Three-Dimensional and Chemical Mapping of Intracellular Signaling Nanodomains in Health and Disease with Enhanced Expansion Microscopy.
Thomas M D SheardMiriam E HurleyJohn ColyerEd WhiteRuth NormanEleftheria PervolarakiKaarjel K NarayanasamyYufeng HouHannah M KirtonZhaokang YangLiam HunterJung-Uk ShimAlexander H ClowsleyAndrew J SmithDavid BaddeleyChristian SoellerMichael A ColmanIsuru D JayasinghePublished in: ACS nano (2019)
Nanodomains are intracellular foci which transduce signals between major cellular compartments. One of the most ubiquitous signal transducers, the ryanodine receptor (RyR) calcium channel, is tightly clustered within these nanodomains. Super-resolution microscopy has previously been used to visualize RyR clusters near the cell surface. A majority of nanodomains located deeper within cells have remained unresolved due to limited imaging depths and axial resolution of these modalities. A series of enhancements made to expansion microscopy allowed individual RyRs to be resolved within planar nanodomains at the cell periphery and the curved nanodomains located deeper within the interiors of cardiomyocytes. With a resolution of ∼ 15 nm, we localized both the position of RyRs and their individual phosphorylation for the residue Ser2808. With a three-dimensional imaging protocol, we observed disturbances to the RyR arrays in the nanometer scale which accompanied right-heart failure caused by pulmonary hypertension. The disease coincided with a distinct gradient of RyR hyperphosphorylation from the edge of the nanodomain toward the center, not seen in healthy cells. This spatial profile appeared to contrast distinctly from that sustained by the cells during acute, physiological hyperphosphorylation when they were stimulated with a β-adrenergic agonist. Simulations of RyR arrays based on the experimentally determined channel positions and phosphorylation signatures showed how the nanoscale dispersal of the RyRs during pathology diminishes its intrinsic likelihood to ignite a calcium signal. It also revealed that the natural topography of RyR phosphorylation could offset potential heterogeneity in nanodomain excitability which may arise from such RyR reorganization.
Keyphrases
- high resolution
- induced apoptosis
- single molecule
- heart failure
- cell cycle arrest
- pulmonary hypertension
- single cell
- public health
- high throughput
- healthcare
- intensive care unit
- cell surface
- coronary artery
- oxidative stress
- randomized controlled trial
- optical coherence tomography
- pulmonary artery
- mental health
- high speed
- signaling pathway
- social media
- pulmonary arterial hypertension
- stem cells
- magnetic resonance imaging
- mass spectrometry
- dna methylation
- hepatitis b virus
- risk assessment
- left ventricular
- high density
- mesenchymal stem cells
- molecular dynamics
- bone marrow
- label free
- climate change
- endothelial cells
- human health
- respiratory failure
- extracorporeal membrane oxygenation
- contrast enhanced