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de Agrela Pinto, C.

Publications and source records attributed to de Agrela Pinto, C..

2 recordsLinked to original sources

Structural basis of membrane targeting and coatomer assembly by human GBP1

Guanylate-Binding Proteins (GBPs) are interferon-inducible guanosine triphosphate hydrolases (GTPases) that mediate immune effector functions against intracellular pathogens. A key step for the antimicrobial activity of GBPs is the formation of homo- and heterooligomeric complexes on the membrane of pathogen-associated compartments or cytosolinvasive bacteria. Similar to other large GTPases of the dynamin family, oligomerisation and membrane association of GBPs depend on their GTPase activity. How nucleotide binding and hydrolysis prime GBPs for membrane targeting and coatomer formation remains unclear. Here, we report the cryo-EM structure of the full-length human GBP1 dimer in its guanine nucleotide-bound state and resolve the molecular ultrastructure of GBP1 coatomer assemblies on liposomes and bacterial lipopolysaccharide membranes. We show how nucleotide binding promotes large-scale conformational changes of the middle and GTPase effector domains that expose the isoprenylated carboxyl-terminus for association with lipid membranes. Our structure reveals how the -helical stalks of the middle domain form a parallel arrangement firmly held in a unique cross-over arrangement by intermolecular contacts between adjacent monomers. This conformation is critical for GBP1 dimers to assemble into densely packed coatomers on target membranes. The extended -helix of the effector domain is flexible and permits intercalation into the dense lipopolysaccharide layer on the outer membrane of gram-negative bacterial pathogens. We show that nucleotide-dependent oligomerisation and GTP hydrolysis yield GBP1 membrane scaffolds with contractile abilities that promote the formation of tubular membrane protrusions and membrane fragmentation. Collectively, our data provide a structural and mechanistic framework for interrogating the molecular basis for GBP1 effector functions in intracellular immunity.

biophysics↗

A cryogenic, coincident fluorescence, electron and ion beam microscope

Cryogenic electron tomography (cryo-ET) combined with sub-tomogram averaging, allows in-situ visualisation and structure determination of macromolecular complexes at sub-nanometre resolution. Cryogenic focused ion beam (cryo-FIB) micromachining is used to prepare a thin lamella-shaped sample out of a frozen-hydrated cell for cryo-ET imaging, but standard cryo-FIB fabrication is blind to the precise location of the structure or proteins of interest. Fluorescence-guided focused ion beam (FIB) milling at target locations requires multiple sample transfers prone to contamination, and relocation and registration accuracy is often insufficient for 3D targeting. Here, we present in-situ fluoresence microscopy-guided FIB fabrication of a frozen-hydrated lamella to solve this problem: we built a coincident 3-beam cryogenic correlative microscope by retrofitting a compact cryogenic microcooler, custom positioning stage, and an inverted widefield fluorescence microscope (FM) on an existing focused ion-beam scanning electron microscope (FIB-SEM). We show FM controlled targeting at every milling step in the lamella fabrication process, validated with transmission electron microscope (TEM) tomogram reconstructions of the target regions. The ability to check the lamella during and after the milling process results in a higher success rate in the fabrication process and will increase the throughput of fabrication for lamellae suitable for high-resolution imaging.

molecular biology↗