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Published on: January 22, 2019
Identification and structural analysis of a selective tropomyosin receptor kinase C (TRKC) inhibitor
Zhijie Wang1, Jiwei Ren1, Kun Jia1
1School of Science, China Pharmaceutical University, Nanjing, 211198, PR China.
Abstract:
Tropomyosin receptor kinases (TRKs) are a family of TRKA, TRKB and TRKC isoforms. It has been widely reported that TRKs are implicated in a variety of tumors with several Pan-TRK inhibitors currently being used or evaluated in clinical treatment. However, off-target adverse events frequently occur in the clinical use of Pan-TRK inhibitors, which result in poor patient compliance, even drug discontinuation. Although a subtype-selectivity TRK inhibitor may avert the potential off-target adverse events and can act as a more powerful tool compound in the biochemical studies on TRKs, the high sequence similarities of TRKs hinder the development of subtype-selectivity TRK inhibitors. For example, no selective TRKC inhibitor has been reported. Herein, a selective TRKC inhibitor (L13) was disclosed, with potent TRKC inhibitory activity and 107.5-/34.9-fold selectivity over TRKA/B (IC50 TRKA/B/C = 1400 nM, 454 nM, 13 nM, respectively). Extensive molecular dynamics simulations illustrated that key interactions of L13 with the residues and diversely conserved water molecules in the ribose regions of different TRKs may be the structural basis of selectivity. This will provide inspiring insights into the development of subtype-selectivity TRK inhibitors. Moreover, L13 could serve as a tool compound to investigate the distinct biological functions of TRKC and a starting point for further research on drugs specifically targeting TRKC.
Insights
A novel selective TRKC inhibitor, L13, has been developed to overcome the limitations of pan-TRK inhibitors. This selective inhibitor shows high potency against TRKC, offering potential for targeted cancer therapy and biochemical research.
Area of Science:
- Oncology
- Pharmacology
- Structural Biology
Background:
- Tropomyosin receptor kinases (TRKs), including TRKA, TRKB, and TRKC, are implicated in various cancers.
- Current pan-TRK inhibitors cause off-target adverse events, leading to poor patient compliance.
- Developing subtype-selective TRK inhibitors is challenging due to high sequence similarity among TRKs.
Purpose of the Study:
- To develop a subtype-selective TRK inhibitor targeting TRKC.
- To investigate the structural basis for TRK subtype selectivity.
- To provide a tool compound for studying TRKC-specific functions.
Main Methods:
- Design and synthesis of a selective TRKC inhibitor (L13).
- Biochemical assays to determine inhibitory activity and selectivity against TRKA, TRKB, and TRKC.
- Molecular dynamics simulations to elucidate the structural basis of selectivity.
Main Results:
- L13 demonstrated potent TRKC inhibitory activity (IC50 = 13 nM).
- L13 exhibited high selectivity over TRKA (107.5-fold) and TRKB (34.9-fold).
- Molecular dynamics simulations revealed key interactions in the ribose region contributing to L13's selectivity.
Conclusions:
- L13 represents a highly selective TRKC inhibitor, addressing the limitations of pan-TRK inhibitors.
- The structural insights from molecular dynamics simulations provide a basis for developing other subtype-selective TRK inhibitors.
- L13 can serve as a valuable tool compound for TRKC-specific research and drug development.
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