Traumatic joint injuries can result in significant cartilage defects, which can greatly increase the risk of osteoarthritis development. Due to the limited self-healing capacity of avascular cartilage, tissue engineering approaches are required for filling defects and promoting cartilage regeneration. Current approaches utilize invasive surgical procedures for extraction and implantation of autologous chondrocytes; therefore, injectable biomaterials have gained interest to minimize the risk of infection as well as patient pain and discomfort. In this study, we engineered biomimetic, hyaluronic acid (HA)-based cryogel scaffolds that possess shape-memory properties as they contract and regain their shape after syringe injection to noninvasively fill cartilage defects. The cryogels, fabricated with HA and glycidyl methacrylate at -20°C, resulted in an elastic, macroporous, and highly interconnected network that provided a conducive microenvironment for chondrocytes to remain viable and metabolically active after injection through a syringe needle. Chondrocytes seeded within cryogels and cultured for 15 days exhibited enhanced cell proliferation, metabolism, and production of cartilage extracellular matrix glycosaminoglycans compared with HA-based hydrogels. Furthermore, immunohistochemical staining revealed production of collagen type II from chondrocyte-seeded cryogels, indicating the maintenance of cell phenotype. These results demonstrate the potential of chondrocyte-seeded, HA-based, injectable cryogel scaffolds to promote regeneration of cartilage tissue for nonsurgically invasive defect repair. Impact statement Hyaluronic acid-based shape-memory cryogels provide a conducive microenvironment for chondrocyte adhesion, proliferation, and matrix biosynthesis for use in repair of cartilage defects. Due to their sponge-like elastic properties, cryogels can fully recover their original shape back after injection while not impacting metabolism or viability of encapsulated cells. Clinically, they provide an opportunity for filling focal cartilage defects by using a single, minimally invasive injection of a cell encapsulating biocompatible three-dimensional scaffold that can return to its original structure to fit the defect geometry and enable matrix regeneration.
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http://dx.doi.org/10.1089/ten.TEA.2020.0264 | DOI Listing |
Front Bioeng Biotechnol
January 2025
Department of Orthopaedics, The Affiliated Hospital of Guizhou Medical University, Guiyang, China.
Background: Microfracture drilling is a surgical technique that involves creating multiple perforations in areas of cartilage defects to recruit stem cells from the bone marrow, thereby promoting cartilage regeneration in the knee joint. Increasing the exposed bone marrow surface area (more holes in the same area) can enhance stem cell outflow. However, when the exposed area is large, it may affect the mechanical strength of the bone at the site of the cartilage defect.
View Article and Find Full Text PDFBioact Mater
April 2025
Department of Regenerative Medicine, College of Medicine, Soonchunhyang University, Cheonan, Republic of Korea.
Articular cartilage has a limited self-healing capacity, leading to joint degeneration and osteoarthritis over time. Therefore, bioactive scaffolds are gaining attention as a promising approach to regenerating and repairing damaged articular cartilage through tissue engineering. In this study, we reported on a novel 3D bio-printed proteinaceous bioactive scaffolds combined with natural porcine cancellous bone dECM, tempo-oxidized cellulose nanofiber (TOCN), and alginate carriers for TGF-β1, FGF-18, and ADSCs to repair cartilage defects.
View Article and Find Full Text PDFCarbohydr Polym
March 2025
Senior Department of Orthopedics, the Fourth Medical Center of PLA General Hospital, Beijing, 100048, China. Electronic address:
Bone regeneration is limited and generally requires external intervention to promote effective repair. Autografts, allografts, and xenografts as traditional methods for addressing bone defects have been widely utilized, their clinical applicability is limited due to their respective disadvantages. Fortunately, functional polysaccharide hydrogels have gained significant attention in bone regeneration due to their exceptional drug-loading capacity, biocompatibility, and ease of chemical modification.
View Article and Find Full Text PDFZhonghua Er Bi Yan Hou Tou Jing Wai Ke Za Zhi
January 2025
Department of Otorhinolaryngology Head and Neck Surgery, Linyi People's Hospital Affiliated to Shandong Second Medical University, Linyi276003, China.
To explore the surgical methods and treatment outcomes of nasal endoscopic surgery for nasal deformity secondary to unilateral cleft lip and palate, combined with nasal septal deviation, using nasal septal cartilage and bone. Eleven patients who underwent surgical treatment for unilateral cleft lip and palate secondary to nasal deformity in the Department of Otorhinolaryngology, Head and Neck Surgery, Linyi People's Hospital, Shandong Second Medical University, from March 2021 to March 2023, were retrospectively analyzed. The cohort included 8 males and 3 females, aged (22.
View Article and Find Full Text PDFJ Hip Preserv Surg
December 2024
Hip and Knee Adult Reconstruction Department, Instituto Nacional de Rehabilitación Luis Guillermo Ibarra, Calzada México-Xochimilco No. 289 Colonia Arenal de Guadalupe Delegación, Tlalpan C.P., Ciudad de México 14389, México.
Femoroacetabular impingement syndrome (FAIS) is a common condition of the hip that can cause significant damage to the joint, leading to degeneration and osteoarthritis. FAIS constitutes an abnormal and dynamic contact between the femoral head-neck junction and the acetabular rim, resulting from altered bone morphology at one or both sites. Repetitive trauma at the site of impingement generates progressive damage to the acetabular labrum, chondrolabral junction, and articular cartilage.
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