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Updated: Jul 8, 2025

Functionalized Spirocyclic Heterocycle Synthesis and Cytotoxicity Assay
Published on: February 9, 2021
Synthesis and evaluation of tirbanibulin derivatives: a detailed exploration of the structure-activity relationship
Jaebeom Park1,2, Minji Kang1,3, Ahyoung Lim1
1Therapeutics & Biotechnology Division, Korea Research Institute of Chemical Technology Daejeon 34114 Republic of Korea bkoh@krict.re.kr hjeon@krict.re.kr.
Abstract:
Tirbanibulin, an FDA-approved microtubule-targeting agent (MTA) introduced in 2020, represents a pioneering treatment for precancerous actinic keratosis. Despite its failure to gain approval as an anticancer agent due to insufficient efficacy, there remains potential value in extending its application into malignancy treatment through tirbanibulin-based derivatives. Tirbanibulin possesses a distinctive dual mechanism of action involving microtubule and Src inhibition, distinguishing it from other MTAs. In spite of its unique profile, exploration of tirbanibulin's structure-activity relationship (SAR) and the development of its derivatives are significantly limited in the current literature. This study addresses this gap by synthesizing various tirbanibulin derivatives and exploring their SAR through modifications in the core amide motif and the eastern benzylamine part. Our results underscore the critical role of the pyridinyl acetamide core structure for optimal cellular potency, with favorable tolerance observed for modifications at the para position of the benzylamine moiety. Particularly noteworthy is the analogue modified with p-fluorine benzylamine, which exhibited favorable in vivo PK profiles. These findings provide crucial insights into the potential advancement of tirbanibulin-based compounds as promising anticancer agents.
Insights
Tirbanibulin derivatives show promise for cancer treatment. Modifications to the core structure and benzylamine part improved cellular potency and in vivo profiles, suggesting potential for new anticancer agents.
Area of Science:
- Medicinal Chemistry
- Pharmacology
- Oncology
Background:
- Tirbanibulin, an FDA-approved microtubule-targeting agent (MTA), is used for actinic keratosis.
- Its potential as an anticancer agent is unexplored due to insufficient efficacy.
- Tirbanibulin has a unique dual mechanism: microtubule and Src inhibition.
Purpose of the Study:
- To synthesize tirbanibulin derivatives and explore their structure-activity relationship (SAR).
- To investigate the potential of these derivatives as anticancer agents.
- To address the limited literature on tirbanibulin's SAR and derivative development.
Main Methods:
- Synthesis of various tirbanibulin derivatives.
- Modification of the core amide motif and the eastern benzylamine part.
- Evaluation of cellular potency and in vivo pharmacokinetic (PK) profiles.
Main Results:
- The pyridinyl acetamide core structure is critical for optimal cellular potency.
- Modifications at the para position of the benzylamine moiety were well-tolerated.
- A p-fluorine benzylamine analogue showed favorable in vivo PK profiles.
Conclusions:
- Tirbanibulin derivatives hold potential for advancement as anticancer agents.
- SAR insights guide the development of more potent and effective tirbanibulin-based compounds.
- Further research into these derivatives could lead to novel cancer therapies.
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