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Siclari, J. J.

Publications and source records attributed to Siclari, J. J..

2 recordsLinked to original sources

Structural Basis of a Novel Heme Binding Bacterial One-Component Switch

One-component systems (OCSs) integrate sensory and effector functions within a single protein, enabling rapid gene expression changes in response to environmental cues. Here, we characterized a novel heme binding OCS protein, FG214, from Fimbriimonas ginsengisoli, a redox-regulated helix-turn-helix transcription factor in which heme iron ligand state controls a monomer-to-dimer switch. Data supporting this included our observation of the FG214 PAS domain binding a hexacoordinate heme b in oxidized conditions and undergoing a slate of redox and ligand-dependent conformational changes, transitioning from a monomer to a homodimer. Spectroscopic and structural data revealed that oxidation stabilizes the likely HTH-PAS intramolecular domain interface, while reduction of the heme iron dissociates the HTH, freeing previously-sequestered homodimerization surfaces. Similar effects were seen by addition of a small molecule ferric heme ligand, as directly visualized with a 1.47 [A] crystal structure of an imidazole-bound truncated construct. Using in vitro DNA-binding assays, we identified an artificial promoter sequence and demonstrated ligand-enhanced protein-DNA binding. Finally, we performed in vivo proof of concept experiments establishing FG214 as a redox-sensitive scaffold for biosensor engineering. Together, these findings define FG214 as a novel heme-binding PAS DNA binding protein, complementing known heme-PAS two-component signaling switches.

biochemistry↗

A Pipeline for Screening Small Molecule-Enhanced Protein Stability in A Bacterial Orphan Receptor

Bacterial one-component signaling proteins integrate sensory and gene regulation functions within the same polypeptide, creating powerful natural sensors of environmental conditions which can also be adapted into powerful tools for synthetic biology and biotechnology. A key sensor motif within many of these proteins is the Per- ARNT-Sim (PAS) domain, known for its conserved fold yet highly divergent sequences, allowing for a broad range of ligands to control PAS protein function by changes in small molecule binding occupancy or configuration. This diversity introduces a challenging step - identification of ligands for "orphan" PAS proteins which show signatures of ligand binding but no copurifying high-affinity bound small molecules - into characterization and engineering of such proteins. In this study, we characterized CU228, a putative PAS-HTH transcription factor from Candidatus Solibacter usitatus, as a novel model system for searching for novel ligands by small molecule stabilization. Bioinformatics and structural analyses predicted a PAS domain with an Trp-rich internal cavity, suggesting potential small molecule interactions. Using a [~]760 compound fragment library, differential scanning fluorimetry identified three ligands (KG-96, KG- 408, and KG-484) that substantially increased CU228 thermal stability with {Delta}Tm values up to +10{degrees}C. Microfluidic modulation spectroscopy (MMS) revealed ligand-induced preservation of -helical and {beta}-sheet integrity under thermal stress. Saturation transfer difference NMR confirmed direct binding of all three ligands and enabled estimation of micromolar-range dissociation constants, consistent with expected fragment-level affinity. Our findings expand the analytical toolbox for probing protein-ligand interactions in flexible, signal-responsive systems, laying the groundwork for designing synthetic chemogenetic variants of one-component transcription factors.

biochemistry↗