spacer gif spacer gif spacer gif spacer gif spacer gif
 QUICK SEARCH:   [advanced]


spacer gif
     Home     Help     Feedback     Subscriptions     Archive     Search     Table of Contents    

This Article
Right arrow Summary Freely available
Right arrow Full Text (PDF)
Right arrow Alert me when this article is cited
Right arrow Alert me if a correction is posted
Services
Right arrow Email this article to a friend
Right arrow Similar articles in this journal
Right arrow Similar articles in PubMed
Right arrow Alert me to new issues of the journal
Right arrow Download to citation manager
Right arrow reprints & permissions
Citing Articles
Right arrow Citing Articles via Google Scholar
Google Scholar
Right arrow Articles by Faucheux, C.
Right arrow Articles by Price, J.
Right arrow Search for Related Content
PubMed
Right arrow PubMed Citation
Right arrow Articles by Faucheux, C.
Right arrow Articles by Price, J.
Aulthouse, A. L., Beck, M., Griffey, E., Sanford, J., Arden, K., Machado, M. A. and Horton, W. A (1989). Expression of the human chondrocyte phenotype in vitro. In vitro Cell Dev. Biol 25, 659-.[Medline]

Bossard, M. J., Tomaszek, T. A., Thompson, S. K., Amegadzie, B. Y., Hanning, C. R., Jones, C., Kurdyla, J. T., McNulty, D. E., Drake, F. H., Gowen, M. and Levy, M. A (1996). Proteolytic activity of human osteoclast cathepsin K. Expression, purification, activation and substrate identification. J. Biol. Chem 271, 12517-.[Abstract/Free Full Text]

Boyde, A., Ali, N. N. and Jones, S. J (1984). Resorption of dentine by isolated osteoclasts in vitro. Br. Dent. J 156, 216-.[Medline]

Burger, E. H., Van der Meer, J. W. M. and Nijweidwe, P. J (1984). Osteoclast formation from mononuclear phagocytes in the role of bone forming cells. J. Cell Biol 49, 1981-.

Burger, E. H., Van der Meer, J. W. M., Van der Gevel, S., Gribnau, J. C., Thesingh, C. W. and Van Furth, R (1982). In vitro formation of osteoclasts from long term marrow cultures of bone marrow mononuclear precursors. J. Exp. Med 156, 1604-.[Abstract/Free Full Text]

Chambers, T. J., Thomson, B. M. and Fuller, K (1984). Effect of substrate composition on bone resorption by rabbit osteoclasts. J. Cell Sci 70, 61-.[Abstract]

Drake, F. H., Dodds, R. A., James, I. E., Connor, J. R., Debouck, C., Richardson, S., Lee-Rykaczewski, E., Coleman, L., Rieman, D., Barthlow, R., Hastings, G. and Gowen, M (1996). Cathepsin K, but not cathepsin B, L, or S, is abundantly expressed in human osteoclasts. J. Biol. Chem 271, 12511-.[Abstract/Free Full Text]

Felix, R., Hofstetter, W. and Cecchini, M. G (1996). Recent developments in the understanding of the pathophysiology of osteopetrosis. Eur. J. Endocr 134, 143-.[Abstract]

Ferguson, C. M., Miclau, T., Hu, D., Alpern, E. and Helms, J. A (1998). Common molecular pathways in skeletal morphogenesis and repair. Ann. N.Y. Acad. Sci 857, 33-.[Abstract/Free Full Text]

Fujikawa, Y., Quinn, J. M., Sabokbar, A., McGee, J. O. and Athanasou, N. A (1996). The human osteoclast precursor circulates in the monocyte fraction. Endocrinol 137, 4058-.[Abstract]

Gay, S. W. and Kosher, R. A (1984). Uniform cartilage differentiation in micromass cultures prepared from a relatively homogeneous population of chondrogenic progenitor cells of the chick limb bud: Effect of prostaglandins. J. Exp. Zool 232, 317-.[Medline]

Goss, R. J (1968). Inhibition of growth and shedding of antlers by sex hormones. Nature 220, 83-.[Medline]

Gowen, M., Lazner, F., Dodds, R., Kapadia, R., Field, J., Tavaria, M., Bertoncello, I., Drake, F., Zavarselk, S., Tellis, I., Hertzog, P., Debouck, C. and Kola, I (1999). Cathepsin K knockout mice develop osteopetrosis due to a deficit in matrix degradation but not demineralization. J. Bone Miner. Res 14, 1654-.[Medline]

