminished, resulting in prolonged recovery times following these fractures.
View Article and Find Full Text PDFJ Anat
September 2025
Cátedra de Biología General, Facultad de Ciencias Naturales e Instituto Miguel Lillo, Universidad Nacional de Tucumán, San Miguel de Tucumán, Argentina.
The knee joint plays a critical role in tetrapod locomotion, yet its developmental trajectories and anatomical diversity remain underexplored outside of model taxa. Here, we examine knee joint development in three representative reptilian lineages, Phrynops hilarii (Testudines), Caiman latirostris (Crocodylia), and Columba livia (Aves), and compare them with adult knee morphology in two squamate species, Cercosaura parkerii and Hemidactylus mabouia. Using histological series spanning key developmental stages, we document patterns of ossification, meniscus formation, cartilage composition, and sesamoid presence.
View Article and Find Full Text PDFBiochim Biophys Acta Mol Cell Biol Lipids
September 2025
Laboratory of Biochemistry, University of Crete Medical School and Gene Regulation and Genomics group, Institute of Molecular Biology and Biotechnology, Foundation for Research and Technology of Hellas, Heraklion, Crete, Greece. Electronic address:
Rheumatoid arthritis (RA) is associated with increased cardiovascular disease (CVD) risk, partly attributed to altered lipid metabolism. Apolipoprotein C-III (apoC-III), a key regulator of triglyceride-rich lipoproteins in the plasma, has been implicated in both dyslipidemia and inflammation. In this study, we investigated the role of hypertriglyceridemia in RA using a transgenic mouse model overexpressing the human apoC-III gene (apoC-III Tg).
View Article and Find Full Text PDFOsteoarthritis Cartilage
September 2025
Department of Clinical & Experimental Medicine, Brighton & Sussex Medical School, Brighton BN1 9PX, UK. Electronic address:
Objective: Therapeutic potential of selective aggrecanase inhibition in osteoarthritis (OA) was previously demonstrated using a variant of endogenous tissue inhibitor of metalloproteinase-3 (TIMP-3); however, this relied on transgenic mice overexpressing TIMP-3. Here, we develop a translational approach for harnessing the aggrecanase-selective inhibitory activity of TIMP-3 using the latency associated peptide (LAP) technology.
Methods: We successfully produced and purified recombinant LAP-TIMP-3 fusion proteins and determined the pharmacokinetics of these proteins in vivo following systemic injection.
Int J Biol Macromol
September 2025
Rapid Manufacturing Engineering Center, School of Mechatronical Engineering and Automation, Shanghai University, Shanghai, 200444, China; National Demonstration Center for Experimental Engineering Training Education, Shanghai University, Shanghai, 200444, China; Shanghai Key Laboratory of Intelligen
Osteochondral defects caused by trauma, obesity, tumors, and degenerative osteoarthropathies severely impair patients' quality of life. Multilayer tissue engineering scaffolds offer promising strategies for osteochondral repair by enhancing structural biomimicry. In this study, a triple-layer GelMA-alginate-based osteochondral scaffold (TCOS) was fabricated using an enhanced multi-axis, multi-process, multi-material 3D bioprinting system (MAPM-BPS).
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