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 HighWire
Right arrow Citing Articles via Google Scholar
Google Scholar
Right arrow Articles by Lakkakorpi, P. T.
Right arrow Articles by Vaananen, H. K.
Right arrow Search for Related Content
PubMed
Right arrow PubMed Citation
Right arrow Articles by Lakkakorpi, P. T.
Right arrow Articles by Vaananen, H. K.
Baron, R., Neff, L., Brown, W., Courtoy, P. J., Louvard, D. and Farquhar, M. G (1988). Polarized secretion of lysosomal enzymes. Co-distribution of cation independent mannose 6 phosphate receptors and lysosomal enzymes along the osteoclast exocytic pathway. J.CellBiol 106, 1863-1872.[Abstract/Free Full Text]

Blair, H. C., Teitelbaum, S. L., Ghiselli, R. and Gluck, S (1989). Osteoclastic bone resorption by a polarized vacuolar proton pump. Science 245, 855-857.[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, 216-220.[Medline]

Chambers, T. J., Revell, P. A., Fuller, K. and Athanasou, N. A (1984). Resorption of bone by isolated rabbit osteoclasts. J. Cell Sci 66, 383-399.[Abstract]

Davies, J., Warwick, J., Totty, N., Philp, R., Helfrich, M. and Horton, M (1989). The osteoclast functional antigen, implicated in the regulation of bone resorption, is biochemically related to the vitronectin receptor. J. CellBiol 109, 1817-1826.[Abstract/Free Full Text]

Freed, E., Gailit, J., van der Geer, P., Ruoslahti, E. and Hunter, T (1989). A novel integrinsubunit is associated with the vitronectin receptor subunit (v ) in a human osteosarcoma cell line and is a substrate for protein kinase C. EMBO J 8, 2955-2965.[Medline]

Helfrich, M. H., Nesbitt, S. A., Dorey, E. L. and Horton, M. A (1992). Rat osteoclasts adhere to a wide range of RGD (Arg-Gly-Asp) peptide-containing proteins, including the bone sialoproteins and fibronectin, via aintegrin. J. Bone Min. Res 7, 335-343.[Medline]

Horton, M (1990). Current status review. Vitronectin receptor: tissue specific expression or adaptation to culture. Int.J.Exp.Pathol 71, 741-759.[Medline]

Horton, M. and Davies, J (1989). Adhesion receptors in bone. J. Bone Min. Res 6, 803-808.

Horton, M. A., Taylor, M. L., Arnett, T. R. and Helfrich, M. H (1991). Arg-Gly-Asp (RGD) peptides and the anti-vitronectin receptor antibody 23C6 inhibit dentine resorption and cell spreading by osteoclasts. Exp. Cell Res 195, 368-375.[Medline]

Hynes, R.O (1987). Integrins: a family of cell surface receptors. Cell 48, 549-554.[Medline]

Hynes, R. O (1992). Integrins: Versatility, modulation, and signaling in cell adhesion. Cell 69, 11-25.[Medline]

Kanehisa, J. and Heersche, J. N. M (1988). Osteoclastic bone resorption: In vitro analysis of the rate of resorption and migration of individual osteoclasts. Bone 9, 73-79.[Medline]

Kanehisa, J., Yamanaka, T., Doi, S., Turksen, K., Heersche, J. N. M., Aubin, J. E. and Takeuchi, H (1990). A band of F-actin containing podosomes is involved in bone resorption by osteoclasts. Bone 11, 287-293.[Medline]

Lakkakorpi, P. T., Horton, M. A., Helfrich, M. H., Karhukorpi, E.-K. and V\212\212n\212nen, H.K (1991). Vitronectin receptor has a role in bone resorption but does not mediate tight sealing zone attachment of osteoclasts to the bone surface. J.CellBiol 115, 1179-1186.[Abstract/Free Full Text]

Lakkakorpi, P. T. and V\212\212n\212nen, H. K (1990). Calcitonin, prostaglandin E2 and dibutyryl cyclic adenosine 3,5 -monophosphate disperse the specific microfilament structure in resorbing osteoclast. J.Histochem. Cytochem 38, 1487-1493.[Abstract]

Lakkakorpi, P. T. and V\212\212n\212nen, H. K (1991). Kinetics of the osteoclast cytoskeleton during the resorption cycle in vitro. J. Bone Min. Res 6, 817-826.[Medline]

Marchisio, P. C., Cirillo, D., Naldini, L., Primavera, M. V., Teti,A. and Zambonin-Zallone, A (1984). Cell-substratum interaction of cultured avian osteoclasts is mediated by specific adhesion structures. J.CellBiol 99, 1696-1705.[Abstract/Free Full Text]

Miyauchi, A., Alvarez, J., Greenfield, E. M., Teti, A., Grano, M., Colucci, S., Zambonin-Zallone, A., Ross, F. P., Teitelbaum, S. L., Cheresh, D. and Hruska, K. A (1991). Recognition of osteopontin and related peptides by anv 3integrin stimulates immediate cell signals in osteoclasts. J.Biol.Chem 266, 20369-20374.[Abstract/Free Full Text]

Quinn, J. M. W.,Athanasou, N. A. and McGee, J. O'D (1991). Extracellular matrix receptor and platelet antigens on osteoclasts and foreign body giant cells. Histochemistry 96, 169-176.[Medline]

Ruoslahti, E. and Pierschbacher, M.D (1986). Arg-Gly-Asp: a versatile cell recognition signal. Cell 44, 517-518.[Medline]

Ruoslahti, E. and Pierschbacher, M (1987). New perspectives in cell adhesion: RGD and integrins. Science 238, 419-497.

