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Masri, B.

Publications and source records attributed to Masri, B..

2 recordsLinked to original sources

Structural basis and physiological significance of non-canonical Gs coupling to the prototypical Gi-coupled melatonin MT1 receptor

G protein-coupled receptors (GPCRs) transduce extracellular stimuli into intracellular signals by coupling to various heterotrimeric G proteins. However, the rules governing G protein preference remain largely elusive. MT1 and MT2 are prototypical Gi/o-coupled GPCRs responding to melatonin, a hormone secreted in a circadian manner. We show here that MT1, but not MT2, couples also to Gs proteins in vitro and activates the Gs/cAMP pathway upon long-term melatonin exposure in vivo, mimicking physiological dawn conditions. We solved the cryo-electron microscopy structure of the melatonin-MT1-Gs complex at 3.0[A] resolution, which revealed a strikingly distinct binding mode compared to the MT1-Gi complex. The third intracellular loop of MT1 emerges as a key stabilizer for Gs coupling, a feature previously unrecognized. This is the first solved receptor-Gs complex of a primary Gi-coupled GPCRs, providing new structural and functional insights into G protein selectivity and circadian switch of G protein coupling.

molecular biology↗

BRET-Based Mitochondrial Subcompartment Localization Biosensors

The last decade has witnessed a marked increase in interest in mitochondria, whose dysfunction leads to the development of multiple diseases. Mitochondria are unique as they are highly compartmentalized organelles that are composed of two closely apposed membranes and whose biological function relies on the precise localization of nuclear-encoded proteins in distinct mitochondrial subcompartments. Here we developed a series of bioluminescence resonance energy transfer (BRET)-based localization biosensors to monitor the precise localization of proteins in different mitochondrial subcompartments (outer and inner membrane, intermembrane space at the inner boundary membrane, crista lumen and matrix) with a high spatial resolution (1-10 nm). These biosensors detected the correct localization and orientation of TOM20, TOM22, VDAC1, MICU1, ATP5F1C, OTC, and SIRT2/3 proteins in their respective subcompartments, as well as the translocation of BAX and Drp1 from the cytosol to mitochondria in intact cells. The localization sensors provide non-invasive tools to monitor protein localization and translocation to mitochondria in real-time with nanometer resolution in intact cells submitted to various stressors.

cell biology↗