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Cartilage growth thus refers to the matrix deposition, but can also refer to both the growth and remodeling of the extracellular matrix. Due to the great stress on the patellofemoral joint during resisted knee extension, the articular cartilage of the patella is among the thickest in the human body.
Endochondral ossification is the process by which most vertebrate axial skeletons form into hardened bones from cartilage. This process begins with a cartilage anlage where chondrocyte cells will congregate and start their maturation process. Once the chondrocytes have fully matured at the desired rate, the cartilage tissue will harden into ...
In biology, matrix (pl.: matrices) is the material (or tissue) in between a eukaryotic organism's cells. The structure of connective tissues is an extracellular matrix. Fingernails and toenails grow from matrices. It is found in various connective tissues. It serves as a jelly-like structure instead of cytoplasm in connective tissue.
This hyaline cartilage template expands through both: [8] [9] Interstitial growth Appositional growth Cellular protagonists: Chondrocytes present within the existing cartilage. Chondroblasts that develop from the perichondrium. Mechanism: Chondrocytes proliferate and lay down matrix. Chondroblasts differentiate into chondrocytes and lay down ...
In embryogenesis, the skeletal system is derived from the mesoderm and ectoderm germ layers. Chondrification (also known as chondrogenesis) is the process by which cartilage is formed from condensed mesenchyme tissue, [2] which differentiates into chondrocytes and begins secreting the molecules that form the extracellular matrix.
The cartilage cells or chondrocytes are contained in cavities in the matrix, called cartilage lacunae; around these, the matrix is arranged in concentric lines as if it had been formed in successive portions around the cartilage cells. This constitutes the so-called capsule of the space.
Due to the proliferative nature of chondroblasts, cells compose a larger portion of the composition than what is normally found within completed cartilage. [3] Collagen Type II fibers are responsible for giving the future cartilage matrix its tensile strength. The structure of these fibers, like the majority of collagen fibers, forms a triple ...
Matrilin-3 is a protein that in humans is encoded by the MATN3 gene. [5] [6] [7] It is linked to the development of many types of cartilage, [8] and part of the Matrilin family, which includes Matrilin-1, Matrilin-2, Matrilin-3, and Matrilin-4, a family of filamentous-forming adapter oligomeric extracellular proteins that are linked to the formation of cartilage and bone, as well as ...