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Fernandes, C. B.

Publications and source records attributed to Fernandes, C. B..

2 recordsLinked to original sources

The importance of stereochemistry in the disorder-order continuum of protein-protein interactions

Intrinsically disordered proteins can bind via the formation of highly disordered protein complexes without the formation of 3D-structure. Most naturally occurring proteins are "left-handed" or levorotatory (L), made up only of L-amino acids, imprinting molecular structure and communication with stereochemistry. In contrast, their mirror image "right-handed" or dextrorotatory (D) amino acids are rare in Nature. Whether disordered protein complexes are truly independent of 3D-topology and thus of chiral constraints is not clear. To test the chiral constraints of disordered protein-protein interactions, a set of interacting protein pairs covering the disorder-order continuum was chosen as representative examples. By observing both the natural ligands and their stereochemical mirror images in free and bound states, we discovered that chirality was inconsequential in a fully disordered complex. However, if the interaction relied on the ligand undergoing coupled folding and binding, correct stereochemistry was essential. Between these extremes, binding could be observed for the D-ligand with a strength that correlated with the amount of disorder in the final complex. These findings have important implications for our understanding of protein-protein interactions, the molecular processes leading to complex formation, the use of D-peptides in drug discovery, and the chemistry of protein evolution of the first living entities on Earth.

biophysics↗

Revisiting the use of dioxane as a reference compound for determination of the hydrodynamic radius of proteins by pulsed field gradient NMR spectroscopy

Measuring the compaction of a protein or complex is key to understand the interactions within and between biomolecules. Experimentally, protein compaction is often probed either by estimating the radius of gyration (Rg) obtained from small-angle X-ray scattering (SAXS) experiments or the hydrodynamic radius (Rh) obtained for example by pulsed field gradient nuclear magnetic resonance (PFG NMR) spectroscopy. PFG NMR experiments generally report on the translational diffusion coefficient, which in turn can be used to estimate Rh using an internal standard. Here, we examine the use of 1,4-dioxane as an internal NMR standard to account for sample viscosity and uncertainty about the gradient strength. Specifically, we revisit the basis for the commonly used reference value for the Rh of dioxane (2.12 [A]) that is used to convert measured diffusion coefficients into a hydrodynamic radius. We follow the same approach that was used to establish the current reference value for the Rh by measuring SAXS and PFG NMR data for a set of seven different proteins and using these as standards. Our analysis shows that the current Rh reference value for 1,4-dioxane Rh (2.12 [A]) is underestimated, and we instead suggest a new value of 2.27 [A] {+/-} 0.04 [A]. Using this updated reference value results in a [~]7% increase in Rh values for proteins whose hydrodynamic radius have been measured by PFG NMR. We discuss the implications for ensemble descriptions of intrinsically disordered proteins and evaluation of effect resulting from for example ligand binding, posttranslational modifications, or changes to the environment.

biophysics↗