Gutierrez, G., Gallwitz, W., Garrett, I. R., Rossini, G., Dunstan, C. R., Izbicka, E., Jacobs, C., Bonewald, L., Arnett, T., Burgess, W. and Mundy, G. R (1993). Identification of a novel bone-derived growth regulatory factor which is expressed in osteoclasts. J. Bone Miner. Res 8, 1-.[Medline]

Hakeda, Y., Hiura, K., Sato, T., Okazaki, R., Matsumoto, T., Ogata, E., Ishitani, R. and Kumegawa, M (1989). Existence ofparathyroid hormone binding sites on murine hemopoietic blast cells. Biochem. Biophys. Res. Commun 163, 1481-.[Medline]

Hayashi, S., Yamane, T., Miyamoto, A., Hemmi, H., Tagaya, H., Tanio, Y., Kanda, H., Yamazaki, H. and Kunisada, T (1998). Commitment and differentiation of stem cells to the osteoclast lineage. Biochem. Cell Biol 76, 911-.[Medline]

Hofbauer, L. C. and Heufelder, A. E (1999). Osteopetrosis in cathepsin K-deficient mice. Eur. J. Endocr 140, 376-.[Medline]

Hofbauer, L. C., Khosla, S., Dunstan, C. R., Lacey, D. L., Boyle, W. J. and Riggs, B. L (2000). The roles of osteoprotegerin and osteoprotegerin ligand in the paracrine regulation of bone resorption. J. Bone Miner. Res 15, 2-.[Medline]

Horton, M. A (1997). The alpha v beta 3 integrin \324vitronectin receptor'. Int. J. Biochem. Cell Biol 29, 721-.[Medline]

Horton, M. A., Lewis, D., McNulty, K., Pringle, J. A. S. and Chambers, T. J (1985). Monoclonal antibodies to osteoclastomas (giant cell bone tumors): definition of osteoclast-specific cellular antigens. Cancer Res 45, 5663-.[Medline]

Ibbotson, K. J., Roodman, G. D., McManus, L. M. and Mundy, G. R (1984). Identification and characterization of osteoclast-like cells and their progenitors in cultures of feline marrow mononuclear cells. J. Cell Biol 99, 471-.[Abstract/Free Full Text]

Inaoka, T., Bilbe, G., Ishibashi, O., Tezuka, K., Kumegawa, M. and Kokubo, T (1995). Molecular cloning of human cDNA for cathepsin K: novel cysteine proteinase predominantly expressed in bone. Biochem. Biophys. Res. Commun 206, 89-.[Medline]

Kafienah, W., Br\232mme, D., Buttle, D. J., Croucher, L. J. and Hollander, A. P (1998). Human cathepsin K cleaves native type I and II collagens at the N-terminal end of the triple helix. Biochem. J 331, 727-.

Kanatani, M., Sugimoto, T., Takahashi, Y., Kaji, H., Kitazawa, R. and Chihara, K (1998). Estrogen via the estrogen receptor blocks cAMP-mediated parathyroid hormone (PTH)-stimulated osteoclast formation. J. Bone Miner. Res 13, 854-.[Medline]

Karsenty, G (1998). Genetics of skeletogenesis. Dev. Gen 22, 301-.[Medline]

Kartsogiannis, V., Zhou, H., Horwood, N. J., Thomas, R. J., Hards, D. K., Quinn, J. M., Niforas, P., Ng, K. W., Martin, T. J. and Gillespie, M. T (1999). Localization of RANKL (receptor activator of NFkappaB ligand) mRNA and protein in skeletal and extraskeletal tissues. Bone 25, 525-.[Medline]

Kawashima-Ohya, Y., Satakeda, H., Kurata, Y., Kawamoto, T., Yan, W., Akagawa, Y., Noshiro, M., Okada, Y., Nakamura, S. and Kato, Y (1988). Effects of parathyroid hormone (PTH) and PTH-related peptide on expressions of matrix metalloproteinase-2,-3, and-9 in growth plate chondrocyte cultures. Endocrinology 139, 2120-.[Abstract/Free Full Text]

