Cortical bone repair. The relationship of the lacunar-canalicular system and intercellular gap junctions to the repair process.
- 1 August 1988
- journal article
- research article
- Published by Wolters Kluwer Health in Journal of Bone and Joint Surgery
- Vol. 70 (7) , 1067-1081
- https://doi.org/10.2106/00004623-198870070-00016
Abstract
Repair of cortical bone was studied in 2.4-millimeter-diameter mid-diaphyseal femoral and tibial defects in young New Zealand White rabbits using light microscopy, transmission electron microscopy, and histomorphometry. The initial source of repair tissue is the marrow. Vessels grow into the defect, accompanied by undifferentiated mesenchymal cells. Woven bone is synthesized initially at the periphery of the defect on pre-existing cortex. Differentiating mesenchymal osteoblasts surround themselves with osteoid in a woven conformation. Once a scaffold has formed, surface osteoblasts align themselves in a regular array on the woven matrix surface and synthesize osteoid in a lamellar conformation. The long axes of the repair vessels, lamellae, and osteocyte lacunae are perpendicular to the long axis of the bone. Polarized-light microscopy showed maintenance of this pattern at six, eight, and twelve weeks, even when the defect was filled with lamellar bone. Remodeling is performed slowly by osteoclast cutting cones over a period of several months. The lacunar-canalicular system is clearly demonstrated in plastic-embedded, toluidine blue-stained sections. A canaliculus passes into or away from a lacuna every 1.9 micrometers over the entire osteocyte perimeter. Undifferentiated mesenchymal cells have no processes, as seen by transmission electron microscopy, but soon sprout a florid array of processes as differentiation to early mesenchymal osteoblasts proceeds. Osteoblast and osteocyte cell processes are packed with intermediate filaments that are continuous with those in the cell bodies. Intercellular gap junctions are seen between surface osteoblasts, between osteoblasts and underlying osteocytes, and between osteocyte cell processes in the canaliculi.This publication has 12 references indexed in Scilit:
- Morphological evidence of gap junctions between bone cellsCalcified Tissue International, 1981
- Intercellular communication in normal and regenerating rat liver: a quantitative analysis.The Journal of cell biology, 1981
- Characterization of endosteal bone‐lining cells from fatty marrow bone sites in adult beaglesThe Anatomical Record, 1980
- Changes in tissue morphology and collagen composition during the repair of cortical bone in the adult chicken.Journal of Bone and Joint Surgery, 1980
- Structure of the junction between communicating cellsNature, 1980
- Cell-to-Cell Communication of OsteoblastsJournal of Dental Research, 1979
- Zum histologischen Bild der sogenannten Primärheilung der Knochenkompakta nach experimentellen Osteotomien am HundCellular and Molecular Life Sciences, 1963
- THE ARRANGEMENT OF COLLAGEN FIBRES IN HUMAN SECONDARY OSTEONESThe Journal of Bone and Joint Surgery. British volume, 1960
- COLLAGEN FIBRE PATTERNS IN MAMMALIAN BONE1960
- IV. Observations on the structure and development of bonePhilosophical Transactions of the Royal Society of London, 1853