Literature DB >> 16901744

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

Neta Ilan1, Michael Elkin, Israel Vlodavsky.   

Abstract

Heparanase is an endoglycosidase which cleaves heparan sulfate (HS) and hence participates in degradation and remodeling of the extracellular matrix (ECM). Heparanase is preferentially expressed in human tumors and its over-expression in tumor cells confers an invasive phenotype in experimental animals. The enzyme also releases angiogenic factors from the ECM and thereby induces an angiogenic response in vivo. Heparanase upregulation correlates with increased tumor vascularity and poor post-operative survival of cancer patients. Heparanase is synthesized as a 65 kDa inactive precursor that undergoes proteolytic cleavage, yielding 8 and 50 kDa protein subunits that heterodimerize to form an active enzyme. Human heparanase is localized primarily within late endosomes and lysosomes and occasionally on the cell surface and within the cell nucleus. Transcriptional activity of the heparanase promoter is stimulated by demethylation, early growth response 1 (EGR1) transcription factor, estrogen, inflammatory cytokines and inactivation of p53. N-acetylated glycol-split species of heparin as well as siRNA heparanase gene silencing inhibit tumor metastasis and angiogenesis in experimental models. These observations and the unexpected identification of a single functional heparanase, suggest that the enzyme is a promising target for anti-cancer and anti-inflammatory drug development. Heparanase exhibits also non-enzymatic activities, independent of its involvement in ECM degradation and changes in the extracellular microenvironment. For example, cell surface expression of heparanase elicits a firm cell adhesion, reflecting an involvement in cell-ECM interaction. Heparanase enhances Akt signaling and stimulates PI3K- and p38-dependent endothelial cell migration and invasion. It also promotes VEGF expression via the Src pathway. The enzyme may thus activate endothelial cells and elicits angiogenic and survival responses. Studies with heparanase over-expressing transgenic mice revealed that the enzyme functions in normal processes involving cell mobilization, HS turnover, tissue vascularization and remodeling. In this review, we summarize the current status of heparanase research, emphasizing molecular and cellular aspects of the enzyme, including its mode of processing and activation, control of heparanase gene expression, enzymatic and non-enzymatic functions, and causal involvement in cancer metastasis and angiogenesis. We also discuss clinical aspects and strategies for the development of heparanase inhibitors.

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Year:  2006        PMID: 16901744     DOI: 10.1016/j.biocel.2006.06.004

Source DB:  PubMed          Journal:  Int J Biochem Cell Biol        ISSN: 1357-2725            Impact factor:   5.085


  218 in total

1.  Expression of heparanase in vascular cells and astrocytes of the mouse brain after focal cerebral ischemia.

Authors:  Jimei Li; Jin-Ping Li; Xiao Zhang; Zhongyang Lu; Shan Ping Yu; Ling Wei
Journal:  Brain Res       Date:  2011-11-19       Impact factor: 3.252

2.  Functional and structural characterization of a heparanase.

Authors:  Lisa Bohlmann; Gregory D Tredwell; Xing Yu; Chih-Wei Chang; Thomas Haselhorst; Moritz Winger; Jeffrey C Dyason; Robin J Thomson; Joe Tiralongo; Ifor R Beacham; Helen Blanchard; Mark von Itzstein
Journal:  Nat Chem Biol       Date:  2015-11-02       Impact factor: 15.040

3.  Heparanase-neutralizing antibodies attenuate lymphoma tumor growth and metastasis.

Authors:  Marina Weissmann; Gil Arvatz; Netanel Horowitz; Sari Feld; Inna Naroditsky; Yi Zhang; Mary Ng; Edward Hammond; Eviatar Nevo; Israel Vlodavsky; Neta Ilan
Journal:  Proc Natl Acad Sci U S A       Date:  2016-01-04       Impact factor: 11.205

Review 4.  Non-anticoagulant heparins and inhibition of cancer.

Authors:  Benito Casu; Israel Vlodavsky; Ralph D Sanderson
Journal:  Pathophysiol Haemost Thromb       Date:  2009-01-27

5.  Heparanase augments epidermal growth factor receptor phosphorylation: correlation with head and neck tumor progression.

Authors:  Victoria Cohen-Kaplan; Ilana Doweck; Inna Naroditsky; Israel Vlodavsky; Neta Ilan
Journal:  Cancer Res       Date:  2008-12-15       Impact factor: 12.701

6.  A novel human heparanase splice variant, T5, endowed with protumorigenic characteristics.

Authors:  Uri Barash; Victoria Cohen-Kaplan; Gil Arvatz; Svetlana Gingis-Velitski; Flonia Levy-Adam; Ofer Nativ; Ronen Shemesh; Michal Ayalon-Sofer; Neta Ilan; Israel Vlodavsky
Journal:  FASEB J       Date:  2009-12-09       Impact factor: 5.191

Review 7.  Mechanisms of heparanase inhibitors in cancer therapy.

Authors:  Benjamin Heyman; Yiping Yang
Journal:  Exp Hematol       Date:  2016-08-26       Impact factor: 3.084

8.  Low and high affinity receptors mediate cellular uptake of heparanase.

Authors:  Olga Ben-Zaken; Itay Shafat; Svetlana Gingis-Velitski; Haim Bangio; Idil Kasuto Kelson; Tal Alergand; Yehudit Amor; Ruth Ben-Yakar Maya; Israel Vlodavsky; Neta Ilan
Journal:  Int J Biochem Cell Biol       Date:  2007-09-29       Impact factor: 5.085

Review 9.  Versatile role of heparanase in inflammation.

Authors:  Rachel Goldberg; Amichay Meirovitz; Nir Hirshoren; Raanan Bulvik; Adi Binder; Ariel M Rubinstein; Michael Elkin
Journal:  Matrix Biol       Date:  2013-03-13       Impact factor: 11.583

Review 10.  Involvement of heparanase in atherosclerosis and other vessel wall pathologies.

Authors:  Israel Vlodavsky; Miry Blich; Jin-Ping Li; Ralph D Sanderson; Neta Ilan
Journal:  Matrix Biol       Date:  2013-03-13       Impact factor: 11.583

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