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Heparanase: A Challenging Cancer Drug Target
Deirdre R Coombe1, Neha S Gandhi2
1School of Pharmacy and Biomedical Sciences, Curtin Health Innovation Research Institute, Faculty of Health Sciences, Curtin University, Perth, WA, Australia.
Abstract:
Heparanase has been viewed as a promising anti-cancer drug target for almost two decades, but no anti-heparanase therapy has yet reached the clinic. This endoglycosidase is highly expressed in a variety of malignancies, and its high expression is associated with greater tumor size, more metastases, and a poor prognosis. It was first described as an enzyme cleaving heparan sulfate chains of proteoglycans located in extracellular matrices and on cell surfaces, but this is not its only function. It is a multi-functional protein with activities that are enzymatic and non-enzymatic and which take place both outside of the cell and intracellularly. Knowledge of the crystal structure of heparanase has assisted the interpretation of earlier structure-function studies as well as in the design of potential anti-heparanase agents. This review re-examines the various functions of heparanase in light of the structural data. The functions of the heparanase variant, T5, and structure and functions of heparanase-2 are also examined as these heparanase related, but non-enzymatic, proteins are likely to influence the in vivo efficacy of anti-heparanase drugs. The anti-heparanase drugs currently under development predominately focus on inhibiting the enzymatic activity of heparanase, which, in the absence of inhibitors with high clinical efficacy, prompts a discussion of whether this is the best approach. The diversity of outcomes attributed to heparanase and the difficulties of unequivocally determining which of these are due to its enzymatic activity is also discussed and leads us to the conclusion that heparanase is a valid, but challenging drug target for cancer.
Insights
Heparanase is a promising cancer target, but its complex functions and challenging drug development hinder clinical success. Further research is needed to overcome these obstacles for effective anti-heparanse therapies.
Area of Science:
- Biochemistry
- Molecular Biology
- Cancer Research
Background:
- Heparanase is highly expressed in many cancers, correlating with poor prognosis.
- Despite being a target for two decades, no anti-heparanase therapy has reached clinical trials.
- Heparanase possesses diverse enzymatic and non-enzymatic functions both intracellularly and extracellularly.
Purpose of the Study:
- To re-examine heparanase functions in light of structural data.
- To discuss the roles of heparanase variants and related proteins in drug efficacy.
- To evaluate current anti-heparanase drug development strategies.
Main Methods:
- Review of existing literature and structural data of heparanase.
- Analysis of heparanase structure-function relationships.
- Discussion of enzymatic versus non-enzymatic roles in cancer progression.
Main Results:
- Crystal structure knowledge aids in understanding heparanase functions and designing inhibitors.
- Heparanase-related proteins (e.g., T5, heparanase-2) influence anti-heparanase drug efficacy.
- Current drugs primarily target enzymatic activity, which may not be sufficient.
Conclusions:
- Heparanase is a valid but challenging cancer drug target.
- The multifaceted nature of heparanase necessitates a broader therapeutic approach.
- Further investigation into non-enzymatic functions and novel drug strategies is crucial.
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