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February 8, 2026BMC Biology0 citationsOpen Access

Computational design of constitutively active mutants of Dopamine D2 receptor inspired by ligand-independent activation mechanisms

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YCY. ChenMSMarcus SaarinenANAkshay Naraine

Key Points

  • This research investigates how constitutively active mutants (CAMs) influence the dopamine D2 receptor (D2R) activation.
  • Employ enhanced sampling simulations to analyze D2R activation behavior.
  • Perform free energy landscape analyses to explore receptor conformational shifts.
  • Develop a strategy combining structural comparison and in-silico residue scanning for discovering novel CAMs.
  • Validate findings using luminescence-complementation-based assays.
  • Identified a new single-point CAM, D2R-I48 1.46 W, that activates the receptor.
  • CAMs show a conformational shift favoring an active state similar to the agonist-bound form.
  • Activation involves allosteric pathways, particularly through transmembrane helix 5.

Abstract

Abstract Background G protein-coupled receptors (GPCRs) can signal in the absence of agonists through constitutive activity. This activity can be enhanced by mutations, resulting in receptors known as constitutively active mutants (CAMs). Such receptors are implicated in various physiological and pathophysiological conditions, and also offer significant therapeutic potential. However, the molecular basis of their constitutive activity remains unknown. Results To investigate how CAMs affect receptor activation, we employed enhanced sampling simulations to study the dopamine D2 receptor (D2R), a key target in central nervous system therapies. Free energy landscape analyses revealed that CAMs promote a conformational shift favoring an active state similar to the agonist-bound receptor. To then identify novel CAMs, we developed a comprehensive strategy combining structural comparison, in-silico residue scanning, and free energy calculations, validated by luminescence-complementation-based assays. Applied to D2R, this approach uncovered a new single-point CAM, D2R-I48 1.46 W, which was functionally validated. Further investigation revealed that this mutation activates allosteric communication pathways primarily involving transmembrane helix 5, particularly Ser194 5.43 , underscoring its role in transmitting activation signals to the intracellular domain. Conclusions This study elucidates how CAMs reshape the activation landscape of D2R and establishes a broadly applicable computational-experimental framework for discovering constitutively active GPCR variants. These CAMs provide valuable ligand-independent models for probing receptor activation mechanisms at structural, cellular, and physiological levels.

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Cite This Study

Chen et al. (2026) studied this question.

synapsesocial.com/papers/698827a20fc35cd7a88468e1https://doi.org/10.1186/s12915-026-02542-6
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