A novel NMDA receptor test model based on hiPSC-derived neural cells
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Paul Disse
, Isabel Aymanns
, Nadine Ritter
, Stefan Peischard
, Lisanne Korn , Heinz Wiendl , Matthias Pawlowski , Stjepana Kovac , Sven G. Meuth, Thomas Budde
, Nathalie Strutz-Seebohm
, Bernhard Wünschund Guiscard Seebohm
Abstract
N-Methyl-D-aspartate receptors (NMDARs) are central for learning and information processing in the brain. Dysfunction of NMDARs can play a key role in the pathogenesis of neurodegeneration and drug addiction. The development of selective NMDAR modulators represents a promising strategy to target these diseases. Among such modulating compounds are ifenprodil and its 3-benzazepine derivatives. Classically, the effects of these NMDAR modulators have been tested by techniques like two-electrode voltage clamp (TEVC), patch clamp, or fluorescence-based assays. However, testing their functional effects in complex human systems requires more advanced approaches. Here, we established a human induced pluripotent stem cell-derived (hiPSC-derived) neural cell system and proved its eligibility as a test system for investigating NMDAR modulators and pharmaceutical effects on human neurons.
Funding source: Deutsche Forschungsgemeinschaft
Award Identifier / Grant number: GRK2515
Acknowledgments
We thank Anne Humberg for her excellent technical assistance.
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Author contributions: All the authors have accepted responsibility for the entire content of this submitted manuscript and approved submission.
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Research funding: This work was supported by the Research Training Group “Chemical biology of ion channels (Chembion)” funded by the Deutsche Forschungsgemeinschaft (DFG) and the MedK Münster, which is gratefully acknowledged.
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Conflict of interest statement: The authors declare to have no competing interests.
References
Adell, A. (2020). Brain NMDA receptors in schizophrenia and depression. Biomolecules 10: 947, https://doi.org/10.3390/biom10060947.Suche in Google Scholar PubMed PubMed Central
Ahmed, H., Wallimann, R., Haider, A., Hosseini, V., Gruber, S., Robledo, M., Nguyan, T., Müller Herde, A., Iten, I., Keller, C., et al.. (2021). Preclinical development of 18F-OF-NB1 for imaging GluN2B-containing N-Methyl-D-Aspartate receptors and its utility as a biomarker for amyotrophic lateral sclerosis. J. Nucl. Med. 62: 259–265, https://doi.org/10.2967/jnumed.120.246785.Suche in Google Scholar PubMed
Berlese, D.B., Sauzem, P.D., Carati, M.C., Guerra, G.P., Stiegemeier, J.A., Mello, C.F., and Rubin, M.A. (2005). Time-dependent modulation of inhibitory avoidance memory by spermidine in rats. Neurobiol. Learn. Mem. 83: 48–53, https://doi.org/10.1016/j.nlm.2004.07.004.Suche in Google Scholar PubMed
Borza, I. and Domány, G. (2006). NR2B selective NMDA antagonists: the evolution of the ifenprodil-type pharmacophore. Curr. Top. Med. Chem. 6: 687–695, https://doi.org/10.2174/156802606776894456.Suche in Google Scholar PubMed
Bräuner-Osborne, H., Egebjerg, J., Nielsen, E.O., Madsen, U., and Krogsgaard-Larsen, P. (2000). Ligands for glutamate receptors: design and therapeutic prospects. J. Med. Chem. 43: 2609–2645, https://doi.org/10.1021/jm000007r.Suche in Google Scholar PubMed
Colombres, M., Henríquez, J.P., Reig, G.F., Scheu, J., Calderón, R., Alvarez, A., Brandan, E., and Inestrosa, N.C. (2008). Heparin activates Wnt signaling for neuronal morphogenesis. J. Cell. Physiol. 216: 805–815, https://doi.org/10.1002/jcp.21465.Suche in Google Scholar PubMed
Cull-Candy, S., Brickley, S., and Farrant, M. (2001). NMDA receptor subunits: diversity, development and disease. Curr. Opin. Neurobiol. 11: 327–335, https://doi.org/10.1016/s0959-4388(00)00215-4.Suche in Google Scholar PubMed