Sato, M., Sardana, M. K., Grasser, W. A., Garsky, V. M., Murray J. M. and Gould, R. J (1990). Echistatin is a potent inhibitor of bone resorption in culture. J.CellBiol 111, 1713-1723.[Abstract/Free Full Text]

Sundquist, K., Lakkakorpi, P., Wallmark, B. and V\212\212n\212nen, K (1990). Inhibition of osteoclast proton transport by bafilomysin Al abolishes bone resorption. Biochem.Biophys.Res.Commun 168, 309-313.[Medline]

V\212\212n\212nen, H. K., Karhukorpi, E.-K., Sundquist, K., Wallmark, B., Roininen, I., Hentunen, T., Tuukkanen, J. and Lakkakorpi, P (1990). Evidence for the presence of proton pump of vacuolar H+ -ATPase type in the ruffled borders of osteoclasts. J.CellBiol 11, 1305-1311.

Zambonin-Zallone, A., Teti, A., Grano, M., Rubinacci, A., Abbadini, M., Gaboli, M. and Marchisio, P. C (1989). Immunocytochemical distribution of extracellular matrix receptors in human osteoclasts:integrin colocalized with vinculin and talin in the podosomes of osteosarcoma giant cells. Exp. Cell Res 182, 645-652.[Medline]




This article has been cited by other articles:


Home page
J. Cell Sci.Home page
C. Luxenburg, J. T. Parsons, L. Addadi, and B. Geiger
Involvement of the Src-cortactin pathway in podosome formation and turnover during polarization of cultured osteoclasts
J. Cell Sci., December 1, 2006; 119(23): 4878 - 4888.
[Abstract] [Full Text] [PDF]


Home page
Mol. Biol. CellHome page
A. Bruzzaniti, L. Neff, A. Sanjay, W. C. Horne, P. De Camilli, and R. Baron
Dynamin Forms a Src Kinase-sensitive Complex with Cbl and Regulates Podosomes and Osteoclast Activity
Mol. Biol. Cell, July 1, 2005; 16(7): 3301 - 3313.
[Abstract] [Full Text] [PDF]


Home page
Mol. Biol. CellHome page
F. Saltel, O. Destaing, F. Bard, D. Eichert, and P. Jurdic
Apatite-mediated Actin Dynamics in Resorbing Osteoclasts
Mol. Biol. Cell, December 1, 2004; 15(12): 5231 - 5241.
[Abstract] [Full Text] [PDF]


Home page
EndocrinologyHome page
K. Fuller, C. Murphy, B. Kirstein, S. W. Fox, and T. J. Chambers
TNF{alpha} Potently Activates Osteoclasts, through a Direct Action Independent of and Strongly Synergistic with RANKL
Endocrinology, March 1, 2002; 143(3): 1108 - 1118.
[Abstract] [Full Text] [PDF]


Home page
J. Biol. Chem.Home page
H. Zhao, T. Laitala-Leinonen, V. Parikka, and H. K. Vaananen
Downregulation of Small GTPase Rab7 Impairs Osteoclast Polarization and Bone Resorption
J. Biol. Chem., October 12, 2001; 276(42): 39295 - 39302.
[Abstract] [Full Text] [PDF]


Home page
J. Exp. Biol.Home page
C Faucheux, S Nesbitt, M Horton, and J Price
Cells in regenerating deer antler cartilage provide a microenvironment that supports osteoclast differentiation
J. Exp. Biol., January 2, 2001; 204(3): 443 - 455.
[Abstract] [PDF]


Home page
J. Biol. Chem.Home page
M. A. Chellaiah, N. Soga, S. Swanson, S. McAllister, U. Alvarez, D. Wang, S. F. Dowdy, and K. A. Hruska
Rho-A Is Critical for Osteoclast Podosome Organization, Motility, and Bone Resorption
J. Biol. Chem., April 14, 2000; 275(16): 11993 - 12002.
[Abstract] [Full Text] [PDF]


Home page
JCBHome page
M. Chellaiah, N. Kizer, M. Silva, U. Alvarez, D. Kwiatkowski, and K. A. Hruska
Gelsolin Deficiency Blocks Podosome Assembly and Produces Increased Bone Mass and Strength
J. Cell Biol., February 21, 2000; 148(4): 665 - 678.
[Abstract] [Full Text] [PDF]


