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Olesen, C. H.

Publications and source records attributed to Olesen, C. H..

2 recordsLinked to original sources

A one-step protocol to generate impermeable fluorescent HaloTag substrates for in situ live cell application and super-resolution imaging

Communication between cells is largely orchestrated by proteins on the cell surface, which allow information transfer across the cell membrane. Super-resolution and single-molecule visualization of these proteins can be achieved by genetically grafting HTP (HaloTag Protein) into the protein of interest followed by brief incubation of cells with a dye-HTL (dye-linked HaloTag Ligand). This approach allows for use of cutting-edge fluorophores optimized for specific optical techniques or a cell-impermeable dye-HTL to selectively label surface proteins without labeling intracellular copies. However, these two goals often conflict, as many high-performing dyes exhibit membrane permeability. Traditional methods to eliminate cell permeability face synthetic bottlenecks and risk altering photophysical properties. Here we report that dye-HTL reagents can be made cell-impermeable by inserting a charged sulfonate directly into the HTL, leaving the dye moiety unperturbed. This simple, one-step method requires no purification and is compatible with both the original HTL and second-generation HTL.2, the latter offering accelerated labeling. We validate such compounds, termed dye-SHTL ( dye shuttle) conjugates, in live cells via widefield microscopy, demonstrating exclusive membrane staining of extracellular HTP fusion proteins. In transduced primary hippocampal neurons, we label mGluR2, a neuromodulatory G protein-coupled receptor (GPCR), with dyes optimized for stimulated emission by depletion (STED) super-resolution microscopy, allowing unprecedented accuracy in distinguishing surface and receptors from those in internal compartments of the presynaptic terminal, important in neural communication. This approach offers broad utility for surface-specific protein labelling.

pharmacology and toxicology↗

Structure of the hepatitis C virus E1/E2 envelope proteins in a homodimeric complex

Worldwide, 58 million individuals suffer from chronic hepatitis C virus (HCV) infection, a primary driver of liver cancer. The HCV envelope proteins, E1 and E2, form a heterodimer, which is the target for neutralizing antibodies. Despite high-resolution structural models of partial heterodimer elements, the structural landscape of higher-order E1/E2 oligomers remains unexplored. We determined a ~3.5 [A] cryo-electron microscopy structure of membrane-extracted HCV E1/E2 in a homodimeric arrangement. This structure includes detailed information on the homodimer interface, the E2-binding pocket for hypervariable region 1, antigenic site 412 conformation, and the organization of the E1/E2 transmembrane regions, including one internal to E1. This higher-order E1/E2 assembly could play a pivotal role in the design of novel vaccine antigens better mimicking E1/E2 complexes on the HCV particle.

molecular biology↗