Kong, Y. Y., Yoshida, H., Sarosi, I., Tan, H. L., Timms, E., Capparelli, C., Morony, S., Oliveira-dos-Santos, A. J., Van, G., Itie, A., Khoo, W., Wakeham, A., Dunstan, C. R., Lacey, D. L., Mak, T. W., Boyle, W. J. and Penninger, J. M (1999). OPGL is a key regulator of osteoclastogenesis, lymphocyte development and lymph-node organogenesis. Nature 397, 315-.[Medline]

Lakkakorpi, P. T., Helfrich, M. H., Horton, M. A. and V\212\212n\212nen, H. K (1993). Spatial organization of microfilaments and vitronectin receptor, alpha v beta 3, in osteoclast. A study using confocal laser scanning microscopy. J. Cell Sci 104, 663-.[Abstract]

Lakkakorpi, P. T., Tuukkanen, J., Flenkunen, T., Y\212rvelin, K. and V\212\212n\212nen, H. K (1989). Organization of osteoclastC. FAUCHEUXANDOTHERS455 Osteoclast differentiation in antlers microfilaments during the attachment to bone surface in vivo. J. Bone Miner. Res 4, 817-.[Medline]

Lakkakorpi, P. T. and V\212\212n\212nen, H. K (1991). Kinetics of the osteoclast cytoskeleton during the resorption cycle in vitro. J. Bone Miner. Res 6, 817-.[Medline]

Lee, E. R., Lamplugh, L., Shepard, N. L. and Mort, J. S (1995). The septoclast, a cathepsin B-rich cell involved in the resorption of growth plate cartilage. J. Histochem. Cytochem 43, 525-.[Abstract]

Matsuzaki, K., Udagawa, N., Takahashi, N., Yamaguchi, K., Yasuda, H., Shima, N., Morinaga, T., Toyama, Y., Yabe, Y., Higashio, K. and Suda, T (1998). Osteoclast differentiation factor (ODF) induces osteoclast-like cell formation in human peripheral blood mononuclear cell cultures. Biochem. Biophys. Res. Commun 246, 199-.[Medline]

Myers, D. E., Collier, F., McL minkin, C., Wang, H., Holloway, W. R., Malakellis, M. and Nicholson, G. C (1999). Expression of functional RANK on mature rat and human osteoclasts. FEBS Lett 463, 295-.[Medline]

Nesbitt, S. A. and Horton, M. A (1997). Trafficking of matrix collagens through bone-resorbing osteoclasts. Science 276, 266-.[Abstract/Free Full Text]

Okada, Y., Naka, K., Kawamura, K., Matsumoto, T., Nakanishi, I., Fujimoto, N., Sato, H. and Seiki, M (1995). Localization of matrix metalloproteinase 9 (92-kilodalton gelatinase/type IV collagenase=gelatinase B) in osteoclasts: implications for bone resorption. Lab. Invest 72, 311-.[Medline]

Price, J. S., Oyajobi, B. O., Nalin, A. M., Frazer, A., Russell, R. G. G. and Sandell, L. J (1996). Chondrogenesis in the regenerating antler tip of red deer: Collagen types I, IIA, IIB and X expression demonstrated by in situ nucleic acid hybridisation and immunocytochemistry. Dev. Dynamics 203, 332-.

Reponen, P., Sahlberg, C., Munaut, C., Thesleff, I. and Tryggvason, K (1994). High expression of 92-kD type IV collagenase (gelatinase B) in the osteoclast lineage during mouse development. J. Cell Biol 124, 1091-.[Abstract/Free Full Text]

Rodan, S. B. and Rodan, G. A (1997). Integrin function in osteoclasts. J. Endocr 154, 47-.

Roodman, G (1996). Advances in bone biology: the osteoclast. Endocr. Rev 17, 308-.[Abstract]

Roodman, G. D., Ibbotson, K. J., MacDonald, B. R., Kuehl, T. J. and Mundy, G. R (1985). 1,25-dihydroxyvitamin D3 causes formation of multinucleated cells with several osteoclast characteristics in cultures of primate marrow. Proc. Natl. Acad. Sci. USA 82, 8213-.[Abstract/Free Full Text]

Salo, J., Lehenkari, P., Mulari, M., Metsikko, K. and V\212\212n\212nen, H. K (1997). Removal of osteoclast bone resorption products by transcytosis. Science 276, 270-.[Abstract/Free Full Text]

Sarma, U. and Flanagan, A. M (1996). Macrophage colony-stimulating factor induces substantial osteoclast generation and bone resorption in human bone marrow cultures. Blood 88, 2531-.[Abstract/Free Full Text]

Selander, K., Lehenkari, P. and V\212\212n\212nen, H. K (1994). The effects of bisphosphonates on the resorption cycle of isolated osteoclasts. Calcif. Tissue Int 55, 368-.[Medline]

Suda, T., Udagawa, N., Nakamura, I., Miyaura, C. and Takahashi, N (1995). Modulation of osteoclast differentiation by local factors. Bone 17, 87-.

