di-SFA
di-SFA is a fluorescent probe used to measure transmembrane potential (Vm) across the plasma membrane. di-SFA contains a 3-hydroxychromone fluorophore that undergoes excited-state intramolecular proton transfer (ESIPT), producing dual emission from the normal (N*) and tautomeric (T*) states. di-SFA inserts deeply into the hydrophobic region of lipid bilayers. The sulfonate groups give di-SFA a double negative charge in aqueous media. Ratiometric measurements are performed in lipid vesicles using Ex/Em = 450/527 nm and Ex/Em = 450/605 nm.
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- CAS No.: 905306-19-6
- Formula: C45H35NNa2O10S2
- Molecular Weight:859.87
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Storage:
Please store the product under the recommended conditions in the Certificate of Analysis.
Biological Activity
Description
In Vitro
Procedure (The following is our recommended protocol. This protocol is for reference only and should be modified according to your specific needs).
2. Working solution preparation
2.1 Diluent: For lipid vesicle measurements, prepare di-SFA in 20 mM HEPES buffer, pH 7.0 (22 °C), containing 100 mM K2SO4 (high K+ buffer) or 100 mM Na2SO4 and 1 mM K2SO4 (low K+ buffer), and containing 2 mg/mL β-cyclodextrin.
2.1.1 For CEM cell suspension measurements, prepare di-SFA in Ringer's solution containing 1.5 mM K+ and 2 mg/mL β-cyclodextrin.
2.1.2 For patch-clamp measurements of adherent A172 and L929 cells, prepare di-SFA in Ringer's solution containing 1.5 mM K+ and 2 mg/mL β-cyclodextrin.
2.2 Working concentration: 1 µM di-SFA is used for lipid vesicle measurements.
2.2.1 4 µM di-SFA is used for CEM cell suspension loading.
2.2.2 5 µM di-SFA is used for A172 and L929 cell loading.
3. Staining procedure
3.1 Sample types[1]:
3.1.1 Lipid vesicles: Prepare unilamellar lipid vesicles from 10 mg egg yolk phosphatidylcholine in 0.5 mL high K+ buffer using an extruder, with 7 passes through a 0.2 µm filter membrane followed by 10 passes through a 0.1 µm filter membrane.
3.1.1.1 Dilute 10 µL of the resulting vesicle suspension to 1 mL in the appropriate buffer containing 1 µM di-SFA and 2 mg/mL β-cyclodextrin.
3.1.2 CEM cell suspension: Culture CEM cells in synthetic medium X-Vivo 15 at 37 °C in a humidified 5% CO2 atmosphere.
3.1.2.1 Incubate the cells in Ringer's solution containing 1.5 mM K+, 2 mg/mL β-cyclodextrin, and 4 µM di-SFA for 10 min.
3.1.2.2 After centrifugation at 1500 rpm for 5 min, resuspend the cells at 2 × 106 cells/mL in Ringer's solution containing 1.5 mM K+ .
3.1.3 A172 and L929 adherent cells: Seed the cells in culture dishes with fibronectin-coated glass bottoms.
3.1.3.1 To provide antioxidant protection, dissolve astaxanthin at 2 mM in THF, add 100 µL of this solution to 20 mL DMEM under vortexing, replace the normal extracellular medium with astaxanthin-containing medium at room temperature, and incubate the cells at 37 °C for 24 h before measurement.
3.1.3.2 For dye loading, replace the medium with Ringer's solution containing 1.5 mM K+, 2 mg/mL β-cyclodextrin, and 5 µM di-SFA, and incubate at room temperature for 15 min.
3.1.3.3 Rinse the cells with Ringer's solution containing 1.5 mM K+ .
3.2 Incubation conditions:
3.2.1 For CEM cell suspension loading, incubate in Ringer's solution containing 4 µM di-SFA for 10 min.
3.2.2 For A172 and L929 cell loading, incubate in Ringer's solution containing 5 µM di-SFA at room temperature for 15 min.
