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February 5, 2026Journal of Medicinal Chemistry1 citations

Exploring the DS2 Scaffold for GABA A Receptor Modulation: Progress toward the Development of a GABA A δ-Subunit Preferring Negative Allosteric Modulator

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NJNicoline N. JensenKWKristine S. WilhelmsenMJMaj‐Britt Jensen

Key Points

  • To identify and develop negative allosteric modulators that selectively target δ-GABA receptors for therapeutic use.
  • Synthesis of DS2 analogues by modifying initial compound structure.
  • Biological assays to evaluate pharmacological profiles of the new compounds.
  • Assessment of GABA currents in recombinant receptors with specific mutations.
  • Compound 1e displayed negative allosteric modulation and δ-GABA receptor selectivity.
  • 1e demonstrated reduced GABA currents in receptors with gain-of-function mutations relevant to neurological conditions.
  • 1e was also found to be brain-permeable, enhancing its potential as a therapeutic agent.

Abstract

Extrasynaptic δ-containing γ-aminobutyric acid type A receptors (GABAARs) are potential drug targets in the treatment of several neurological disorders with altered tonic inhibition. Only a few compounds exhibit δ-GABAAR selectivity, among which the imidazo1,2-apyridine compound DS2 constitutes a valuable tool compound. Guided by the recently identified molecular determinants responsible for the positive allosteric modulation by DS2 in the TMD α(+)β(-) interface of the α4β1δ GABAAR, a series of DS2 analogues were synthesized. Replacement of a thienyl moiety with an N-methylated pyrrolyl ring (1e) converted the pharmacological profile from positive to negative allosteric modulation. Compound 1e exhibited no activity at selected γ2-containing GABAAR subtypes, indicating δ-GABAAR selectivity. The ability of 1e to reduce the GABA currents of recombinant receptors carrying α4- and δ-subunit gain-of-function mutations found in patients with neurodevelopmental disorders and epilepsy, as well as being brain-permeable, identifies 1e as a lead compound for reducing pathophysiologically excessive tonic inhibition.

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Cite This Study

Jensen et al. (2026) studied this question.

synapsesocial.com/papers/698434dff1d9ada3c1fb3840https://doi.org/10.1021/acs.jmedchem.5c01990
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