Spring red
Spring Red is a fluorescent probe for mitochondrial pH detection (Ex/Em = 530/680 nm) that can be taken up by live cells and mitochondria. The detection mechanism of Spring Red depends on pH changes and mitochondrial membrane potential. Fluorescence intensity increases with elevated pH, and a significant pH-dependent fluorescent response is observed in the pH range of 5.0‑8.0. Spring Red is suitable for long-term live-cell imaging and in vivo imaging, and can be used to monitor dynamic mitochondrial pH changes.
For research use only. We do not sell to patients.
- CAS No.: 1616505-01-1
- Formula: C31H35ClN2O
- Molecular Weight:487.08
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Storage:
Please store the product under the recommended conditions in the Certificate of Analysis.
Biological Activity
Description
In Vitro
Operating Instructions
(The following is a recommended experimental protocol for guidance only and should be adjusted according to your specific requirements).
1. Stock Solution Preparation
1.1 Solvent: Universal buffer (0.1 M citric acid, 0.1 M KH2PO4, 0.1 M Na2B4O7, 0.1 M Tris, 0.1 M KCl).
1.2 Concentration recommendation: 1 mM.
2. Working Solution Preparation
2.1 Working concentration: 30 μM.
2.2 Notes: Adjust the working solution concentration as needed; prepare and use immediately.
3. Staining Procedure
3.1 Sample type[1]:
3.1.1 Adherent cells: Human hepatocellular carcinoma cells (HepG2).
3.2 Incubation conditions: Incubate adherent cells with 30 μM Spring Red for 10 min.
3.3 Washing step: Wash away lactic acid and pyruvate from HepG2 cells to reverse mitochondrial pH changes.
4. Control Setup
4.1 Localization imaging control: Stain HepG2 cells with Mito Green as a reference dye for mitochondrial localization.
4.2 Biological interferent control group: Test the interference of various common cations and ROS on the fluorescence signal of Spring Red in the universal buffer system to verify the anti-interference performance of the probe.
5. Detection and Analysis
5.1 Instrument: A laser confocal fluorescence microscope is used for cell imaging.
5.1.1 Excitation/emission wavelength: λex = 543 nm, λem = 650-800 nm.
5.2 Result analysis:
5.2.1 Fluorescence intensity change: Fluorescence intensity increases with elevated pH and decreases with reduced pH.
5.2.2 Fluorescence localization: Accumulates in the mitochondria of HepG2 cells.
5.2.3 Color change: Emits red near-infrared fluorescence.
MedChemExpress (MCE) has not independently confirmed the accuracy of these methods. They are for reference only. Further protocols information, click here.
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Cell Line:HL‑7702 cells
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Concentration:1.0×10‑4 M, 1.0×10‑5 M, 1.0×10‑6 M, 1.0×10‑7 M , 1.0×10‑8 M
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Incubation Time:12 h
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Result:Calculated IC50 value of Spring Red was 4.8×10‑3 M, Spring Red exhibited low cytotoxicity under cell imaging experimental conditions.
In Vivo
(The following is a recommended experimental protocol for guidance only, and adjustments are required based on your specific needs.)
1. Stock Solution Preparation
1.1 Solvent: Universal buffer (0.1 M citric acid, 0.1 M KH2PO4, 0.1 M Na2B4O7, 0.1 M Tris, 0.1 M KCl).
1.2 Recommended concentration: 1 mM.
2. Working Solution Preparation
2.1 Working concentration: 50 μM (for mice).
2.2 Notes: Adjust the working solution concentration as needed; prepare and use immediately.
3. Staining Procedure
3.1 Sample types[1]:
3.1.1 In vivo samples: Zebrafish, mice.
3.2 Incubation conditions: Inject 50 μM Spring Red intraperitoneally into mice.
4. Control Setup
4.1 In vivo imaging controls for mice:
4.1.1 LPS model control mice: Mice injected intraperitoneally with LPS only, without Spring Red probe treatment.
4.1.2 Probe control mice: Mice injected intraperitoneally with Spring Red probe only, without establishment of the intraperitoneal LPS-induced inflammation model.
4.2 In vivo imaging controls for zebrafish:
4.2.1 Positive organelle labeling control: Zebrafish stained with Mito Green, which serves as the positive reference dye for mitochondrial localization.
5. Detection and Analysis
5.1 Instruments: Laser confocal fluorescence microscope is used for zebrafish imaging; in vivo fluorescence imaging system is used for mouse imaging.
5.1.1 Excitation/emission wavelengths: For zebrafish imaging: λex = 543 nm, λem = 650-800 nm; for mouse imaging: λex = 530 nm, λem = 670 nm.
5.2 Result analysis:
5.2.1 Fluorescence intensity change: Fluorescence intensity increases with elevated pH and decreases with reduced pH.
5.2.2 Fluorescence localization: Enriches in the heart region of zebrafish; localizes in the abdominal cavity of mice.
5.2.3 Color change: Emits red near-infrared fluorescence.
MedChemExpress (MCE) has not independently confirmed the accuracy of these methods. They are for reference only.
Chemical Information
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CAS No. 1616505-01-1
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Molecular Weight 487.08
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Formula C31H35ClN2O
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SMILES
CCN1C2=CC=CC=C2C(C)(/C1=C\C=C3C(Cl)=C(CCC\3)/C=C/C(C4=CC=C(C=C4)N(C)C)=O)C
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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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Mitochondrial membrane-potential fluorescent assay
Mitochondrial membrane potential fluorescent assays estimate ΔΨm in living cells using lipophilic cationic dyes such as TMRM, TMRE, rhodamine 123, and JC-1, which accumulate in mitochondria according to membrane polarization; loss of signal after FCCP or CCCP treatment is interpreted as mitochondrial depolarization. TMRM/TMRE and rhodamine 123 are commonly used for semi-quantitative live-cell microscopy or flow cytometry, while JC-1 can report a shift from red aggregate fluorescence to green monomer fluorescence during depolarization; interpretation requires controls because dye concentration, quenching mode, cell type, dye efflux, and mitochondrial mass can affect fluorescence independently of ΔΨm.
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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.
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Mitochondrial membrane-potential and mitochondrial mass staining
Mitochondrial membrane potential staining measures the electrochemical polarization across the mitochondrial inner membrane in live cells using lipophilic cationic fluorescent probes; early rhodamine-based work showed that selective mitochondrial dye accumulation is lost when the mitochondrial transmembrane potential is dissipated. JC-1 reports mitochondrial polarization by shifting from green monomer fluorescence to red J-aggregate fluorescence as dye concentration increases within energized mitochondria; therefore, the red/green fluorescence ratio is used as a relative readout of mitochondrial membrane potential. TMRE or TMRM staining provides a single-channel relative readout because these cationic rhodamine esters accumulate in polarized mitochondria, and lower fluorescence indicates reduced mitochondrial polarization when acquisition and dye-loading conditions are controlled. Mitochondrial mass staining is commonly performed with MitoTracker Green FM or related MitoTracker dyes as
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Bioluminescent/Fluorescent Imaging Xenograft
Bioluminescent and fluorescent imaging xenograft models use tumor cells engineered to express optical reporters so tumor engraftment, growth, dissemination, and treatment response can be monitored longitudinally in living animals and validated ex vivo. Bioluminescence imaging usually measures luciferase activity after substrate administration and is commonly used as a surrogate for viable reporter-expressing tumor burden, while fluorescence imaging measures reporter or probe emission and can support tumor localization, ex vivo confirmation, or complementary multimodal analysis.
Purity & Documentation
References
Calculators
Concentration (start) × Volume (start) = Concentration (final) × Volume (final)