3.2.3 For lipid vesicle measurements, dilute the vesicle suspension into buffer containing 1 µM di-SFA.
3.2.4 To generate a transmembrane potential in lipid vesicles, add valinomycin in ethanol solution to a final concentration of 90 nM, with a final ethanol concentration of 0.02%.
3.2.5 To generate a transmembrane potential in CEM cell suspensions, add valinomycin in ethanol solution to a final concentration of 1.5 µM, with a final ethanol concentration of 0.02%.
3.3 Washing steps:
3.3.1 For CEM cells, centrifuge at 1500 rpm for 5 min and resuspend in Ringer's solution containing 1.5 mM K+ .
3.3.2 For A172 and L929 cells, rinse with Ringer's solution containing 1.5 mM K+ .
4. Controls
4.1 In CEM cell suspensions, adding the corresponding amount of external Na+ does not change the I510/I605 ratio, whereas subsequent addition of external K+ decreases this ratio.
4.2 When the external and internal K+ concentrations are equal, the ratiometric response after adding valinomycin is nearly zero, ruling out a direct effect of valinomycin on probe fluorescence.
5. Detection and analysis
5.1 Instrument type: Absorption spectra and fluorescence spectra are recorded on a spectrophotometer.
5.1.1 Time-based fluorescence ratiometric measurements from lipid vesicles or cell suspensions are acquired on a fluorescence spectrophotometer equipped with two photomultiplier tubes and monochromators.
5.1.2 Combined patch-clamp and fluorescence experiments on single adherent cells are performed on an inverted microscope equipped with a patch-clamp amplifier.
5.2 Wavelength settings: For lipid vesicle measurements, set the long-wavelength channel to 605 nm, the short-wavelength channel to 527 nm, the excitation wavelength to 450 nm, and the monochromator slit to 32 nm.
5.2.1 For cell measurements, set the long-wavelength channel to 605 nm, the short-wavelength channel to 510 nm, the excitation wavelength to 450 nm, and the monochromator slit to 32 nm.
5.2.2 For patch-clamp fluorescence, restrict the excitation light with a 440 nm (10 nm) bandpass filter, use a 455 nm dichroic mirror, use a 460 nm cutoff longpass filter, separate the emitted fluorescence with a 565 nm dichroic mirror, use a 520 nm cutoff longpass filter, and acquire the emission ratio at 1 kHz.
5.3 Result analysis: di-SFA exhibits dual emission from the N* and T* bands.
5.3.1 In lipid vesicles, hyperpolarization with Vm = -118 mV increases the relative intensity of the N* band and causes a slight red shift of both bands; the ratio of the two bands increases by approximately 9.5%, corresponding to approximately 8% per 100 mV.
5.3.2 In CEM cell suspensions, valinomycin hyperpolarizes the cells and increases the relative intensity of the N* band, whereas external K+ depolarizes the cells and decreases the relative intensity of the N* band; the ratiometric response is 15% per 100 mV.
5.3.3 In patch-clamped A172 cells, the probe exhibits rapid systematic changes in the fluorescence ratio in response to depolarizing steps, with the response completed within 1 ms.
5.3.4 After loading, A172 and L929 cells exhibit orange fluorescence at the plasma membrane, and dye internalization is detectable only 2 h after the start of the experiment.
MedChemExpress (MCE) has not independently confirmed the accuracy of these methods. They are for reference only. .
Chemical Information
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CAS No. 905306-19-6
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Molecular Weight 859.87
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Formula C45H35NNa2O10S2
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SMILES
CCN(CC)C(C=C1)=CC(O2)=C1C=C2C(OC3=CC=C4/C=C/C5=CC(/C=C/C6=CC=C(C=C6)S(=O)(O[Na])=O)=CC(/C=C/C(C=C7)=CC=C7S(=O)(O[Na])=O)=C5)=C(C(C3=C4)=O)O
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Shipping
Room temperature in continental US; may vary elsewhere.
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Storage
Please store the product under the recommended conditions in the Certificate of Analysis.
Purity & Documentation
References
Calculators
Concentration (start) × Volume (start) = Concentration (final) × Volume (final)