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Biology subjects

Sever, B.

Publications and source records attributed to Sever, B..

2 recordsLinked to original sources

Structural Insights into the Dynamics of Water in SOD1 Catalysis and Drug Interactions

Superoxide dismutase 1 (SOD1) is a crucial enzyme that protects cells from oxidative damage by converting superoxide radicals into H2O2 and O2. This detoxification process, essential for cellular homeostasis, relies on a precisely orchestrated catalytic mechanism involving the copper cation, while the zinc cation contributes to the structural integrity of the enzyme. This study presents the 2.3 [A] crystal structure of human SOD1 (PDB ID: 9IYK), revealing an assembly of six homodimers and twelve distinct active sites. The water molecules form a complex hydrogen-bonding network that drives proton transfer and sustains active site dynamics. Our structure also uncovers subtle conformational changes that highlight the intrinsic flexibility of SOD1, which is essential for its function. Additionally, we observe how these dynamic structural features may be linked to pathological mutations associated with amyotrophic lateral sclerosis (ALS). By advancing our understanding of hSOD1s mechanistic intricacies and the influence of water coordination, this study offers valuable insights for developing therapeutic strategies targeting ALS. Our structures unique conformations and active site interactions illuminates new facets of hSOD1 function, underscoring the critical role of structural dynamics in enzyme catalysis. Besides, we conducted molecular docking analysis using SOD1 for potential radical scavengers and Abl1 inhibitors targeting misfolded SOD1 aggregation along with oxidative stress and apoptosis, respectively. The results showed that CHEMBL1075867, a free radical scavenger derivative, showed the most promising docking results and interactions in the binding site of hSOD1, highlighting its promising role for further studies against SOD1-mediated ALS.

molecular biology↗

Structural Characterization of TRAF6 N-terminal for Therapeutic Uses

Tumor Necrosis Factor Receptor Associated Factors (TRAFs) are a protein family with a wide variety of roles and binding partners. Among them, TRAF6, a ubiquitin ligase, possesses unique receptor binding specificity and shows diverse functions in immune system regulation, cellular signaling, central nervous system (CNS), and tumor formation. TRAF6 consists of an N-terminal Really Interesting New Gene (RING) domain, multiple zinc fingers, and a C-terminal TRAF domain. RING domain and zinc fingers mediate the activation of nuclear factor kappa B (NF-{kappa}B), which has essential roles in the regulation of inflammatory responses, proliferation, differentiation, migration, cell adhesion, and apoptosis. Therefore, it has been found that TRAF6 is overexpressed in various types of cancer including pancreatic, liver, lung, head and neck, breast, colorectal cancers, and melanoma along with inflammatory, autoimmune and neurodegenerative disorders. Furthermore, TRAF6 is an important therapeutic target for numerous disorders and structural studies of this protein are crucial for the development of next-generation therapeutics. Here, we present a TRAF6 N-terminal structure determined at the Turkish Light Source "Turkish DeLight" to 2.6 [A] resolution at cryogenic temperature. This structure offers insight into the domain organization and zinc-binding, which are critical for protein function. Since the RING domain and the zinc fingers are key targets for TRAF6 therapeutics, structural insights are crucial for future research.

molecular biology↗