D’Aiuto, L., Zhi, Y., Kumar Das, D., Wilcox, M.R., Johnson, J.W., McClain, L., MacDonald, M.L., Di Maio, R., Schurdak, M.E., Piazza, P., et al.. (2014). Large-scale generation of human iPSC-derived neural stem cells/early neural progenitor cells and their neuronal differentiation. Organogenesis 10: 365–377, https://doi.org/10.1080/15476278.2015.1011921.Suche in Google Scholar PubMed PubMed Central
Danysz, W. and Parsons, C.G. (1998). Glycine and N-methyl-D-aspartate receptors: physiological significance and possible therapeutic applications. Pharmacol. Rev. 50: 597–664.Suche in Google Scholar
Falck, E., Begrow, F., Verspohl, E.J., and Wünsch, B. (2014). In vitro and in vivo biotransformation of WMS-1410, a potent GluN2B selective NMDA receptor antagonist. J. Pharm. Biomed. Anal. 94: 36–44, https://doi.org/10.1016/j.jpba.2014.01.017.Suche in Google Scholar PubMed
Grynkiewicz, G., Poenie, M., and Tsien, R.Y. (1985). A new generation of Ca2+ indicators with greatly improved fluorescence properties. J. Biol. Chem. 260: 3440–3450, https://doi.org/10.1016/s0021-9258(19)83641-4.Suche in Google Scholar
Haider, A., Müller Herde, A., Krämer, S.D., Varisco, J., Keller, C., Frauenknecht, K., Auberson, Y.P., Temme, L., Robaa, D., Sippl, W., et al.. (2019). Preclinical evaluation of benzazepine-based PET radioligands (R)-and (S)-11C-Me-NB1 reveals distinct enantiomeric binding patterns and a tightrope walk between GluN2B-and σ1-receptor-targeted PET imaging. J. Nucl. Med. 60: 1167–1173, https://doi.org/10.2967/jnumed.118.221051.Suche in Google Scholar PubMed PubMed Central
Haider, A., Iten, I., Ahmed, H., Müller Herder, A., Gruber, S., Krämer, S.D., Keller, C., Schibli, R., Wünsch, B., Mu, L., et al.. (2018). Identification and preclinical evaluation of a radiofluorinated benzazepine derivative for imaging the GluN2B subunit of the ionotropic NMDA receptor. J. Nucl. Med. 60: 259–266, https://doi.org/10.2967/jnumed.118.212134.Suche in Google Scholar PubMed PubMed Central
Hansen, K.B., Yi, F., Perszyk, R.E., Furukawa, H., Wollmuth, L.P., Gibb, A.J., and Traynelis, S.F. (2018). Structure, function, and allosteric modulation of NMDA receptors. J. Gen. Physiol. 150: 1081–1105, https://doi.org/10.1085/jgp.201812032.Suche in Google Scholar PubMed PubMed Central
Hu, W., Tian, C., Li, T., Yang, M., Hou, H., and Shu, Y. (2009). Distinct contributions of Na(v)1.6 and Na(v)1.2 in action potential initiation and backpropagation. Nat. Neurosci. 12: 996–1002, https://doi.org/10.1038/nn.2359.Suche in Google Scholar PubMed
Ivan Ezquerra-Romano, I., Lawn, W., Krupitsky, E., and Morgan, C.J.A. (2018). Ketamine for the treatment of addiction: evidence and potential mechanisms. Neuropharmacology 142: 72–82, https://doi.org/10.1016/j.neuropharm.2018.01.017.Suche in Google Scholar PubMed
Ishima, T. and Hashimoto, K. (2012). Potentiation of nerve growth factor-induced neurite outgrowth in PC12 cells by ifenprodil: the role of sigma-1 and IP3 receptors. PLoS One 7: e37989, https://doi.org/10.1371/journal.pone.0037989.Suche in Google Scholar PubMed PubMed Central
Karakas, E. and Furukawa, H. (2014). Crystal structure of a heterotetrameric NMDA receptor ion channel. Science 344: 992–997, https://doi.org/10.1126/science.1251915.Suche in Google Scholar PubMed PubMed Central
Lau, C.G. and Zukin, R.Z. (2007). NMDA receptor trafficking in synaptic plasticity and neuropsychiatric disorders. Nat. Rev. Neurosci. 8: 413–426, https://doi.org/10.1038/nrn2153.Suche in Google Scholar PubMed
Liu, J., Chang, L., Song, Y., Li, H., and Wu, Y. (2019). The role of NMDA receptors in alzheimer’s disease. Front. Neurosci. 13: 43, https://doi.org/10.3389/fnins.2019.00043.Suche in Google Scholar PubMed PubMed Central
