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Selberg, S.

Publications and source records attributed to Selberg, S..

3 recordsLinked to original sources

Small molecule activation of m6A mRNA methylation as a novel approach for neuroprotection

N6-Methyladenosine (m6A) is the most common mRNA base modification in eukaryotes. Methylation of adenosine residues to m6A contributes to the regulation of splicing, transport, stability, and translation of mRNA and two main classes of enzymes regulate it. The formation of m6A is catalysed by a methyltransferase complex containing methyltransferase-like 3 (METTL3), METTL14, and Wilms tumour 1-associated protein (WTAP) as well as monomeric METTL16. Demethylation of m6A is catalysed by the fat mass and obesity-associated protein FTO and the RNA demethylase AlkB homolog 5 (ALKBH5). The m6A mRNA methylation dysregulation occurs in the nervous system and in Parkinsons disease (PD), but it remains poorly studied. Moreover, the role of m6A mRNA methylation in neuronal survival, neuroprotection, and neuroregeneration is unclear. We have earlier used high-throughput virtual screening of large compound libraries and identified four unique small-molecule ligands that activate m6A mRNA methylation by binding to the METTL3/14/WTAP complex and enhancing the binding of the methylation substrate SAM to nanomolar concentrations. Following this, we now discovered that two methyltransferase activators at 10 nM concentrations supported the survival and protected dopamine (DA) neurons in culture in growth factor deprivation and 6-hydroxydopamine (6-OHDA) neurotoxin models. In contrast, METTL3/14 inhibitor STM2457 triggered death of DA neurons. For clinical translation we also tested the most efficient compound C4 on induced pluripotent stem cell-derived human DA neurons and in animal model of Parkinsons disease (PD). C4 compound protected human DA neurons from 6-OHDA-induced cell death and increased neurite outgrowth and the number of processes demonstrating that it has both neuroprotective and neurorestorative properties. METTL3/14 activator C4 improved motor behaviour and protected DA neurons and their fibres faster and much more efficiently than GDNF in the rat 6-OHDA model of PD. These are the first specific activators of METTL3/14/WTAP and first demonstration that m6A regulators can protect and regenerate neurons. These data demonstrate that m6A mRNA methylation is a novel pathway regulating neuronal survival and regeneration.

neuroscience↗

Novel RNA m6A methyltransferase METTL16 inhibitors

The overexpression of RNA 6-N-methyladenosine (m6A) methyltransferase METTL16 has oncogenic role in the case of several cancer types, including leukemia, but efficient small-molecule inhibitors are not available. Initially identified by high-throughput virtual screening of the ZINC15 database in vivo subset, but then confirmed by measuring catalytic activity, two nanomolar-active METTL16 inhibitors, compounds 1 (IC50 = 25.82 {+/-} 17.19 nM) and 2 (IC50 = 60.91 {+/-} 2.75 nM) were found. The inhibitory activity of the compounds was measured using the m6A antibody-based ELISA assay. We also present the results on the effect of these inhibitors on the viability of promyeloblast HL-60 and lymphoblast CCRF-CEM leukemia cell lines. In unstressed growth conditions, both identified METTL16 inhibitors reduced the viability of HL-60 cells by up to 40%. The effect on the viability of CCRF-CEM cells was smaller with no dose dependency observed. In parallel, the level of the m6A as compared to unmodified adenosine in the HL-60 cell mRNAs was significantly reduced by the inhibitor 1. Collectively, we herein demonstrate novel METTL16 inhibitors that exert tumor cell-lineage-selective antiproliferative effects.

pharmacology and toxicology↗

Small-molecule inhibitors of the RNA m6A demethylase FTO potently support the survival of dopamine neurons

The fat mass and obesity-associated protein (FTO), an RNA N6-methyladenosine (m6A) demethylase, is an important regulator of central nervous system development, neuronal signalling and disease. We present here the target-tailored development and biological characterization of small-molecule inhibitors of FTO. The active compounds were identified using high-throughput molecular docking and molecular dynamics screening of the ZINC compound library. In FTO binding and activity-inhibition assays the two best inhibitors demonstrated Kd = 185 nM; IC50 = 1.46 M (compound 2) and Kd = 337 nM; IC50 = 28.9 M (compound 3). Importantly, the treatment of mouse midbrain dopamine neurons with the compounds promoted cellular survival and rescued them from growth factor deprivation induced apoptosis already at nanomolar concentrations. Moreover, these inhibitors demonstrated good blood-brain-barrier penetration in the model system, 31.7% and 30.8%, respectively. The compounds 2 and 3 protected dopamine neurons with greater potency than our recently developed alkylation repair homolog protein 5 (AlkBH5) m6A demethylase inhibitors. Inhibition of m6A RNA demethylation by small-molecule drugs, as presented here, has therapeutic potential and provides tools for the identification of disease-modifying m6A RNAs in neurogenesis and neuroregeneration. Further refinement of the lead compounds identified in this study, can also lead to unprecedented breakthroughs in the treatment of neurodegenerative diseases.

neuroscience↗