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Biology subjects

Dahlhaus, P.

Publications and source records attributed to Dahlhaus, P..

2 recordsLinked to original sources

Discovery of a Cell-Permeable Gi-Signaling Inhibitor

Heterotrimeric G proteins regulate diverse physiological processes, yet selective small molecule modulators for the Gi subfamily remain scarce. Here, we employed native metabolomics to screen a fungal culture collection for G protein binders, which led to the discovery of N-hydroxyapiosporamide (NHAP), a fungal specialized metabolite that functionally inhibits Gi-signaling. NHAP selectively binds Gi1 and diminishes Gi1-mediated GTP turnover in biochemical assays. In primary ventricular cardiomyocytes, NHAP largely reversed acetylcholine-induced negative inotropy, demonstrating functional Gi-signaling blockade in a physiological context without acute cytotoxicity. This work establishes NHAP as a first-in-class Gi-selective inhibitor, providing a cell-permeable chemical scaffold for the optimization of next-generation agents to control Gi-signaling in cell-based systems and, ultimately, to target Gi1-driven pathologies.

biochemistry↗

Cryo-EM structure of a cell-free synthesized full-length human β1-adrenergic receptor in complex with Gs

The third intracellular loop (ICL3) of the {beta}1-adrenergic receptor ({beta}1AR) plays a critical role in regulating G protein coupling, yet the structural basis has remained unclear due to truncations of ICL3 in all available structures of the {beta}1AR in complex with Gs or a G protein mimetic nanobody. To address this, we used cell-free cotranslational insertion of full-length human {beta}1AR into nanodiscs and determined its cryo-EM structure in complex with Gs. In this structure, ICL3 extends transmembrane helix 5, resulting in enhanced interactions with Gs and in a slight rotation of the engaged G protein. This repositioning enables new polar interactions between Gs, ICL2 and helix 8, while ICL1 and helix 8 form additional contacts with G{beta}. These structural insights, supported by mutational analysis, demonstrate that ICL3 enhances G protein activation and downstream cAMP signaling by promoting more extensive interactions between the receptor and the heterotrimeric G protein.

biochemistry↗