Crossref journal-article
Wiley
Journal of Cellular Biochemistry (311)
Abstract

AbstractThe bone replacement process in the adult skeleton is known as remodeling. When bone is removed by osteoclasts, new bone is laid down by osteoblasts in the same place, because the load bearing requirement is unchanged. Bone is usually replaced because it is too old to carry out its function, which is mainly mechanical in cortical bone and mainly support for homeostasis and hematopoiesis in cancellous bone. Remodeling always begins on a quiescent bone surface, separated from the marrow by flat lining cells that are one of the two modes of terminal differentiation of osteoblasts. Lining cells are gatekeepers, able to be informed of the need for remodeling, and to either execute or mediate all four components of its activation‐selection and preparation of the site, recruitment of mononuclear preosteoclasts, budding of new capillaries, and attraction of preosteoclasts to the chosen site where they fuse into multinucleated osteoclasts.In cortical bone, osteonal remodeling is carried out by a complex and unique structure, the basic multicellular unit (BMU) that comprises a cutting cone of osteoclasts in front, a closing cone lined by osteoblasts following behind, and connective tissue, blood vessels and nerves filling the cavity. The BMU maintains its size, shape and internal organization for many months as it travels through bone in a controlled direction. Individual osteoclast nuclei are short‐lived, turning over about 8% per d, replaced by new preosteoclasts that originated in the bone marrow and travel in the circulation to the site of resorption. Refilling of bone at each successive cross‐sectional location is accomplished by a team of osteoblasts, probably originating from precursors within the local connective tissue, all assembled within a narrow window of time, at the right location, and in the right orientation to the surface. Each osteoblast team forms bone most rapidly at its onset and slows down progressively. Some of the osteoblasts are buried as osteocytes, some die, and the remainder gradually assume the shape of lining cells. Cancellous bone is more accessible to study than cortical bone, but is geometrically complex. Although remodeling conforms to the same sequence of surface activation, resorption and formation, its three‐dimensional organization is difficult to visualize from two‐dimensional histologic sections. But the average sizes of resorption sites, formation sites, and completed structural units increase progressively, as they do in cortical bone, indicating that the cancellous BMU travels across the surface digging a trench rather than a tunnel, but maintaining its size, shape and individual identity by the continuous recruitment of new cells, just as in cortical bone, a process that can be visualized as hemiosteonal remodeling. The conclusion that all remodeling is carried out by individual BMUs has important implications for bone biology, since many questions about how BMUs operate cannot be answered by studying either intact organisms or isolated cell systems. Many different steps in remodeling and many factors that influence each step have been identified, but very little is known about how the process is regulated in vivo to achieve its biologic purposes; most factors studied to date are likely permissive rather than regulatory in nature. Based on the proposed conceptual model of the BMU, much in vitro experimentation is relevant to the growth, modeling and repair of bone, but not to its remodeling in the adult skeleton. Further progress in the understanding of in vivo physiology will require the characterization of gene expression in individual cells to be related to the spatial and temporal organization of the BMU. This is likely to be possible only for osteonal remodeling in cortical bone in which, because of its geometric simplicity, individual BMUs can consistently be observed in two‐dimensional, longitudinal sections. © 1994 Wiley‐Liss, Inc.

Bibliography

Parfitt, A. M. (1994). Osteonal and hemi‐osteonal remodeling: The spatial and temporal framework for signal traffic in adult human bone. Journal of Cellular Biochemistry, 55(3), 273–286. Portico.

