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Biology subjects

AYAN, E.

Publications and source records attributed to AYAN, E..

7 recordsLinked to original sources

Structure and Dynamics of a Long-Acting Insulin Analog in Hexameric and Dihexameric States

Elucidating the structure and dynamics of insulin and its analogs has been of broad interest, while presenting challenges due to the unique structural dynamics of insulin (composed itself of two multiply cross-linked peptides A and B) and its ability to assemble in a variety of oligomeric structures under physiological conditions. Here, we present two distinct X-ray crystallographic structures of the long-acting human insulin analog detemir (INSD) resolved in hexameric and dodecameric (or dihexameric) states at 2.85 [A] and 2.70 [A] resolution, respectively, using diffraction data collected under ambient temperature conditions. Characterization of the collective dynamics of these oligomers using the Gaussian Network Model (GNM) reveals several key features: (i) Oligomerization imparts high cooperativity in structural dynamics evidenced by dissection of the cross-correlations at various hierarchical levels; (ii) detemir monomers conformational flexibility is highly suppressed within oligomeric constructs, the effect being particularly strong in the dihexamer due to the asymmetric packing of the hexamers and the presence of myristoyl groups at B peptides termini whose interactions imparts further heterogeneities; and (iii) a number of key residues retain, however, their intrinsic dynamics, to be deployed upon release from the oligomers. We distinguish in particular residues serving as hinge sites that mediates the conformational dynamics of the asymmetric units (dimers) and monomers (I2A-V3A and Y19 A -C20A, and L11B-L15B and Y26B of the respective peptides A and B), or as anchors supporting structural stability (disulfide-bridge forming cysteines, plus selected residues such as L16A, G8B and R22B-F24B. Overall, this study provides a structural-dynamic framework for gaining new insights into the dynamics of long-acting analog INSD and helps identify actionable sites for modulating insulin (analogs) dynamics toward designing more effective therapeutics.

biophysics↗

Small-Molecule Structure Determination and Anisotropic Displacement Analysis at Turkish Light Source

Single-crystal X-ray diffraction remains one of the most direct and reliable techniques for clarifying the three-dimensional structures of small molecules; however, its wider use in developing research settings has historically been limited by access to advanced instrumentation. Here, we consider the performance of the in-house diffractometer, Turkish Light Source, for small-molecule structure determination using three rhodanine-derivative compounds. Diffraction data were collected, processed, and followed by full-matrix least-squares refinement as a user-friendly pipeline. The compounds were successfully resolved in the triclinic space group P-1 and refined to chemically reasonable models, although notable differences in data quality and refinement parameters were observed. Compounds 1 and 2 produced the most robust and internally coherent structure, whereas compound 3 displayed refinement tribulations. These might be attributed to the intrinsic structural disorder of c-5b, analogous to polymorphic perversity in higher Z' phase, likely due to the presence of dissymmetric molecules within the asymmetric unit (Z' = 2), rather than empirical limitations. Anisotropic displacement parameters were systematically computed by atom-resolved Ueq factors and anisotropy index. The combined analyses reveal that structural ambiguity of c-5b is largely governed by localized maxima in atomic displacement (up to 0.29 [A]2 in Ueq with 6.67 anisotropy) rather than by global disorder, caused by the fluorinated aryl moiety of c-5b. These findings indicate that the in-house SCXRD system, when coupled with our user-friendly downstream pipeline, can yield reliable structural data for small molecules. Brief video tutorials and detailed SOPs have been provided in the Tutorials folder, including CrysAlisPro and Olex2 tutorials, as well as are easily accessible for users.

biophysics↗

A novel sample delivery method for powder X-ray diffraction at Turkish Light Source

Powder X-ray diffraction (PXRD) measurements performed on platforms originally designed for single-crystal diffraction are strongly affected by how the powder sample is presented to the X-ray beam, including the delivery configuration and support geometry. Here, we developed a modified Terasaki-plate-based sample-delivery method for PXRD using a laboratory single-crystal diffractometer implemented with the XtalCheck-S plate-reader operational mode at Turkish Light Source. The method was regarded under comparable measurement conditions relative to a standard loop/pin-based and a grease-based Terasaki setup using 5-{[4-(2-Methoxyphenyl)piperazin-1-yl]methyl}-4-ethyl-4H-1,2,4-triazole-3-thiol as a model analyte. The loop-based method allowed only limited powder sampling, whereas the grease-based Terasaki setup enabled multi-well sample delivery but produced higher background and weaker diffraction profiles. Conversely, Kapton-sealed Terasaki ensured secure retention of small amounts powder while providing lower background and clearer diffraction patterns. Within short total data collection times of only 1-2 min, the Kapton-Terasaki method delivered the best overall PXRD performance among the tested methods. Search-match and profile-fitting analyses showed that all three approaches sampled the same crystalline material, while the Kapton-based method gave the lowest profile residual (Rp = 9.6%) and the most reliable whole-pattern profile. These results demonstrate that optimizing sample delivery, rather than modifying the core instrument hardware, can substantially extend PXRD capability on an existing in situ crystallography platform for rapid, laboratory-based screening and comparative multi-sample measurements.

biochemistry↗

Serial femtosecond crystallography reveals the pH-driven allosteric mechanism of hexamer glargine

