A Quantitative Assay for Ca 2+ Uptake through Normal and Pathological Hemichannels.
Chiara NardinAbraham Tettey-MateyViola DonatiDaniela MarazzitiChiara Di PietroChiara PeresMarcello RaspaFrancesco ZontaGuang YangMaryna GorelikSerena SinghLia CardarelliSachdev S SidhuTerrence F MeehanPublished in: International journal of molecular sciences (2022)
Connexin (Cx) hemichannels (HCs) are large pore hexameric structures that allow the exchange of ions, metabolites and a variety of other molecules between the cell cytoplasm and extracellular milieu. HC inhibitors are attracting growing interest as drug candidates because deregulated fluxes through HCs have been implicated in a plethora of genetic conditions and other diseases. HC activity has been mainly investigated by electrophysiological methods and/or using HC-permeable dye uptake measurements. Here, we present an all-optical assay based on fluorometric measurements of ionized calcium (Ca 2+ ) uptake with a Ca 2+ -selective genetically encoded indicator (GCaMP6s) that permits the optical tracking of cytosolic Ca 2+ concentration ([Ca 2+ ] cyt ) changes with high sensitivity. We exemplify use of the assay in stable pools of HaCaT cells overexpressing human Cx26, Cx46, or the pathological mutant Cx26G45E, under control of a tetracycline (Tet) responsive element (TRE) promoter (Tet-on). We demonstrate the usefulness of the assay for the characterization of new monoclonal antibodies (mAbs) targeting the extracellular domain of the HCs. Although we developed the assay on a spinning disk confocal fluorescence microscope, the same methodology can be extended seamlessly to high-throughput high-content platforms to screen other kinds of inhibitors and/or to probe HCs expressed in primary cells and microtissues.
Keyphrases
- high throughput
- single cell
- induced apoptosis
- high resolution
- protein kinase
- endothelial cells
- cell cycle arrest
- dna methylation
- gene expression
- quantum dots
- cancer therapy
- endoplasmic reticulum stress
- ms ms
- mesenchymal stem cells
- genome wide
- transcription factor
- stem cells
- optical coherence tomography
- living cells
- molecularly imprinted
- copy number
- electronic health record