Home page
J. Cell Sci.Home page
S Ory, Y Munari-Silem, P Fort, and P Jurdic
Rho and Rac exert antagonistic functions on spreading of macrophage-derived multinucleated cells and are not required for actin fiber formation
J. Cell Sci., January 4, 2000; 113(7): 1177 - 1188.
[Abstract] [PDF]


Home page
JCBHome page
T. L. Burgess, Y.-x. Qian, S. Kaufman, B. D. Ring, G. Van, C. Capparelli, M. Kelley, H. Hsu, W. J. Boyle, C. R. Dunstan, et al.
The Ligand for Osteoprotegerin (OPGL) Directly Activates Mature Osteoclasts
J. Cell Biol., May 3, 1999; 145(3): 527 - 538.
[Abstract] [Full Text] [PDF]


Home page
J. Biol. Chem.Home page
P. T. Lakkakorpi, I. Nakamura, R. M. Nagy, J. T. Parsons, G. A. Rodan, and L. T. Duong
Stable Association of PYK2 and p130Cas in Osteoclasts and Their Co-localization in the Sealing Zone
J. Biol. Chem., February 19, 1999; 274(8): 4900 - 4907.
[Abstract] [Full Text] [PDF]


Home page
EndocrinologyHome page
I. Nakamura, H. Tanaka, G. A. Rodan, and L. T. Duong
Echistatin Inhibits the Migration of Murine Prefusion Osteoclasts and the Formation of Multinucleated Osteoclast-Like Cells
Endocrinology, December 1, 1998; 139(12): 5182 - 5193.
[Abstract] [Full Text] [PDF]


Home page
J. Biol. Chem.Home page
I. Nakamura, E. Jimi, L. T. Duong, T. Sasaki, N. Takahashi, G. A. Rodan, and T. Suda
Tyrosine Phosphorylation of p130Cas Is Involved in Actin Organization in Osteoclasts
J. Biol. Chem., May 1, 1998; 273(18): 11144 - 11149.
[Abstract] [Full Text] [PDF]


Home page
EndocrinologyHome page
P. Masarachia, M. Yamamoto, C.-T. Leu, G. Rodan, and L. Duong
Histomorphometric Evidence for Echistatin Inhibition of Bone Resorption in Mice with Secondary Hyperparathyroidism
Endocrinology, March 1, 1998; 139(3): 1401 - 1410.
[Abstract] [Full Text] [PDF]


Home page
EndocrinologyHome page
M. Yamamoto, J. E. Fisher, M. Gentile, J. G. Seedor, C.-T. Leu, S. B. Rodan, and G. A. Rodan
The Integrin Ligand Echistatin Prevents Bone Loss in Ovariectomized Mice and Rats
Endocrinology, March 1, 1998; 139(3): 1411 - 1419.
[Abstract] [Full Text] [PDF]


Home page
J. Cell Sci.Home page
P Boissy, I Machuca, M Pfaff, D Ficheux, and P Jurdic
Aggregation of mononucleated precursors triggers cell surface expression of alphavbeta3 integrin, essential to formation of osteoclast-like multinucleated cells
J. Cell Sci., January 9, 1998; 111(17): 2563 - 2574.
[Abstract] [PDF]


Home page
J. Cell Sci.Home page
H Palokangas, M Mulari, and H. Vaananen
Endocytic pathway from the basal plasma membrane to the ruffled border membrane in bone-resorbing osteoclasts
J. Cell Sci., January 8, 1997; 110(15): 1767 - 1780.
[Abstract] [PDF]


Home page
J. Cell Sci.Home page
J Salo, K Metsikko, H Palokangas, P Lehenkari, and H. Vaananen
Bone-resorbing osteoclasts reveal a dynamic division of basal plasma membrane into two different domains
J. Cell Sci., January 2, 1996; 109(2): 301 - 307.
[Abstract] [PDF]


Home page
J. Biol. Chem.Home page
S. Kitazawa, F. P. Ross, K. McHugh, and S. L. Teitelbaum
Interleukin-4 Induces Expression of the Integrin alpha(v)beta(3) via Transactivation of the beta(3) Gene
J. Biol. Chem., February 24, 1995; 270(8): 4115 - 4120.
[Abstract] [Full Text] [PDF]


Home page
J. Cell Sci.Home page
H. Vaananen and M Horton
The osteoclast clear zone is a specialized cell-extracellular matrix adhesion structure
J. Cell Sci., January 8, 1995; 108(8): 2729 - 2732.
[PDF]


Home page
J. Cell Sci.Home page
C. Carsberg, K. Myers, G. Evans, T. Allen, and P. Stern
Metastasis-associated 5T4 oncofoetal antigen is concentrated at microvillus projections of the plasma membrane
J. Cell Sci., January 8, 1995; 108(8): 2905 - 2916.
[Abstract] [PDF]


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 HighWire
Right arrow Citing Articles via Google Scholar
Google Scholar
Right arrow Articles by Lakkakorpi, P. T.
Right arrow Articles by Vaananen, H. K.
Right arrow Search for Related Content
PubMed
Right arrow PubMed Citation
Right arrow Articles by Lakkakorpi, P. T.
Right arrow Articles by Vaananen, H. K.