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Published on: May 27, 2022
Development and therapeutic potential of autotaxin small molecule inhibitors: From bench to advanced clinical trials
Alexios N Matralis1, Antreas Afantitis1,2, Vassilis Aidinis1
1Division of Immunology, Biomedical Sciences Research Center "Alexander Fleming", Athens, Greece.
Abstract:
Several years after its isolation from melanoma cells, an increasing body of experimental evidence has established the involvement of Autotaxin (ATX) in the pathogenesis of several diseases. ATX, an extracellular enzyme responsible for the hydrolysis of lysophosphatidylcholine (LPC) into the bioactive lipid lysophosphatidic acid (LPA), is overexpressed in a variety of human metastatic cancers and is strongly implicated in chronic inflammation and liver toxicity, fibrotic diseases, and thrombosis. Accordingly, the ATX-LPA signaling pathway is considered a tractable target for therapeutic intervention substantiated by the multitude of research campaigns that have been successful in identifying ATX inhibitors by both academia and industry. Furthermore, from a therapeutic standpoint, the entry and the so far promising results of the first ATX inhibitor in advanced clinical trials against idiopathic pulmonary fibrosis (IPF) lends support to the viability of this approach, bringing it to the forefront of drug discovery efforts. The present review article aims to provide a comprehensive overview of the most important series of ATX inhibitors developed so far. Special weight is lent to the design, structure activity relationship and mode of binding studies carried out, leading to the identification of advanced leads. The most significant in vitro and in vivo pharmacological results of these advanced leads are also summarized. Lastly, the development of the first ATX inhibitor entered in clinical trials accompanied by its phase 1 and 2a clinical trial data is disclosed.
Insights
Autotaxin (ATX) is implicated in various diseases, including cancer and fibrosis. This review details ATX inhibitors, highlighting promising drug discovery efforts and clinical trial advancements for treating conditions like idiopathic pulmonary fibrosis.
Area of Science:
- Biochemistry
- Pharmacology
- Drug Discovery
Background:
- Autotaxin (ATX) is an enzyme overexpressed in metastatic cancers, chronic inflammation, liver toxicity, fibrotic diseases, and thrombosis.
- The ATX-lysophosphatidic acid (LPA) signaling pathway is a validated therapeutic target due to its role in disease pathogenesis.
Purpose of the Study:
- To provide a comprehensive overview of Autotaxin (ATX) inhibitors.
- To detail the design, structure-activity relationships, and binding modes of identified ATX inhibitors.
- To summarize the pharmacological results of advanced ATX inhibitor leads and clinical trial data.
Main Methods:
- Literature review of academic and industrial research campaigns identifying ATX inhibitors.
- Analysis of structure-activity relationship (SAR) and mode of binding studies.
- Summary of in vitro and in vivo pharmacological data for lead compounds.
Main Results:
- Multiple series of ATX inhibitors have been developed with promising therapeutic potential.
- The first ATX inhibitor has entered advanced clinical trials for idiopathic pulmonary fibrosis (IPF).
- Early clinical data for the first ATX inhibitor in trials are encouraging.
Conclusions:
- The ATX-LPA pathway represents a viable therapeutic target for various diseases.
- Ongoing research and development of ATX inhibitors show significant promise for drug discovery.
- Clinical validation of ATX inhibitors is advancing, particularly for fibrotic diseases like IPF.
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