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Items: 1 to 20 of 376

2.

Enzymatically quiescent heparanase augments T cell interactions with VCAM-1 and extracellular matrix components under versatile dynamic contexts.

Sotnikov I, Hershkoviz R, Grabovsky V, Ilan N, Cahalon L, Vlodavsky I, Alon R, Lider O.

J Immunol. 2004 May 1;172(9):5185-93.

3.

Heparanase degrades syndecan-1 and perlecan heparan sulfate: functional implications for tumor cell invasion.

Reiland J, Sanderson RD, Waguespack M, Barker SA, Long R, Carson DD, Marchetti D.

J Biol Chem. 2004 Feb 27;279(9):8047-55. Epub 2003 Nov 20.

4.

Distinctive regulation of the functional linkage between the human cation-independent mannose 6-phosphate receptor and GTP-binding proteins by insulin-like growth factor II and mannose 6-phosphate.

Murayama Y, Okamoto T, Ogata E, Asano T, Iiri T, Katada T, Ui M, Grubb JH, Sly WS, Nishimoto I.

J Biol Chem. 1990 Oct 15;265(29):17456-62.

5.

Histidine-rich glycoprotein binds heparanase and regulates its enzymatic activity and cell surface interactions.

Poon IK, Yee DY, Jones AL, Wood RJ, Davis DS, Freeman C, Parish CR, Hulett MD.

Int J Biochem Cell Biol. 2010 Sep;42(9):1507-16. doi: 10.1016/j.biocel.2010.05.008. Epub 2010 May 31.

PMID:
20561914
7.

Cell surface localization of heparanase on macrophages regulates degradation of extracellular matrix heparan sulfate.

Sasaki N, Higashi N, Taka T, Nakajima M, Irimura T.

J Immunol. 2004 Mar 15;172(6):3830-5.

8.

Heparanase induces tissue factor pathway inhibitor expression and extracellular accumulation in endothelial and tumor cells.

Nadir Y, Brenner B, Gingis-Velitski S, Levy-Adam F, Ilan N, Zcharia E, Nadir E, Vlodavsky I.

Thromb Haemost. 2008 Jan;99(1):133-41.

PMID:
18217145
9.

Regulation, function and clinical significance of heparanase in cancer metastasis and angiogenesis.

Ilan N, Elkin M, Vlodavsky I.

Int J Biochem Cell Biol. 2006;38(12):2018-39. Epub 2006 Jul 6. Review.

PMID:
16901744
10.

Translocation of active heparanase to cell surface regulates degradation of extracellular matrix heparan sulfate upon transmigration of mature monocyte-derived dendritic cells.

Benhamron S, Nechushtan H, Verbovetski I, Krispin A, Abboud-Jarrous G, Zcharia E, Edovitsky E, Nahari E, Peretz T, Vlodavsky I, Mevorach D.

J Immunol. 2006 Jun 1;176(11):6417-24.

11.

Mannose 6-phosphate/insulin-like growth factor-II receptor targets the urokinase receptor to lysosomes via a novel binding interaction.

Nykjaer A, Christensen EI, Vorum H, Hager H, Petersen CM, Røigaard H, Min HY, Vilhardt F, Møller LB, Kornfeld S, Gliemann J.

J Cell Biol. 1998 May 4;141(3):815-28.

12.

Expression of heparanase by platelets and circulating cells of the immune system: possible involvement in diapedesis and extravasation.

Vlodavsky I, Eldor A, Haimovitz-Friedman A, Matzner Y, Ishai-Michaeli R, Lider O, Naparstek Y, Cohen IR, Fuks Z.

Invasion Metastasis. 1992;12(2):112-27. Review.

PMID:
1399400
13.

Thrombin enhances degradation of heparan sulfate in the extracellular matrix by tumor cell heparanase.

Benezra M, Vlodavsky I, Bar-Shavit R.

Exp Cell Res. 1992 Jul;201(1):208-15.

PMID:
1612123
16.

Activation, processing and trafficking of extracellular heparanase by primary human fibroblasts.

Nadav L, Eldor A, Yacoby-Zeevi O, Zamir E, Pecker I, Ilan N, Geiger B, Vlodavsky I, Katz BZ.

J Cell Sci. 2002 May 15;115(Pt 10):2179-87.

17.

Histidine-rich glycoprotein binds to cell-surface heparan sulfate via its N-terminal domain following Zn2+ chelation.

Jones AL, Hulett MD, Parish CR.

J Biol Chem. 2004 Jul 16;279(29):30114-22. Epub 2004 May 11.

19.

Murine macrophage heparanase: inhibition and comparison with metastatic tumor cells.

Savion N, Disatnik MH, Nevo Z.

J Cell Physiol. 1987 Jan;130(1):77-84.

PMID:
3805131
20.

Role of heparanase in platelet and tumor cell interactions with the subendothelial extracellular matrix.

Eldor A, Bar-Ner M, Yahalom J, Fuks Z, Vlodavsky I.

Semin Thromb Hemost. 1987 Oct;13(4):475-88. Review.

PMID:
3321438

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