Authors 1
  1. A. M. Parfitt (first)
References 52 Referenced 763
  1. {'key': 'e_1_2_1_2_2', 'volume-title': 'Intermediary Organization of the Skeleton', 'author': 'Frost HM', 'year': '1986'} / Intermediary Organization of the Skeleton by Frost HM (1986)
  2. {'key': 'e_1_2_1_3_2', 'volume-title': 'Bone, The Osteoclast', 'author': 'Kahn AJ', 'year': '1991'} / Bone, The Osteoclast by Kahn AJ (1991)
  3. {'key': 'e_1_2_1_4_2', 'first-page': '1', 'volume-title': 'Progress in Basic and Clinical Pharmacology, Calcium Metabolism', 'author': 'Parfitt AM', 'year': '1990'} / Progress in Basic and Clinical Pharmacology, Calcium Metabolism by Parfitt AM (1990)
  4. 10.1007/BF01673407
  5. {'key': 'e_1_2_1_6_2', 'first-page': '115', 'volume-title': 'Osteoporosis: Recent Advances in Pathogenesis and Treatment', 'author': 'Parfitt AM', 'year': '1981'} / Osteoporosis: Recent Advances in Pathogenesis and Treatment by Parfitt AM (1981)
  6. 10.1007/978-3-642-77991-6_1
  7. 10.1182/blood.V63.2.287.287 / Blood / A model of intramedullary hematopoietic micro‐environments based on stereo‐logic study of the distribution of endocloned marrow colonies by Lambertsen RH (1984)
  8. {'key': 'e_1_2_1_9_2', 'first-page': '179', 'article-title': 'Porosity and specific surface of bone', 'volume': '10', 'author': 'Martin RB', 'year': '1984', 'journal-title': 'CRC Crit Rev Biomed Eng'} / CRC Crit Rev Biomed Eng / Porosity and specific surface of bone by Martin RB (1984)
  9. {'key': 'e_1_2_1_10_2', 'first-page': '1', 'volume-title': 'Cytokines and Bone Metabolism', 'author': 'Skjødt H', 'year': '1992'} / Cytokines and Bone Metabolism by Skjødt H (1992)
  10. {'key': 'e_1_2_1_11_2', 'first-page': '143', 'volume-title': 'Bone Histomorphometry. Techniques and Interpretations', 'author': 'Parfitt AM', 'year': '1983'} / Bone Histomorphometry. Techniques and Interpretations by Parfitt AM (1983)
  11. 10.1159/000145171 / Acta Anat / Changes in the vascular network during the formation of haversian systems by Marotti G (1980)
  12. 10.1002/ar.1091980204
  13. {'key': 'e_1_2_1_14_2', 'volume-title': 'Bone. Bone Metabolism and Mineralization', 'author': 'Miller SC', 'year': '1992'} / Bone. Bone Metabolism and Mineralization by Miller SC (1992)
  14. 10.1007/BF02406132
  15. 10.1007/BF00298787
  16. {'key': 'e_1_2_1_17_2', 'volume-title': 'Bone. The Osteoclast', 'author': 'Chambers TJ', 'year': '1991'} / Bone. The Osteoclast by Chambers TJ (1991)
  17. {'key': 'e_1_2_1_18_2', 'volume-title': 'Mathematical elements of lamellar bone remodelling', 'author': 'Frost HM', 'year': '1964'} / Mathematical elements of lamellar bone remodelling by Frost HM (1964)
  18. 10.1083/jcb.60.2.346
  19. {'key': 'e_1_2_1_20_2', 'first-page': '363', 'article-title': 'Kinetic and cytochemical identification of osteoclast precursors and their differentiation into multinucleated osteoclasts', 'volume': '122', 'author': 'Baron R', 'year': '1986', 'journal-title': 'Am J Pathol'} / Am J Pathol / Kinetic and cytochemical identification of osteoclast precursors and their differentiation into multinucleated osteoclasts by Baron R (1986)
  20. 10.1242/jcs.103.4.1093
  21. 10.1016/0026-0495(76)90151-7
  22. {'key': 'e_1_2_1_23_2', 'first-page': '21', 'volume-title': 'Bone. Bone Metabolism and Mineralization', 'author': 'Jaworski ZFG', 'year': '1992'} / Bone. Bone Metabolism and Mineralization by Jaworski ZFG (1992)
  23. {'key': 'e_1_2_1_24_2', 'first-page': '397', 'article-title': 'Kinetics of osteoclasts and their nuclei in evolving secondary haversian systems', 'volume': '133', 'author': 'Jaworski JFG', 'year': '1981', 'journal-title': 'J Anat'} / J Anat / Kinetics of osteoclasts and their nuclei in evolving secondary haversian systems by Jaworski JFG (1981)
