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Ekundayo, B.

Publications and source records attributed to Ekundayo, B..

4 recordsLinked to original sources

Cryo-EM structure of alpha-Synuclein Fibrils Harboring the Dementia with Lewy Bodies - Associated E83Q Mutation

Aggregation of -synuclein (-Syn) into amyloid fibrils underlies the pathology of synucleinopathies. Rare familial mutations can modulate -Syn aggregation and may give rise to distinct fibril conformations linked to disease heterogeneity. The E83Q mutation, identified in a Dementia with Lewy Body disease (DLB) patient with atypical Lewy body distribution, has been shown to accelerate -Syn aggregation and enhance neuronal seeding, yet its structural basis remains unclear. Here, we determined the cryo-electron microscopy structure at 3.4 [A] resolution of recombinant full-length human -Syn fibrils harboring the E83Q mutation. The fibrils adopt a double-protofilament architecture with a conserved Greek-key-like core spanning residues 36-99, stabilized by intra- and inter-filament salt bridges. Despite this conserved fold, the E83Q mutation induces a distinct local rearrangement within the hydrophobic region: substitution of Glu83 with Gln reorients residue 83 inward, abolishing solvent exposure and altering interactions with the N-terminal region. This structural shift brings the hydrophobic region closer to the N-terminus, shielding residues implicated in post-translational modification and ligand binding. Our findings reveal how a single charge-neutralizing mutation reshapes -Syn fibril architecture, providing a structural framework to understand the enhanced aggregation and pathogenic properties associated with the E83Q variant.

neuroscience↗

CryoWriter: A Robotic Solution for Improved Cryo-EM Grid Preparation

Cryo-electron microscopy (cryo-EM) structure determination relies on preparing thin, vitreous films of sample solution on EM grids. Cryo-EM is a mature technology, but preparing the grids remains a major bottleneck. Here, we evaluate the cryoWriter, a blotting-free, microfluidic grid-preparation robot that writes nanoliter volumes onto EM grids in a controlled environment. Using capillary-writing in spiral or line patterns, we prepared high-quality grids from minimal sample volumes and obtained near-atomic reconstructions for test specimens, including TMV, apoferritin, and the membrane protein TRPM4. We further demonstrate programmable deposition modes, such as writing the sample twice to boost particle density, or two-line writing for on-grid mixing to visualize time-resolved protein-ligand binding. In a challenging case (NrS-1 DNA polymerase), the cryoWriter grids exhibited reduced orientation bias relative to conventional blotting, enabling a more isotropic reconstruction. These results show that the cryoWriter provides a versatile platform for reproducible low volume cryo-EM grid preparation and for on-grid biochemical workflows.

biophysics↗

Structural basis of SIRT7 nucleosome engagement and substrate specificity

Chromatin-modifying enzymes selectively target distinct residues within histones to finetune gene expression profiles. SIRT7 is an NAD+-dependent histone deacylase often deregulated in cancer, which deacetylates either H3 lysine 36 (H3K36) or H3K18 with high specificity within nucleosomes. Here, we report structures of nucleosome-bound SIRT7, and uncover the structural basis of its specificity towards H3K36 and K18 deacylation, combining a mechanism-based cross-linking strategy, cryo-EM, mutagenesis and enzymatic assays. We show that the SIRT7 N-terminus represents a unique, extended nucleosome-binding domain, reaching across the nucleosomal surface to the acidic patch. The catalytic domain binds at the H3-tail exit site, engaging both DNA gyres of the nucleosome. Contacting H3K36 versus H3K18 requires a change in enzyme binding pose, and results in structural changes in both SIRT7 and the nucleosome. These structures reveal interactions critical for target lysine specificity, allowing us to engineer enzyme activity towards H3K18 or 36, and provides a basis for small molecule modulator development.

biophysics↗

Identification of a Binding Site for Small Molecule Inhibitors Targeting Human TRPM4

Transient receptor potential (TRP) melastatin 4 (TRPM4) protein is a calcium-activated monovalent cation channel associated with various genetic and cardiovascular disorders. The anthranilic acid derivative NBA is a potent and specific TRPM4 inhibitor, but its binding site in TRPM4 has been unknown, although this information is crucial for drug development targeting TRPM4. We determined three cryo-EM structures of full-length human TRPM4 embedded in native lipid nanodiscs without inhibitor, bound to NBA, and a new anthranilic acid derivative, IBA. We found that the small molecules NBA and IBA were bound in a pocket formed between the S3, S4, and TRP helices and the S4-S5 linker of TRPM4. Our structural data and results from patch clamp experiments enable validation of a binding site for small molecule inhibitors, paving the way for further drug development targeting TRPM4.

biochemistry↗