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Biology subjects

Kuteyi, G.

Publications and source records attributed to Kuteyi, G..

3 recordsLinked to original sources

Cornichon receptors couple membrane adaptation to cargo selection during ER export.

Selective export of membrane proteins from the endoplasmic reticulum (ER) is fundamental for eukaryotic cell biology, yet how trafficking receptors coordinate cargo recognition with membrane adaptation and COPII recruitment remains unknown. Cornichon homolog (CNIH) proteins comprise a conserved family of trafficking receptors that mediate ER export of ion channels, G protein-coupled receptors (GPCRs), ATP-binding cassette (ABC) and solute carrier (SLC) transporters. Here, we determine cryo-electron microscopy structures of the prototypical cornichon receptor Erv14 bound to an SLC transporter in detergent and lipid nanodiscs. We show that cargo recognition is mediated by a dynamic network of interactions, in which structural lipids stabilize the receptor-cargo interface. Nanodisc structures reveal the assembly of a second Erv14 receptor that remodels the receptor-cargo interface in response to membrane architecture, thereby reducing local membrane thickness and providing direct structural evidence that cornichon receptors buffer hydrophobic mismatch during membrane protein biogenesis. Structural and trafficking analyses further show that the second receptor recruits the COPII adaptor Sec24, coupling membrane remodelling to cargo export. Together, our findings establish that cornichon receptors couple lipid-mediated membrane adaptation with cargo selection through sequential receptor assembly, linking membrane protein folding to selective COPII-mediated ER export. One sentence summaryCornichon receptors integrate membrane adaptation with cargo recognition to coordinate membrane protein quality control and selective ER export.

cell biology↗

Identification of SLC45A4 as a pain gene encoding a neuronal polyamine transporter.

Polyamines are regulatory metabolites with key roles in transcription, translation, cell signalling and autophagy1. They are implicated in multiple neurological disorders including stroke, epilepsy and neurodegeneration and can regulate neuronal excitability through interactions with ion channels2. Polyamines have been linked to pain showing altered levels in human persistent pain states and modulation of pain behaviour in animal models3. However, the systems governing polyamine transport within the nervous system remain unclear. In undertaking a Genome Wide Association Study (GWAS) of chronic pain intensity in the UK-Biobank we found significant association with variants mapping to the SLC45A4 gene locus. In the mouse nervous system SLC45A4 expression is enriched in all sensory neuron sub-types within the dorsal root ganglion including nociceptors. Cell-based assays show that SLC45A4 is a selective plasma membrane polyamine transporter, whilst the cryo-EM structure reveals a novel regulatory domain and basis for polyamine recognition. Mice lacking SLC45A4 show normal mechanosensitivity but reduced sensitivity to noxious heat and algogen induced tonic pain that is associated with reduced excitability of peptidergic nociceptors. Our findings thus establish a role for neuronal polyamine transport in pain perception and identify a new target for therapeutic intervention in pain treatment.

neuroscience↗

Molecular basis for redox control by the human cystine/glutamate antiporter System xc-.

Cysteine plays an essential role in cellular redox homeostasis as a key constituent of the tripeptide glutathione (GSH). A rate limiting step in cellular GSH synthesis is the availability of cysteine. However, circulating cysteine exists in the blood as the oxidised di-peptide cystine, requiring specialised transport systems for its import into the cell. System xc- is a dedicated cystine transporter, importing cystine in exchange for intracellular glutamate. To counteract elevated levels of reactive oxygen species in cancerous cells system xc- is frequently upregulated, making it an attractive target for anticancer therapies. However, the molecular basis for ligand recognition remains elusive, hampering efforts to specifically target this transport system. Here we present the cryo-EM structure of system xc- in both the apo and glutamate bound states. Structural comparisons reveal an allosteric mechanism for ligand discrimination, supported by molecular dynamics and cell-based assays, establishing a mechanism for cystine transport in human cells.

biochemistry↗