  24. {'key': 'e_1_2_1_25_2', 'first-page': '91', 'article-title': 'Study of cell kinetics within evolving secondary haversian systems', 'volume': '131', 'author': 'Jaworski ZFG', 'year': '1980', 'journal-title': 'J Anat'} / J Anat / Study of cell kinetics within evolving secondary haversian systems by Jaworski ZFG (1980)
  25. {'issue': '1', 'key': 'e_1_2_1_26_2', 'first-page': 'S118', 'article-title': 'Targeting SV‐40 T antigen to the osteoclast in transgenic mice causes osteopetrosis, transformation and apoptosis of osteoclasts', 'volume': '8', 'author': 'Boyce BF', 'year': '1993', 'journal-title': 'JBMR'} / JBMR / Targeting SV‐40 T antigen to the osteoclast in transgenic mice causes osteopetrosis, transformation and apoptosis of osteoclasts by Boyce BF (1993)
  26. {'key': 'e_1_2_1_27_2', 'volume-title': 'The Biology of Cell Reproduction', 'author': 'Baserga R', 'year': '1985'} / The Biology of Cell Reproduction by Baserga R (1985)
  27. {'key': 'e_1_2_1_28_2', 'first-page': '351', 'volume-title': 'Bone: A Treatise. The Osteoblast and Osteocyte', 'author': 'Parfitt AM', 'year': '1990'} / Bone: A Treatise. The Osteoblast and Osteocyte by Parfitt AM (1990)
  28. 10.1210/edrv-7-4-379
  29. 10.1038/206489a0
  30. {'key': 'e_1_2_1_31_2', 'first-page': '85', 'volume-title': 'Connective Tissue and Its Heritable Disorders', 'author': 'Schenk RK', 'year': '1993'} / Connective Tissue and Its Heritable Disorders by Schenk RK (1993)
  31. 10.1016/8756-3282(93)90176-B
  32. {'key': 'e_1_2_1_33_2', 'volume-title': 'Proceedings of the First International Workshop on Bone Morphometry', 'author': 'Jaworski ZFG', 'year': '1976'} / Proceedings of the First International Workshop on Bone Morphometry by Jaworski ZFG (1976)
  33. 10.1016/S0889-8529(18)30349-9
  34. 10.1016/0221-8747(83)90013-9
  35. 10.2307/3575260
  36. 10.1007/978-3-642-77991-6 / Physiology and pharmacology of bone. Handbook of Experimental Pharmacology by Mundy GR (1993)
  37. 10.1016/0950-3528(90)90041-E
  38. 10.1210/edrv-14-4-424
  39. {'key': 'e_1_2_1_40_2', 'first-page': '45', 'article-title': 'The cellular basis of bone remodeling', 'volume': '31', 'author': 'Eriksen EF', 'year': '1992', 'journal-title': 'Triangle'} / Triangle / The cellular basis of bone remodeling by Eriksen EF (1992)
  40. {'issue': '2', 'key': 'e_1_2_1_41_2', 'first-page': 'S457', 'article-title': 'Bone cell biology: New approaches and unanswered questions', 'volume': '8', 'author': 'Raisz LG', 'year': '1993', 'journal-title': 'J Bone Miner Res'} / J Bone Miner Res / Bone cell biology: New approaches and unanswered questions by Raisz LG (1993)
  41. {'key': 'e_1_2_1_42_2', 'first-page': '54', 'article-title': 'The nerve supply of bone', 'volume': '72', 'author': 'Hurrell DJ', 'year': '1937', 'journal-title': 'J Anat'} / J Anat / The nerve supply of bone by Hurrell DJ (1937)
  42. 10.1097/00003086-199001000-00036 / Clin Orthop Rel Res / Role of transforming growth factor beta in bone remodeling by Bonewald LF (1990)
  43. 10.1097/00003086-199102000-00004 / Clin Orthop Rel Res / Bone growth factors by Mohan S (1991)
  44. {'key': 'e_1_2_1_45_2', 'first-page': '337', 'volume-title': 'Biology and Physiology of the Osteoclast', 'author': 'Puzas JE', 'year': '1992'} / Biology and Physiology of the Osteoclast by Puzas JE (1992)
  45. 10.1210/edrv-14-6-690
  46. BaylinkDJ HillikerS MohanS(1993): Growth factors couple bone formation to resorption. In Christiansen C Riis B (eds): “Proceedings of the Fourth International Symposium on Osteoporosis.” Hong Kong Handelstrykkeriet Aalborg ApS Aalborg Denmark pp246–248.
