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Ismail-Beigi, F.

Publications and source records attributed to Ismail-Beigi, F..

2 recordsLinked to original sources

Stabilization of a Protein by a Single Halogen-Based Aromatic Amplifier

The utility of halogenation in protein design is investigated by a combination of quantitative atomistic simulations and experiment. The approach is applied to insulin, a small, therapeutically relevant domain amenable to simulation and semi-synthesis. In a singly halogenated aromatic ring, the simulations predicted regiospecific inductive effects to modulate multiple surrounding electrostatic (weakly polar) interactions, thereby amplifying changes in thermodynamic stability. In accordance with the simulations, stabilization of insulin is demonstrated by single halogen atoms at the ortho position of an invariant phenylalanine (2-F-PheB24, 2-Cl-PheB24 and 2-Br-PheB24; {Delta}{Delta}Gu = -0.5 to -1.0 kcal/mol) located at the edge of a protein crevice. Corresponding meta and para substitutions have negligible effects. The ortho-modified insulin analogs exhibit enhanced resistance to fibrillation above room temperature and retain biological activity in mammalian cells and in a rat model of diabetes mellitus. Consequently, halogen-based stabilization of insulin and other therapeutic proteins may provide a biophysical strategy to circumvent the requirement for a distribution "cold chain" in the developing world and enhance the shelf life of pharmaceutical formulations.

biochemistry↗

Age of diabetes onset in the mutant proinsulin syndrome correlates with mutational impairment of protein foldability and stability

Diverse heterozygous mutations in the human insulin gene cause a monogenic diabetes mellitus (DM) syndrome due to toxic misfolding of the variant proinsulin. Whereas mutations that add or remove cysteines (thereby leading to an odd number of thiol groups) generally lead to neonatal-onset DM, non-Cys-related mutations can be associated with a broad range of ages of onset. Here, we compare two mutations at a conserved position in the central B-chain -helix: one neonatal in DM onset (ValB18[->]Gly) and the other with onset delayed until adolescence (AlaB18). The substitutions were introduced within a 49-residue single-chain insulin precursor optimized for folding efficiency (Zaykov, A., et al. ACS Chem. Biol. 9, 683-91 (2014)). Although mutations are each unfavorable, GlyB18 (a) more markedly perturbs DesDi folding efficiency in vitro than does AlaB18 and (b) more severely induces endoplasmic reticulum (ER) stress in cell-based studies of the respective proinsulin variants. In corresponding two-chain hormone analogs, GlyB18 more markedly perturbs structure, function and thermodynamic stability than does AlaB18. Indeed, the GlyB18-insulin analog forms a molten globule with attenuated -helix content whereas the AlaA18 analog retains a nativelike cooperative structure with reduced free energy of unfolding ({Delta}{Delta}Gu 1.2({+/-}0.2) kcal/mole relative to ValB18 parent). We propose that mutations at B18 variably impede nascent pairing of CysB19 and CysA20 to an extent correlated with perturbed core packing once native disulfide pairing is achieved. Differences in age of disease onset (neonatal or adolescent) reflect relative biophysical perturbations (severe or mild) of an obligatory on-pathway protein folding intermediate.

biochemistry↗