We report methods for characterization of MLKL-mediated plasma membrane rupture in necroptosis including conventional and confocal live-cell microscopy imaging, scanning electron microscopy, and NMR-based lipid binding.
A subscription to JoVE is required to view this content. Sign in or start your free trial.
Method Article
* These authors contributed equally
We report methods for characterization of MLKL-mediated plasma membrane rupture in necroptosis including conventional and confocal live-cell microscopy imaging, scanning electron microscopy, and NMR-based lipid binding.
Necroptosis is a programmed cell death pathway triggered by activation of receptor interacting protein kinase 3 (RIPK3), which phosphorylates and activates the mixed lineage kinase-like domain pseudokinase, MLKL, to rupture or permeabilize the plasma membrane. Necroptosis is an inflammatory pathway associated with multiple pathologies including autoimmunity, infectious and cardiovascular diseases, stroke, neurodegeneration, and cancer. Here, we describe protocols that can be used to characterize MLKL as the executioner of plasma membrane rupture in necroptosis. We visualize the process of necroptosis in cells using live-cell imaging with conventional and confocal fluorescence microscopy, and in fixed cells using electron microscopy, which together revealed the redistribution of MLKL from the cytosol to the plasma membrane prior to induction of large holes in the plasma membrane. We present in vitro nuclear magnetic resonance (NMR) analysis using lipids to identify putative modulators of MLKL-mediated necroptosis. Based on this method, we identified quantitative lipid-binding preferences and phosphatidyl-inositol phosphates (PIPs) as critical binders of MLKL that are required for plasma membrane targeting and permeabilization in necroptosis.
Identifying genetic components of necroptosis has facilitated the use of animal models to test the implication of necroptosis in physiology and disease1,2,3,4,5. Knockout of RIPK3 or MLKL in mice had minimal implication in development and adult homeostasis suggesting that necroptosis is not essential for life3....
Access restricted. Please log in or start a trial to view this content.
1. Cloning and Cell Line Generation
Access restricted. Please log in or start a trial to view this content.
Visualizing regulated necroptosis execution in live cells has been possible through inducible expression of a minimal truncated MLKL construct, NBB140-2xFV-Venus. This construct maintains the ability to induce plasma membrane permeabilization and is activated through Dim-induced oligomerization of the FKBP cassette (2xFV). We observe and quantify necroptosis by live-cell microscopy imaging, monitoring kinetically (every 5 min) the uptake of a cell impermeable green fluorescence.......
Access restricted. Please log in or start a trial to view this content.
We provide protocols for techniques that we combined to implicated MLKL as the putative executioner of plasma membrane rupture24. In addition to deciphering the regulatory network that regulates MLKL-mediated necroptosis, these techniques can be used independently to characterize other suitable biological systems. Practically speaking, these techniques are medium- to low-throughput discovery tools.
We have routinely used live-cell imaging of NBB140-2xFV-Venus.......
Access restricted. Please log in or start a trial to view this content.
| Name | Company | Catalog Number | Comments |
|---|---|---|---|
| Cloning and cell line generation | |||
| pRetroX-TRE3G | Clontech | 631188 | |
| Tet-On transactivator plasmid | Llambi et al., 2016 | ||
| Mouse Embryonic Fibroblasts (MEFs) mlkl-/- | Dillon et al., 2014 | ||
| Blasticidin S Hydrochloride | Thermo Fisher Scientific | BP2647100 CAS#3513-03-9 | |
| Cell death quantification and live-cell microscopy | |||
| Doxycycline | Clontech | 631311 CAS# 24390-14-5 | |
| B/B Homodimerizer AP20187 | Takara | 635059 CAS# 195514-80-8 | |
| SYTOX Green | Thermo Fisher Scientific | S7020 | |
| Syto16 | Thermo Fisher Scientific | S7578 | |
| NMR | |||
| 15 N Ammonium Chloride | Cambridge Isotope Laboratories | NLM-467-10 CAS# 12125-02-9 | |
| Deuterated DTT | Cambridge Isotope Laboratories | DLM-2622-1 | |
| Deuterium Oxide | Sigma Aldrich | 617385-1 CAS# 7789-20-0 | |
| n-Dodecyl-β-D-Maltopyranoside | Anatrace | D310 CAS# 69227-93-6 | |
| L-α-phosphatidylinositol-4,5-bisphosphate (Brain, Porcine) (ammonium salt) | Avanti Polar Lipids | 840046X CAS# 383907-42-4 | |
| 1,2-distearoyl-sn-glycero-3-phosphoinositol (ammonium salt) (18:0 PI) | Avanti Polar Lipids | 850143 CAS# 849412-67-5 | |
| 1,2-dioleoyl-sn-glycero-3-phospho-(1'-myo-inositol) (ammonium salt) (18:1) | Avanti Polar Lipids | 850149 CAS# 799268-53-4 | |
| Specialized Equipment | |||
| IncuCyte FLR or ZOOM | Essen BioScience, Inc. | Live-cell microscopy imaging | |
| Helios NanoLab 660 DualBeam | Thermo Fisher Scientific | Electron microscope | |
| Software | |||
| IncuCyte 2011A Rev2 v20111.3.4288 (FLR) | Essen BioScience, Inc. | http://www.essenbioscience.com | Imaging analysis |
| FEI MAPS | Thermo Fisher Scientific | https://www.fei.com/software/maps/ | EM analysis |
| TopSpin v3.2 | Bruker BioSpin | http://www.bruker.com | NMR data collection |
| CARA v1.9.1.7 | http://cara.nmr.ch/ | NMR data analysis | |
| Slidebook | 3i (Intelligent Imaging Innovations) | https://www.intelligent-imaging.com/slidebook | Confocal microscopy |
Access restricted. Please log in or start a trial to view this content.