  47. {'key': 'e_1_2_1_48_2', 'first-page': '2', 'volume-title': 'Bone Circulation', 'author': 'Burkhardt R', 'year': '1984'} / Bone Circulation by Burkhardt R (1984)
  48. {'key': 'e_1_2_1_49_2', 'first-page': '147', 'article-title': 'Relationship between endothelium and bone cells', 'volume': '7', 'author': 'Zecchi‐Orlandini S', 'year': '1993', 'journal-title': 'Ital J Min Electro Metab'} / Ital J Min Electro Metab / Relationship between endothelium and bone cells by Zecchi‐Orlandini S (1993)
  49. {'issue': '1', 'key': 'e_1_2_1_50_2', 'first-page': 'S159', 'article-title': 'Anatomical and functional associations between endothelial cells and osteoblasts', 'volume': '8', 'author': 'Khoury E', 'year': '1993', 'journal-title': 'J Bone Min Res'} / J Bone Min Res / Anatomical and functional associations between endothelial cells and osteoblasts by Khoury E (1993)
  50. {'key': 'e_1_2_1_51_2', 'volume-title': 'Studies of the Development and Decay of the Human Frame', 'author': 'Trueta J', 'year': '1968'} / Studies of the Development and Decay of the Human Frame by Trueta J (1968)
  51. Malluche HH Faugere MC eds (1993):Bone morphometry 1992. Bone 14. (10.1016/8756-3282(93)90136-X)
  52. {'key': 'e_1_2_1_53_2', 'first-page': '161', 'article-title': 'A synchronous group of mammalian cells whose in vivo behavior can be studied', 'volume': '13', 'author': 'Frost HM', 'year': '1965', 'journal-title': 'Henry Ford Hosp Med Bull'} / Henry Ford Hosp Med Bull / A synchronous group of mammalian cells whose in vivo behavior can be studied by Frost HM (1965)
Dates
Type When
Created 20 years, 3 months ago (May 28, 2005, 5:42 p.m.)
Deposited 1 year, 10 months ago (Oct. 24, 2023, 1:18 a.m.)
Indexed 27 minutes ago (Sept. 7, 2025, 5:22 a.m.)
Issued 31 years, 2 months ago (July 1, 1994)
Published 31 years, 2 months ago (July 1, 1994)
Published Online 21 years, 6 months ago (Feb. 19, 2004)
Published Print 31 years, 2 months ago (July 1, 1994)
Funders 0

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@article{Parfitt_1994, title={Osteonal and hemi‐osteonal remodeling: The spatial and temporal framework for signal traffic in adult human bone}, volume={55}, ISSN={1097-4644}, url={http://dx.doi.org/10.1002/jcb.240550303}, DOI={10.1002/jcb.240550303}, number={3}, journal={Journal of Cellular Biochemistry}, publisher={Wiley}, author={Parfitt, A. M.}, year={1994}, month=jul, pages={273–286} }