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January 25, 20260 citationsOpen Access

Conformational Footprints of Agonism: Differences of Inositol 1,4,5-trisphosphate (IP3) and Adenophostin A on IP3 Receptor’s N-Terminal Dynamics

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TRTaufiq RahmanYZYu Zhu

Key Points

  • This research aims to compare the effects of IP3 and adenophostin A on the dynamics of the IP3 receptor's N-terminal region.
  • Conducted all-atom molecular dynamics simulations of rat IP3R1 N-terminus in various states
  • Analyzed conformational changes caused by binding of IP3 and adenophostin A
  • Utilized principal component analysis and dynamic cross-correlation analysis to assess receptor flexibility and motion patterns
  • Adenophostin A influences the N-terminal flexibility more than inositol 1,4,5-trisphosphate
  • Principal component analysis indicates that adenophostin A drives distinct conformational substates absent in apo or IP3-bound forms
  • Adenophostin A enhances long-range correlated motions across the N-terminal domain, suggesting it primes the receptor for activation

Abstract

Inositol 1,4,5-trisphosphate receptor (IP3R) represents a major family of intracellular Ca2+-release channel. Distal to its pore-forming region lies its cytoplasmic N-terminus (NT) that harbours the agonist-binding pocket. Although inositol 1,4,5-trisphosphate (IP3) is the endogenous agonist, the fungal metabolite adenophostin A (AdA) is known to function as a “super-agonist”, displaying roughly ten-fold higher affinity on binding. Using all-atom molecular dynamics simulations of rat IP3R1 NT in apo, IP3-bound and AdA-bound states, we here show that both agonists alter NT’s flexibility, yet principal component analysis reveals that AdA drives the domain into broader and distinct conformational substates that are visited by neither the apo nor the IP3-bound form. AdA occupies a more spacious, hydrophobic pocket, engaging a wider spectrum of transient polar and non-polar contacts and favouring an entropy-dominated binding mode despite fewer enduring hydrogen bonds. Dynamic cross-correlation analysis further demonstrates that AdA enhances long-range correlated motions across the NT domain. Taken together, the data indicate that AdA’s superior potency arises from its unique capacity to remodel NT dynamics more profoundly than IP3, thereby pre-configuring or priming IP3R for activation gating. These findings refine current models of ligand efficacy and offer a framework for the rational design of next-generation IP3R modulators.

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Cite This Study

Rahman et al. (2026) studied this question.

synapsesocial.com/papers/6975b32bfeba4585c2d6ea46https://doi.org/10.17863/cam.125166
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