Di-4-AN(F)EPPTEA
Di-4-AN (F) EPPTEA is a voltage-sensitive dye used for membrane potential imaging and optical recording of electrical activity in excitable cells and tissues. Its detection mechanism is based on electrochromism (also known as the molecular Stark effect). The single-photon excitation/emission wavelengths measured in ethanol solution are Ex/Em = 444/610 nm, and it can be excited via 1064 nm two-photon excitation in optical recording applications. Di-4-AN (F) EPPTEA can be used to record backpropagating action potentials in individual dendritic spines of brain cortical slices, map subcellular action potential characteristics of single cardiomyocytes, and perform real-time recording of multicellular action potentials in cerebellar slices.
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- CAS No.: 1418017-91-0
- Formula: C34H49Br2F2N3
- Molecular Weight:697.58
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Storage:
Please store the product under the recommended conditions in the Certificate of Analysis.
Biological Activity
Description
In Vitro
Di-4-AN (F) EPPTEA carries a fluorine atom on the donor side, and its absorption peak wavelength shifts to a shorter wavelength compared with the non-fluorinated dye Di-4-ANEPPTEA[1].
MedChemExpress (MCE) has not independently confirmed the accuracy of these methods. They are for reference only. Further protocols information, click here.
Chemical Information
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CAS No. 1418017-91-0
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Molecular Weight 697.58
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Formula C34H49Br2F2N3
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SMILES
CCCCN(C1=CC2=CC=C(C=C2C=C1)/C=C/C3=C(C=[N+](C=C3F)CCC[N+](CC)(CC)CC)F)CCCC.[Br-].[Br-]
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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.
Protocols
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Cardiac voltage-sensitive optical mapping
Cardiac voltage-sensitive optical mapping records changes in transmembrane potential from cardiac tissue by staining the preparation with a voltage-sensitive dye and imaging fluorescence changes during electrical activation; the resulting optical action potentials can be used to map activation time, action potential duration, conduction velocity, wavefront propagation, and arrhythmia dynamics. The optical signal represents a relative fluorescence change from a tissue volume rather than a single-cell intracellular recording, so spatial resolution, sampling rate, voltage resolution, optical magnification, light penetration, and motion control must be considered together when interpreting optical action potentials.
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Neuronal voltage-sensitive dye imaging
Neuronal voltage-sensitive dye imaging detects membrane-potential-dependent optical changes from dyes associated with neuronal membranes, enabling optical recording of electrical activity from single neurons, dendrites, axons, spines, or neuronal populations in brain slices and cultured neurons. VSD signals are typically reported as fractional fluorescence or absorbance changes over baseline, such as ΔF/F or ΔI/I, and published protocols use high-speed cameras or photodiode arrays because neuronal voltage signals occur on millisecond time scales. Fast VSD imaging can be applied at two common scales: bulk staining of brain slices to measure circuit-level spatiotemporal activity, and single-cell loading or biolistic delivery to record membrane-potential transients from individual neuronal compartments. Optical signals should be interpreted as membrane-potential-related readouts, and validation by simultaneous electrophysiology or pharmacological controls is recommended when the experimen
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Acute brain-slice whole-cell patch-clamp recording
Acute brain-slice whole-cell patch-clamp recording measures membrane voltage or ionic current from visually targeted cells in living brain slices; after giga-seal formation, the membrane under the pipette is ruptured to provide low-resistance electrical access to the cell interior, enabling current-clamp analysis of excitability and voltage-clamp analysis of synaptic or membrane currents. Acute slices preserve local tissue architecture better than dissociated preparations and allow visually guided recording from defined brain regions or fluorescently labeled cells; however, whole-cell access also permits exchange between pipette solution and cytoplasm, so intracellular dialysis must be considered when interpreting signaling-dependent phenomena.
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Fluorescent plasma-membrane potential dye assay
Fluorescent plasma-membrane potential dye assays measure changes in cell membrane potential using voltage-sensitive dyes whose fluorescence changes when cells depolarize or hyperpolarize. Anionic bis-oxonol dyes such as DiBAC4(3) enter depolarized cells more readily and show increased fluorescence after intracellular binding, while hyperpolarization reduces dye accumulation and fluorescence. FMP/FLIPR membrane-potential dyes are used for faster, homogeneous microplate assays of ion-channel or receptor-mediated membrane-potential changes.
Purity & Documentation
References
Calculators
Concentration (start) × Volume (start) = Concentration (final) × Volume (final)