Mayer, M.L., Westbrook, G.L., and Guthrie, P.B. (1984). Voltage-dependent block by Mg2+ of NMDA responses in spinal cord neurones. Nature 309: 261–263, https://doi.org/10.1038/309261a0.Suche in Google Scholar PubMed
Mochida, S. (2019). Presynaptic calcium channels. Int. J. Mol. Sci. 20: 2217, https://doi.org/10.3390/ijms20092217.Suche in Google Scholar PubMed PubMed Central
Nowak, L., Bregestovski, P., Ascher, P., Herbet, A., and Prochiantz, A. (1984). Magnesium gates glutamate-activated channels in mouse central neurones. Nature 307: 462–465, https://doi.org/10.1038/307462a0.Suche in Google Scholar PubMed
Paoletti, P., Bellone, C., and Zhou, Q. (2013). NMDA receptor subunit diversity: impact on receptor properties, synaptic plasticity and disease. Nat. Rev. Neurosci. 14: 383–400, https://doi.org/10.1038/nrn3504.Suche in Google Scholar PubMed
Paoletti, P. and Neyton, J. (2007). NMDA receptor subunits: function and pharmacology. Curr. Opin. Pharmacol. 7: 39–47, https://doi.org/10.1016/j.coph.2006.08.011.Suche in Google Scholar PubMed
Papouin, T., Ladépêche, L., Ruel, J., Sacchi, S., Labasque, M., Hanini, M., Groc, L., Pollegioni, L., Mothet, J.-P., and Oliet, S.H.R. (2012). Synaptic and extrasynaptic NMDA receptors are gated by different endogenous coagonists. Cell 150: 633–646, https://doi.org/10.1016/j.cell.2012.06.029.Suche in Google Scholar PubMed
Rakovic, A., Voß, D., Vulinovic, F., Meier, B., Hellberg, A.-K., Nau, C., Klein, C., and Leipold, E. (2022). Electrophysiological properties of induced pluripotent stem cell-derived midbrain dopaminergic neurons correlate with expression of tyrosine hydroxylase. Front. Cell. Neurosci. 16: 817198, https://doi.org/10.3389/fncel.2022.817198.Suche in Google Scholar PubMed PubMed Central
Renner, H., Becker, K.J., Kagermeier, T.E., Grabos, M., Eliat, F., Günther, P., Schöler, H.R., and Bruder, J.M. (2021). Cell-Type-specific high throughput toxicity testing in human midbrain organoids. Front. Mol. Neurosci. 14: 715054, https://doi.org/10.3389/fnmol.2021.715054.Suche in Google Scholar PubMed PubMed Central
Renner, H., Grabos, M., Becker, K.J., Kagermeier, T.E., Wu, J., Otto, M., Peischard, S., Zeuschner, D., TsyTsyura, Disse, P., et al.. (2020). A fully automated high-throughput workflow for 3D-based chemical screening in human midbrain organoids. Elife 9: e52904, https://doi.org/10.7554/eLife.52904.Suche in Google Scholar PubMed PubMed Central
Ritter, N., Korff, M., MarkusSchepmann, A.D., Seebohm, G., Schreiber, J.A., and Wünsch, B. (2021). Deconstruction-reconstruction: analysis of the crucial structural elements of GluN2B-selective, negative allosteric NMDA receptor modulators with 3-benzazepine scaffold. Cell. Physiol. Biochem. 55: 1–13, https://doi.org/10.33594/000000335.Suche in Google Scholar PubMed
Rowe, R.G. and Daley, G.Q. (2019). Induced pluripotent stem cells in disease modelling and drug discovery. Nat. Rev. Genet. 20: 377–388, https://doi.org/10.1038/s41576-019-0100-z.Suche in Google Scholar PubMed PubMed Central
Rujano, M.A., Pina, P., Servitja, J.M., Ahumada, A.M., Picatoste, F., Farrés, J., and Sabrià, J. (2004). Retinoic acid-induced differentiation into astrocytes and glutamatergic neurons is associated with expression of functional and activable phospholipase D. Biochem. Biophys. Res. Commun. 316: 387–392, https://doi.org/10.1016/j.bbrc.2004.02.057.Suche in Google Scholar PubMed
Tewes, B., Frehland, B., Schepmann, D., Schmidtke, K.-U., Winckler, T., and Wünsch, B. (2010a). Conformationally constrained NR2B selective NMDA receptor antagonists derived from ifenprodil: synthesis and biological evaluation of tetrahydro-3-benzazepine-1,7-diols. Bioorg. Med. Chem. 18: 8005–8015, https://doi.org/10.1016/j.bmc.2010.09.026.Suche in Google Scholar PubMed
