Mechanisms of synovial joint and articular cartilage formation: Recent advances, but many lingering mysteries
Top Cited Papers
- 26 September 2005
- journal article
- review article
- Published by Wiley in Birth Defects Research Part C: Embryo Today: Reviews
- Vol. 75 (3), 237-248
- https://doi.org/10.1002/bdrc.20050
Abstract
Synovial joints are elegant, critically important, and deceptively simple biomechanical structures. They are comprised of articular cartilage that covers each end of the opposing skeletal elements, synovial fluid that lubricates and nourishes the tissues, ligaments that hold the skeletal elements in check, and a fibrous capsule that insulates the joints from surrounding tissues. Joints also exhibit an exquisite arrays of shapes and sizes, best exemplified by the nearly spherical convex femoral head articulating into a nearly spherical concave hip acetabulum, or a phalangeal joint with two condyles on the distal side articulating in reciprocally‐shaped sockets on the opposing proximal side. Though few in number, joint tissues are highly specialized in structure and function. This is illustrated by articular cartilage with its unique extracellular matrix, unique biomechanical resilience, its largely avascular nature, and its ability to persist through life with minimal turnover of its cells and components. The fact that interest in synovial joints has remained unabated for decades is a reflection of their fundamental importance for organism function and quality of life, and for their susceptibility to a variety of acquired and congenital conditions, most importantly arthritis. This has led to many advances in this field that encompass molecular genetics to biomechanics to medicine. Regrettably, what continues to be poorly understood are the mechanisms by which synovial joints actually form in the developing embryo. If available, this information would be not only of indisputable biological interest, but would also have significant biomedical ramifications, particularly in terms of designing novel tissue regeneration or reconstruction therapies. This review focuses on recent advances in understanding the mechanisms of synovial joint formation in the limbs, and places and discusses the information within the context of classic studies and the many mysteries and questions that remain unanswered. Birth Defects Research (Part C) 75:237–248, 2005.This publication has 83 references indexed in Scilit:
- The balancing act of transcription factors C-1-1 and Runx2 in articular cartilage developmentBiochemical and Biophysical Research Communications, 2005
- BMP Receptor Signaling Is Required for Postnatal Maintenance of Articular CartilagePLoS Biology, 2004
- Indian hedgehog and syndecans‐3 coregulate chondrocyte proliferation and function during chick limb skeletogenesisDevelopmental Dynamics, 2004
- Defining boundaries during joint cavity formation: going out on a limbInternational Journal of Experimental Pathology, 2003
- Morphological and biochemical re‐evaluation of the process of cavitation in the rat knee joint: cellular and cell strata alterations in the interzoneJournal of Anatomy, 2000
- Induction of Osteogenic Differentiation by Hedgehog ProteinsBiochemical and Biophysical Research Communications, 1997
- Mesodermal expression of the chicken erg gene associated with precartilaginous condensation and cartilage differentiationMechanisms of Development, 1995
- Limb alterations in brachypodism mice due to mutations in a new member of the TGFβ-superfamilyNature, 1994
- Cell hypertrophy and type X collagen synthesis in cultured articular chondrocytesExperimental Cell Research, 1991
- Development of the metatarsophalangeal joint of the chick embryo: Morphological, ultrastructural and histochemical studiesJournal of Anatomy, 1977