Deconvolution of complex G protein-coupled receptor signaling in live cells using dynamic mass redistribution measurements.
basic_science · Level V
Where this comes from
- Record sourced from PubMed, PMID 20711173.
- Also identified by DOI 10.1038/nbt.1671.
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Abstract
Label-free biosensor technology based on dynamic mass redistribution (DMR) of cellular constituents promises to translate GPCR signaling into complex optical 'fingerprints' in real time in living cells. Here we present a strategy to map cellular mechanisms that define label-free responses, and we compare DMR technology with traditional second-messenger assays that are currently the state of the art in GPCR drug discovery. The holistic nature of DMR measurements enabled us to (i) probe GPCR functionality along all four G-protein signaling pathways, something presently beyond reach of most other assay platforms; (ii) dissect complex GPCR signaling patterns even in primary human cells with unprecedented accuracy; (iii) define heterotrimeric G proteins as triggers for the complex optical fingerprints; and (iv) disclose previously undetected features of GPCR behavior. Our results suggest that DMR technology will have a substantial impact on systems biology and systems pharmacology as well as for the discovery of drugs with novel mechanisms.
Medical subject headings
- Adenylyl Cyclases
- Adenylyl Cyclases/metabolism
- Animals
- Biosensing Techniques
- Biosensing Techniques/methods
- CHO Cells
- Cell Survival
- Cricetinae
- Cricetulus
- Enzyme Activation
- GTP-Binding Protein alpha Subunits, G12-G13
- GTP-Binding Protein alpha Subunits, G12-G13/metabolism
- HEK293 Cells
- Humans
- Keratinocytes
- Keratinocytes/metabolism
- Organ Specificity
- Receptors, G-Protein-Coupled
- Receptors, G-Protein-Coupled/metabolism
- Signal Transduction