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Takeda, R.

Publications and source records attributed to Takeda, R..

2 recordsLinked to original sources

Pharmacodynamic evaluation of AUM001/tinodasertib, an oral inhibitor of mitogen-activated protein kinase (MAPK)-interacting protein kinase 1, 2 (MNK1/2) in preclinical models and tissues from a Phase 1 clinical study

Mitogen-activated protein kinase (MAPK) interacting kinase (MNK) inhibitors affect cap-dependent mRNA translation by blocking the phosphorylation of RNA-binding proteins such as the eukaryotic initiation factor 4E (eIF4E). Phosphorylation on serine (Ser) 209 of eIF4E causes hyperactivation and dysregulation of mRNA translation, which is a hallmark of numerous malignancies. AUM001/Tinodasertib (ETC-206) is a selective and potent oral kinase inhibitor of MNK1 and MNK2 (IC50 of 64 and 86 nM, respectively), inducing dose-dependent inhibition of eIF4E phosphorylation on Ser209 (p-eIF4E) with an IC50 of 0.8 {micro}M in K562-eIF4E cells. In mice, single oral doses of [~]12.5 mg/kg led to rapid (1-2 h post-dose) [~]70% inhibition of p-eIF4E in different normal or tumor tissues at a plasma concentration of 8.6 M. However, in peripheral blood mononuclear cells (PBMCs), obtained from human healthy volunteers (HVs) in a Ph1 study, single oral doses of 10 or 20 mg ETC-206 did not show inhibitory activity up to 12 h post-dose, instead ETC-206 caused a statistically significant (p=0.0037) p-eIF4E inhibition in PBMCs of 24% at 24 h post-dose with 10 mg, and an inhibition of [≥]27 % up to 52% was seen in 11/14 subjects in the 20 mg group where ETC-206 plasma concentrations remained above the IC50 for p-eIF4E (1.7 {micro}M) for 30 h. While in mouse pharmacodynamic (PD) activity was also shown in tumor, skin, and hair follicles (HFs), in human tissues, PBMCs showed a trend for delayed PD inhibition and skin was not a suitable surrogate. Analysis of pharmacokinetic (PK) and PD relationships shown herein demonstrate excellent pharmaceutical properties of ETC-206 which has now advanced to Ph2 clinical trials (NCT05462236).

cancer biology↗

A nuclear import pathway exploited by viroid RNAs

The prevailing view regarding intracellular RNA trafficking in eukaryotic cells describes that RNAs transcribed in the nucleus either stay in the nucleus or cross the nuclear envelope entering the cytoplasm for function. Interestingly, emerging evidence illustrates numerous functional RNAs trafficking in the reverse direction from the cytoplasm to the nucleus. However, the mechanism underlying the RNA nuclear import has not been well elucidated. Viroids are single-stranded circular noncoding RNAs that infect plants. Using nuclear-replicating viroids as a model, we showed that cellular Importin alpha-4 is likely involved in viroid RNA nuclear import, empirically supporting the involvement of Importin-based cellular pathway in RNA nuclear import. We also confirmed the involvement of a cellular protein (Virp1) that binds both Importin alpha-4 and viroids. Furthermore, a conserved C-loop in nuclear-replicating viroids is critical for Virp1 binding. Disrupting C-loop impairs Virp1 binding, viroid nuclear accumulation and infectivity. Further, C-loop exists in a subviral satellite noncoding RNA that relies on Virp1 for nuclear import. These results have significant implications for understanding the infection process of subviral agents. In addition, our data outline a cellular pathway responsible for the nuclear import of RNAs and uncover a 3-dimensional RNA motif-based regulation over RNA nuclear import.

plant biology↗