Insulin glargine is formulated at acidic pH but acts after transferring to near-neutral tissue, where its prolonged effect is commonly attributed to isoelectric depot formation. However, the structural pathway linking precipitation to delayed release has remained unresolved. Here we combine ambient-temperature serial femtosecond crystallography, solution biophysics, and multiscale network analyses to define the pH-dependent conformational landscape of hexameric glargine across pH 8.4, 7.3, 6.4, and 5.1. We resolve full hexameric glargine structures and identify a previously unreported, pH-coupled lattice transition from P1211 (near-neutral) to R3:H (acidic), accompanied by redistribution from compact phenolic Rf6-state assemblies to more plastic yet structurally coherent TRf/T3Rf3 states. This transition is accompanied by B-chain N-terminal unpeeling, phenol-pocket collapse, hydration loss, and electrostatic rewiring, and is mirrored in solution by oligomeric heterogeneity, Raman amide-I broadening, reduced thermal stability, and a blue-shifted intrinsic fluorescence maximum. Multiscale analyses further indicate that acidification does not create a new dynamical regime but reweighs pre-existing collective modes along a continuous free-energy landscape. These results support a revised mechanism in which isoelectric precipitation and delayed dissociation are mechanistically coupled through structurally organized molten-like intermediate states, linking glargine pharmacology to intrinsic allosteric redistribution within the hexamer. These findings establish a structural blueprint for benchmarking biosimilar glargine and for engineering next-generation basal insulins by tuning allosteric plasticity and intermediate-state stability.

biophysics↗

Reciprocal-space mapping of diffuse scattering by serial femtosecond crystallography reveals analog-specific disorder in insulin analogs

Insulin detemir and insulin aspart are clinically complementary analogs engineered for distinct pharmacokinetic behavior, yet their comparative structural heterogeneity across temperature regimes remains insufficiently resolved. Here, we present a multi-scale crystallographic analysis integrating near-physiological serial femtosecond crystallography (SFX) with previously reported cryogenic and ambient multicrystal datasets for both analogs. Across conventional quality metrics, reciprocal-space intensity-field reconstructions, model-derived diffuse-scattering representations, Ramachandran stereochemical validation, solvent-accessibility coupling (SAArea-MSArea), and residue-level BDamage (a packing-normalized B-factor metric highlighting local mobility outliers) profiling, we identify a coherent ambient-versus-cryogenic contrast. Ambient datasets show broader reciprocal-space heterogeneity and more diffuse model-space distributions, consistent with increased conformational sampling outside cryogenic trapping. Despite this shared trend, disorder partitioning is analog-specific: detemir exhibits strong pseudo-translational signatures with moderate twinning, whereas aspart shows weak pseudo-translation but pronounced merohedral twinning approaching the theoretical twinned limit in ambient conditions. Importantly, backbone stereochemistry remains globally stable across all datasets, indicating that the observed differences reflect structured heterogeneity rather than model deterioration. Collectively, these findings support an ensemble-aware interpretation of insulin crystallography and provide transferable structural descriptors for analog comparison, stability assessment, and formulation-oriented design.

biophysics↗

Solubility, Hydration, and Sulphate Coordination in Cubic Insulin Crystals from Esrapid™ Monomers Stabilized in Divalent Anionic Form of Citric Acid

Insulins structural adaptations have been extensively studied at neutral and basic pH; however, the effects of water and anion coordination on allosteric regions under various acidic conditions remain unexplored. Given the critical role of polar interactions in allosteric modulation, investigating structured water movements across extended pH intervals is essential for understanding solvent-mediated stabilization mechanisms in the monomer form of insulin. Structures of acid-stable cubic insulin crystals were determined in the divalent anionic form of citric acid solutions over a pH range of 2 to 6 to investigate the effects of water and anion coordination, along with charge distribution, on protein conformation. Synchrotron X-ray diffraction data were collected at resolutions ranging from 1.4 to 1.76 [A], with refined models exhibiting R-factors between 0.19 and 0.21. While the spatial arrangement of most proteins is highly conserved, [~]90% of the water coordination network and polar interactions alter local residue motion and intrinsic dynamics of the structures as the pH is changed. This is in line with previously determined structures at pH 7-11, allowing for a comprehensive structural analysis in the pH range of pH 2-11. Three key observations emerged: (i) water coordinations undergo a prominent shift toward the isoelectric point of insulin (pH 5-7), (ii) water molecules and anions function as allosteric modulators to stabilize the T-state of insulin at the pH range 2 to 6, and (iii) at extreme pH values 2 and 11, increased solubility correlates with the structural adoption of insulins most active form, wherein hydration within the allosteric pocket supports monomer stabilization in the T-state. Combined with the computational analyses, pH-dependent electrostatic redistributions primarily affect side-chain dynamics and local protein motion. This solvent-coupled allosteric regulation provides a mechanistic framework for solvent-mediated protein stabilization, offering a novel insight into the rational design of insulin formulations through controlled protonation and hydration strategies.

biophysics↗

Computational Insights into the Allosteric Behavior of Mini-Insulin in Receptor Binding Driven by C-Peptide Mobility

Background/aimThe production of recombinant insulin remains challenging, particularly in enhancing refolding efficiency and bioactivity. Mini-proinsulin analogs, which involve reducing the length of the C-peptide, offer potential improvements in insulin production. This study aims to evaluate mini-proinsulin analogs design and receptor binding dynamics to optimize recombinant insulin production in E. coli. Materials and methodsMini-proinsulin analogs were engineered by replacing the 33-residue C-peptide with a pentapeptide sequence to improve refolding. The three-dimensional structure of mini-proinsulin was predicted using AlphaFold and performed docking analysis of mini-proinsulin analogs to the insulin receptor using AutoDock Tools, with comparisons made to previously available NMR-determined analog and the native insulin-insulin receptor complex. Normal Mode Analyses (GNM and ANM) were performed in detail to assess binding dynamics. ResultsIn silico analyses revealed that mini-proinsulin analogs closely replicate the structural features of native insulin and display receptor binding dynamics similar to native insulin, though they follow distinct receptor interaction paths. ConclusionAll analysis suggests that C-peptide mobility may contribute to the allosteric behavior observed in mini-proinsulin analogs during receptor interaction.

biochemistry↗