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Taspase1: a 'misunderstood' protease with translational cancer relevance
D Wünsch1, A Hahlbrock1, S Jung2
1Molecular and Cellular Oncology, ENT/University Medical Center of Mainz, Mainz, Germany.
Abstract:
Proteolysis is not only a critical requirement for life, but the executing enzymes also play important roles in numerous pathological conditions, including cancer. Therefore, targeting proteases is clearly relevant for improving cancer patient care. However, to effectively control proteases, a profound knowledge of their mechanistic function as well as their regulation and downstream signalling in health and disease is required. The highly conserved protease Threonine Aspartase1 (Taspase1) is overexpressed in numerous liquid and solid malignancies and was characterized as a 'non-oncogene addiction' protease. Although Taspase1 was shown to cleave various regulatory proteins in humans as well as leukaemia provoking mixed lineage leukaemia fusions, our knowledge on its detailed functions and the underlying mechanisms contributing to cancer is still incomplete. Despite superficial similarity to type 2 asparaginases as well as Ntn proteases, such as the proteasome, Taspase1-related research so far gives us the picture of a unique protease exhibiting special features. Moreover, neither effective genetic nor chemical inhibitors for this enzyme are available so far, thus hampering not only to further dissect Taspase1's pathobiological functions but also precluding the assessment of its clinical impact. Based on recent insights, we here critically review the current knowledge of Taspase1's structure-function relationship and its mechanistic relevance for tumorigenesis obtained from in vitro and in vivo cancer models. We provide a comprehensive overview of tumour entities for which Taspase1 might be of predictive and therapeutic value, and present the respective experimental evidence. To stimulate progress in the field, a comprehensive overview of Taspase1 targeting approaches is presented, including coverage of Taspase1-related patents. We conclude by discussing future inhibition strategies and relevant challenges, which need to be resolved by the field.
Insights
Threonine Aspartase1 (Taspase1) is an overexpressed protease in many cancers. Understanding its unique functions and developing inhibitors are crucial for cancer therapy and patient care.
Area of Science:
- Biochemistry
- Molecular Biology
- Oncology
Background:
- Proteolysis is vital for life and implicated in cancer pathogenesis.
- Threonine Aspartase1 (Taspase1) is overexpressed in various malignancies.
- Taspase1's precise role and mechanisms in cancer remain incompletely understood.
Purpose of the Study:
- To critically review the current knowledge on Taspase1's structure-function relationship and its role in tumorigenesis.
- To provide an overview of Taspase1's potential predictive and therapeutic value in different tumor types.
- To present Taspase1 targeting strategies and discuss future inhibition challenges.
Main Methods:
- Review of in vitro and in vivo cancer models.
- Analysis of Taspase1's structure-function relationship.
- Compilation of existing Taspase1 targeting approaches and patents.
Main Results:
- Taspase1 exhibits unique features distinct from similar proteases.
- Evidence suggests Taspase1's involvement in various liquid and solid tumors.
- Lack of effective Taspase1 inhibitors hinders further research and clinical assessment.
Conclusions:
- Taspase1 is a promising target for cancer therapy.
- Further research into Taspase1's mechanisms and inhibitor development is essential.
- Resolving challenges in Taspase1 inhibition is key to realizing its clinical potential.
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