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Masuya, T.

Publications and source records attributed to Masuya, T..

2 recordsLinked to original sources

Cryo-EM structures of Na+-pumping NADH-ubiquinone oxidoreductase from Vibrio cholerae

The Na+-pumping NADH-ubiquinone oxidoreductase (Na+-NQR) couples electron transfer from NADH to ubiquinone with Na+-pumping, generating an electrochemical Na+ gradient that is essential for energy-consuming reactions in bacteria. Since Na+-NQR is exclusively found in prokaryotes, it is a promising target for highly selective antibiotics. However, the molecular mechanism of inhibition is not well-understood for lack of the atomic structural information about an inhibitor-bound state. Here we present cryo-electron microscopy structures of Na+- NQR from Vibrio cholerae with or without a bound inhibitor at 2.5- to 3.1-[A] resolution. The structures reveal the arrangement of all six redox cofactors including riboflavin, whose position has been under debate, and a newly assigned 2Fe-2SNqrD/E cluster located between the membrane embedded NqrD and NqrE subunits. A large part of the hydrophilic NqrF near the cytoplasmic membrane surface is barely visible in the density map, suggesting a high degree of flexibility. This flexibility may be responsible to reducing the long distance between the 2Fe- 2S centers in NqrF and NqrD/E, consistent with physiologically relevant electron transfer. Two different types of specific inhibitors (korormicin A and aurachin D-42) bind to the N-terminal region of NqrB, which is disordered in the absence of inhibitors. The current inhibitor-bound structures reasonably explain our previous biochemical findings obtained by different chemistry-based experiments. This study provides a definite foundation for understanding the function of Na+-NQR and the molecular mechanism of its specific inhibitors to support molecular design of new antibiotics targeting the enzyme.

biochemistry↗

Bisphenol A derivatives act as novel coactivator binding inhibitors for estrogen receptor β

Bisphenol A and its derivatives are recognized endocrine disruptors based on their complex effects on estrogen receptor (ER) signaling. While the effects of bisphenol derivatives on ER have been thoroughly evaluated, how these chemicals affect ER{beta} signaling is not well understood. Herein, we identified novel ER{beta} ligands by screening a chemical library of bisphenol derivatives. Many of the compounds identified showed intriguing dual activities as ER agonists and ER{beta} antagonists. Docking simulations suggested that these compounds act as coactivator binding inhibitors (CBIs). Direct binding experiments using wild-type and mutated ER{beta} demonstrated the presence of a second ligand interaction position at the coactivator binding site in ER{beta}. Our study is the first to propose that bisphenol derivatives act as CBIs, presenting a critical view point for future ER signaling-based drug development.

biochemistry↗