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Pre-clinical Evaluation of Tyrosine Kinase Inhibitors for Treatment of Acute Leukemia
Published on: September 18, 2013
Preclinical characterization of tunlametinib, a novel, potent, and selective MEK inhibitor
Yahong Liu1, Ying Cheng1, Gongchao Huang1
1Shanghai Kechow Pharma, Inc., Shanghai, China.
Abstract:
Background: Aberrant activation of RAS-RAF-MEK-ERK signaling pathway has been implicated in more than one-third of all malignancies. MEK inhibitors are promising therapeutic approaches to target this signaling pathway. Though four MEK inhibitors have been approved by FDA, these compounds possess either limited efficacy or unfavorable PK profiles with toxicity issues, hindering their broadly application in clinic. Our efforts were focused on the design and development of a novel MEK inhibitor, which subsequently led to the discovery of tunlametinib. Methods: This study verified the superiority of tunlametinib over the current MEK inhibitors in preclinical studies. The protein kinase selectivity activity of tunlametinib was evaluated against 77 kinases. Anti-proliferation activity was analyzed using the 3-(4,5-dimethylthiazole-2-yl)-2,5-diphenyl-2H-tetrazolium bromide (MTT) or (3-(4,5-dimethylthiazol-2-yl)-5-(3-carboxymethoxyphenyl)-2-(4-sulfophenyl)-2H-tetrazolium) (MTS) assay. ERK and phospho-ERK levels were evaluated by Western blot analysis. Flow cytometry analysis was employed to investigate cell cycle and arrest. Cell-derived xenograft (CDX) and Patient-derived xenograft (PDX) models were used to evaluate the tumor growth inhibition. The efficacy of tunlametinib as monotherapy treatment was evaluated in KRAS/BRAF mutant or wild type xenograft model. Furthermore, the combination studies of tunlametinib with BRAF/KRASG12C/SHP2 inhibitors or chemotherapeutic agent were conducted by using the cell proliferation assay in vitro and xenograft models in vivo. Results: In vitro, tunlametinib demonstrated high selectivity with approximately 19-fold greater potency against MEK kinase than MEK162, and nearly 10-100-fold greater potency against RAS/RAF mutant cell lines than AZD6244. In vivo, tunlametinib resulted in dramatic tumor suppression and profound inhibition of ERK phosphorylation in tumor tissue. Mechanistic study revealed that tunlametinib induced cell cycle arrest at G0/G1 phase and apoptosis of cells in a dose-proportional manner. In addition, tunlametinib demonstrated a favorable pharmacokinetic profile with dose-proportionality and good oral bioavailability, with minimal drug exposure accumulation. Furthermore, tunlametinib combined with BRAF/KRASG12C/SHP2 inhibitors or docetaxel showed synergistically enhanced response and marked tumor inhibition. Conclusion: Tunlametinib exhibited a promising approach for treating RAS/RAF mutant cancers alone or as combination therapies, supporting the evaluation in clinical trials. Currently, the first-in-human phase 1 study and pivotal clinical trial of tunlametinib as monotherapy have been completed and pivotal trials as combination therapy are ongoing.
Insights
Tunlametinib, a novel MEK inhibitor, shows superior preclinical efficacy and a favorable pharmacokinetic profile for treating RAS/RAF-mutant cancers. It demonstrates potent anti-tumor activity alone and synergistically enhances combination therapies, supporting clinical evaluation.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- Aberrant RAS-RAF-MEK-ERK signaling drives over a third of human malignancies.
- Existing MEK inhibitors face limitations in efficacy, pharmacokinetics, and toxicity.
- Development of novel MEK inhibitors like tunlametinib is crucial for improved cancer therapy.
Purpose of the Study:
- To evaluate the preclinical efficacy and pharmacokinetic profile of tunlametinib, a novel MEK inhibitor.
- To compare tunlametinib's potency and selectivity against existing MEK inhibitors.
- To investigate tunlametinib's therapeutic potential as a monotherapy and in combination regimens.
Main Methods:
- Kinase selectivity profiling against 77 kinases.
- In vitro anti-proliferation assays (MTT/MTS) and Western blot analysis for ERK phosphorylation.
- In vivo studies using CDX and PDX models, including combination therapies with other inhibitors and chemotherapy.
Main Results:
- Tunlametinib exhibited superior potency against MEK kinase and RAS/RAF mutant cell lines compared to current inhibitors.
- In vivo studies showed dramatic tumor suppression, ERK phosphorylation inhibition, cell cycle arrest, and apoptosis.
- Tunlametinib demonstrated a favorable pharmacokinetic profile and synergistic anti-tumor effects in combination therapies.
Conclusions:
- Tunlametinib represents a promising therapeutic agent for RAS/RAF-mutant cancers, both as a monotherapy and in combination.
- Preclinical data support tunlametinib's advancement into clinical trials.
- Ongoing clinical trials are evaluating tunlametinib's efficacy in monotherapy and combination settings.
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