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bioRxiv · 10.64898/2026.09.05.749365

Phosphoinositides protonation states dictate AKT1 binding with membrane

Abstract

Phosphoinositides are key regulators of membrane-associated signaling, yet their electrostatic properties are commonly represented by a single nominal charge in molecular simulations and structural models. Using the essential protein kinase AKT1 as a model system, we show that phosphoinositide protonation microstates, both the degree and positional placement of protons, govern peripheral membrane-protein recognition. By integrating quantum-mechanics-derived headgroup parameters, microsecond-scale all-atom molecular dynamics, and umbrella-sampling free-energy calculations with the available solid-state NMR-derived lipid populations via Bayesian/Maximum Entropy reweighting, we account explicitly for the thermodynamic ensemble of phosphoinositide proto-nation states. This population-weighted free-energy framework provides a quantitative mechanistic rationale for the strict specificity of wild-type AKT1 toward PI(3, 4, 5)P3 and elucidates how the oncogenic sentry mutation (E17K) alters this specificity to enable high-affinity PIP2 binding. Furthermore, Proximity-based Labeling of Membrane Associated Proteins (PLiMAP) assays experimentally confirm that AKT1 pleckstrin homology domain binding to distinct phosphoinositide species is differentially sensitive to pH. Together, our findings establish a direct connection between phosphoinositide protonation equilibria, binding energetics, and AKT1 lipid specificity. Beyond AKT1, these results demonstrate that the dynamic protonation microstates of anionic phospholipids act as a functional regulatory layer governing peripheral membrane-protein recruitment across diverse cellular microenvironments.

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Jha, K., Sarkar, M., Baratam, K., Nagesh, J., Pucadyil, T., Srivastava, A.. 2026-09-10. Phosphoinositides protonation states dictate AKT1 binding with membrane. https://doi.org/10.64898/2026.09.05.749365

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