Suzuki, F (1996). Roles of cartilage matrix proteins, chondromodulin-I and \320II, in endochondral bone formation: a review. Connect. Tissue Res 35, 303-.[Medline]

Szuwart, T., Kierdorf, H., Kierdorf, U. and Clemen, G (1998). Ultrastructural aspects of cartilage formation, mineralization and degeneration during primary antler growth in fallow deer. Anat. Anz 180, 501-.[Medline]

Takahashi, N., Akatsu, T., Udagawa, N., Sasaki, T., Yamaguchi, A., Moseley, J. M., Martin, T. J. and Suda, T (1988). Osteoblastic cells are involved in osteoclast formation. Endocrinol 123, 2600-.[Abstract]

Takahashi, N., Udagawa, N. and Suda, T (1999). A new member of tumor necrosis factor ligand family, ODF/OPGL/TRANCE/ RANKL, regulates osteoclast differentiation and function. Biochem. Biophys. Res. Commun 256, 449-.[Medline]

Takahashi, S., Goldring, S., Katz, M., Hilsenbeck, S., Williams, R. and Roodman, G. D (1995). Downregulation of calcitonin receptor mRNA expression by calcitonin during human osteoclast-like cell differentiation. J. Clin. Invest 95, 167-.

Taylor, L. M., Turksen, K., Aubin, J. E. and Heersche, J. N (1993). Osteoclast differentiation in cocultures of a clonal chondrogenic cell line and mouse bone marrow cells. Endocrinol 133, 2292-.[Abstract]

Thesingh, C. W. and Burger, E. H (1983). The role of mesenchyme in embryonic long bones as early deposition site for osteoclast progenitor cells. Dev. Biol 95, 429-.[Medline]

Tsurukai, T., Takahashi, N., Jimi, E., Nakamura, I., Udagawa, N., Nogimori, K., Tamura, M. and Suda, T (1998). Isolation and characterization of osteoclast precursors that differentiate into osteoclasts on calvarial cells within a short period of time. J. Cell Physiol 177, 26-.[Medline]

Van de Wijngaert, F. P., Tas, M. C. and Burger, E. H (1989). Conditioned medium of fetal mouse long bone rudiments stimulates the formation of osteoclast precursor-like cells from mouse bone marrow. Bone 10, 61-.[Medline]

Vu, T. H., Shipley, J. M., Bergers, G., Berger, J. E., Helms, J. A., Hanahan, D., Shapiro, S. D., Senior, R. M. and Werb, Z (1998). MMP-9/Gelatinase B is a key regulator of growth plate angiogenesis and apoptosis of hypertrophic chondrocytes. Cell 93, 411-.[Medline]

Yasuda, H., Shima, N., Nakagawa, N., Yamaguchi, K., Kinosaki, M., Mochizuki, S., Tomoyasu, A., Yano, K., Goto, M., Murakami, A., Tsuda, E., Morinaga, T. and Higashio, K (1998). Osteoclast differentiation factor is a ligand for osteoprotegerin/osteoclastogenesis-inhibitory factor and is identical to TRANCE/RANKL. Proc. Natl. Acad. Sci. USA 95, 3597-.[Abstract/Free Full Text]





This Article
Right arrow Summary Freely available
Right arrow Full Text (PDF)
Right arrow Alert me when this article is cited
Right arrow Alert me if a correction is posted
Services
Right arrow Email this article to a friend
Right arrow Similar articles in this journal
Right arrow Similar articles in PubMed
Right arrow Alert me to new issues of the journal
Right arrow Download to citation manager
Right arrow reprints & permissions
Citing Articles
Right arrow Citing Articles via Google Scholar
Google Scholar
Right arrow Articles by Faucheux, C.
Right arrow Articles by Price, J.
Right arrow Search for Related Content
PubMed
Right arrow PubMed Citation
Right arrow Articles by Faucheux, C.
Right arrow Articles by Price, J.