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Mileur, T. R.

Publications and source records attributed to Mileur, T. R..

2 recordsLinked to original sources

Dynamic view of an allosteric intermediate in a positively cooperative dimer

Positive cooperativity in ligand binding is a hallmark of allosteric oligomers, yet how the first binding event enhances the second remains obscure, because the pivotal singly-bound intermediate (lig) is thermodynamically disfavored and rarely accumulates. Distinguishing concerted (MWC) from sequential (KNF) mechanisms turns on one question: when a ligand binds one protomer, does its empty partner change conformation? Here we resolve this for the allosteric homodimer chorismate mutase (CM) using mixed-labeled dimers (MLDs), in which a single maleimide crosslink stabilizes a heterodimer carrying one NMR-labeled and one active-site-inactivated subunit, trapping lig for prolonged study. Isothermal titration calorimetry shows that inhibitor binding to CM is positively cooperative and entirely entropy-driven, with the second event carrying far larger enthalpic and entropic swings than the first. Protomer-resolved NMR reveals that the first binding event switches both subunits to the relaxed (R) state--a concerted, MWC-like transition that rules out a strictly sequential model--yet the empty subunit is not a clean R conformer but a "fuzzy", dynamically heterogeneous ensemble, with extensive microsecond- millisecond motion focused at the dimer interface, and a raft of residues surrounding the empty active site. Backbone probes confirm that both critical 11-12 loops adopt their active posture upon first ligand binding. The mismatch between the chemical-shift picture (MWC-like) and the thermodynamics (weighted toward the second event) argues that cooperativity is not encoded by a simple two-state switch, but by activated dynamics that a purely structural model cannot capture. Significance StatementCooperative ligand binding underlies allosteric control across biology, but mechanisms have been hard to pin down because the crucial half-bound intermediate of a cooperative dimer barely exists at equilibrium. We stabilize this intermediate in the enzyme chorismate mutase by chemically linking one NMR-visible subunit to one that cannot bind ligand, letting us watch each subunit independently. Binding the first ligand flips both subunits to the active state, yet the empty subunit becomes highly dynamic rather than rigidly active. Combined with calorimetry, this shows that the free energy of cooperativity must be stored in ensemble dynamics, not merely in a switch between two structures. The linkage method further opens the door to additional solution-based studies required to better understand allostery and benchmark tools of the future.

biophysics↗

Incidental conformational switching in an allosteric enzyme

The classical understanding of allostery was initially grounded in two-state models, such as MWC and KNF, where structure and function are inextricably linked through transitions between low-(T) and high-affinity (R) states. Here, we show Yeast chorismate mutase (CM) provides a vivid example of the growing list of exceptions to the traditional T vs R two-state allosteric paradigm. While CM exhibits dynamic sampling of the R-state in the presence of the activator tryptophan (Trp), suggesting a conformational selection (CS) mechanism, we present multiple instances where conformational status and catalytic activity are decoupled. Using NMR spectroscopy and kinetic assays, we identify CM variants that reside almost exclusively in the T conformation can exhibit maximal activity, while others that predominantly occupy the R conformation are weakly active. Quantitative comparison of experimental data with a parameterized CS model reveals deviations of up to two orders of magnitude, ruling out the simplest two-state model for substrate affinity modulation in this system. We propose that the observed T-to-R switching in CM is "incidental", a byproduct of an evolved energy landscape that allows access to the substrate-bound pose but does not mechanistically determine affinity. Our findings suggest that allosteric regulation in CM may instead be driven by local features of the ground-state ensemble, which operate independently of global T/R status. This work further highlights an emerging view that the mere observation of a pre-sampled active conformation does not sufficiently prove a two-state mechanism and further underscores the need for deeper ensemble-based perspectives in protein engineering and allostery.

biophysics↗