Tewes, B., Frehland, B., Schepmann, D., Schmidtke, K.-U., Winckler, T., and Wünsch, B. (2010b). Design, synthesis, and biological evaluation of 3-Benzazepin-1-ols as NR2B-selective NMDA receptor antagonists. ChemMedChem 5: 687–695, https://doi.org/10.1002/cmdc.201000005.Suche in Google Scholar PubMed
Tukker, A.M., de Groot, M.W.G.D.M., Wijnolts, F.M.J., Kasteel, E.E.J., Hondebrink, L., and Westerink, R.H.S. (2016). Is the time right for in vitro neurotoxicity testing using human iPSC-derived neurons? ALTEX 33: 261–271, https://doi.org/10.14573/altex.1510091.Suche in Google Scholar PubMed
Watkins, J.C. and Evans, R.H. (1981). Excitatory amino acid transmitters. Annu. Rev. Pharmacol. Toxicol. 21: 165–204, https://doi.org/10.1146/annurev.pa.21.040181.001121.Suche in Google Scholar PubMed
Wyllie, D.J.A., Livesey, M.R., and Hardingham, G.E. (2013). Influence of GluN2 subunit identity on NMDA receptor function. Neuropharmacology 74: 4–17, https://doi.org/10.1016/j.neuropharm.2013.01.016.Suche in Google Scholar PubMed PubMed Central
Yu, Y., Gu, S., Huang, H., and Wen, T. (2007). Combination of bFGF, heparin and laminin induce the generation of dopaminergic neurons from rat neural stem cells both in vitro and in vivo. J. Neurol. Sci. 255: 81–86, https://doi.org/10.1016/j.jns.2007.01.076.Suche in Google Scholar PubMed
Supplementary Material
This article contains Supplementary material (https://doi.org/10.1515/hsz-2022-0216).
© 2022 Walter de Gruyter GmbH, Berlin/Boston
Artikel in diesem Heft
- Frontmatter
- Highlight: Chemical Biology of Ion Channels
- Highlight: chemical biology of ion channels
- The second PI(3,5)P2 binding site in the S0 helix of KCNQ1 stabilizes PIP2-at the primary PI1 site with potential consequences on intermediate-to-open state transition
- In vitro ADME characterization of a very potent 3-acylamino-2-aminopropionic acid-derived GluN2C-NMDA receptor agonist and its ester prodrugs
- A novel NMDA receptor test model based on hiPSC-derived neural cells
- Chemical, pharmacodynamic and pharmacokinetic characterization of the GluN2B receptor antagonist 3-(4-phenylbutyl)-2,3,4,5-tetrahydro-1H-3-benzazepine-1,7-diol – starting point for PET tracer development
- Characterization of Kv1.2-mediated outward current in TRIP8b-deficient mice
- Influence of inflammatory processes on thalamocortical activity
- NMDA receptors – regulatory function and pathophysiological significance for pancreatic beta cells
- The role of the Na+/Ca2+-exchanger (NCX) in cancer-associated fibroblasts
- Pancreatic KCa3.1 channels in health and disease
- Validation of TREK1 ion channel activators as an immunomodulatory and neuroprotective strategy in neuroinflammation
Artikel in diesem Heft
- Frontmatter
- Highlight: Chemical Biology of Ion Channels
- Highlight: chemical biology of ion channels
- The second PI(3,5)P2 binding site in the S0 helix of KCNQ1 stabilizes PIP2-at the primary PI1 site with potential consequences on intermediate-to-open state transition
- In vitro ADME characterization of a very potent 3-acylamino-2-aminopropionic acid-derived GluN2C-NMDA receptor agonist and its ester prodrugs
- A novel NMDA receptor test model based on hiPSC-derived neural cells
- Chemical, pharmacodynamic and pharmacokinetic characterization of the GluN2B receptor antagonist 3-(4-phenylbutyl)-2,3,4,5-tetrahydro-1H-3-benzazepine-1,7-diol – starting point for PET tracer development
- Characterization of Kv1.2-mediated outward current in TRIP8b-deficient mice
- Influence of inflammatory processes on thalamocortical activity
- NMDA receptors – regulatory function and pathophysiological significance for pancreatic beta cells
- The role of the Na+/Ca2+-exchanger (NCX) in cancer-associated fibroblasts
- Pancreatic KCa3.1 channels in health and disease
- Validation of TREK1 ion channel activators as an immunomodulatory and neuroprotective strategy in neuroinflammation