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Biology subjects

Zaro, B.

Publications and source records attributed to Zaro, B..

2 recordsLinked to original sources

RNA binding proteins and glycoRNAs form domains on the cell surface for cell penetrating peptide entry

The composition and organization of the cell surface determine how cells interact with their environment. Traditionally, glycosylated transmembrane proteins were thought to be the major constituents of the external surface of the plasma membrane. Here, we provide evidence that a group of RNA binding proteins (RBPs) are present on the surface of living cells. These cell surface RBPs (csRBPs) precisely organize into well-defined nanoclusters that are enriched for multiple RBPs, glycoRNAs, and their clustering can be disrupted by extracellular RNase addition. These glycoRNA-csRBP clusters further serve as sites of cell surface interaction for the cell penetrating peptide TAT. Removal of RNA from the cell surface, or loss of RNA binding activity by TAT, causes defects in TAT cell internalization. Together, we provide evidence of an expanded view of the cell surface by positioning glycoRNA-csRBP clusters as a regulator of communication between cells and the extracellular environment.

cell biology↗

EMC holdase:CaV1.2/CaVβ3 complex and CaV1.2 channel structures reveal CaV assembly and drug binding mechanisms

Voltage-gated ion channels (VGICs) comprise multiple structural units whose assembly is required for function1,2. There is scant structural understanding of how VGIC subunits assemble and whether chaperone proteins are required. High-voltage activated calcium channels (CaVs)3,4 are paradigmatic multi-subunit VGICs from electrically excitable tissues whose function and trafficking is powerfully shaped by interactions between pore-forming CaV1 or CaV2 CaV13 and auxiliary CaV{beta}5, and CaV2{delta} subunits6,7. Here, we present cryo-EM structures of human brain and cardiac CaV1.2 bound with CaV{beta}3 to a chaperone, the endoplasmic reticulum membrane protein complex (EMC)8,9, and of the isolated CaV1.2/CaV{beta}3/CaV2{delta}-1 channel. These provide an unprecedented view of an EMC holdase:client complex and define EMC sites, the TM and Cyto docks, whose interaction with the client channel cause partial extraction of a pore subunit and splay open the CaV2{delta} interaction site. The structures further identify the CaV2{delta} binding site for gabapentinoid anti-pain and anti-anxiety drugs6, show that EMC and CaV2{delta} channel interactions are mutually exclusive, and indicate that EMC to CaV2{delta} handoff involves a Ca2+-dependent step and ordering of multiple CaV1.2 elements. Together, the structures unveil a CaV assembly intermediate and previously unknown EMC client binding sites that have broad implications for biogenesis of VGICs and other membrane proteins.

biophysics↗