pHrodo™ Red and Green Dextran, 10,000 MW, for Endocytosis
pHrodo™ Red and Green Dextran, 10,000 MW, for Endocytosis
pHrodo™ Red and Green Dextran, 10,000 MW, for Endocytosis
pHrodo™ Red and Green Dextran, 10,000 MW, for Endocytosis
pHrodo™ Red and Green Dextran, 10,000 MW, for Endocytosis
pHrodo™ Red and Green Dextran, 10,000 MW, for Endocytosis
Invitrogen™

pHrodo™ Red and Green Dextran, 10,000 MW, for Endocytosis

Perform fast and accurate live-cell endocytosis and imaging assays with pHrodo Red and Green dextran conjugates, which offer pH-sensitive pHrodo dyes that have no need for washing steps or quencher dye, and which can be multiplexed in imaging, HTS, HCA, tracing, and flow applications.
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P10361
P35368
Catalog number P10361
Price (CNY)
5,386.00
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Ends: 31-Dec-2025
7,300.00
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Price (CNY)
5,386.00
Online Exclusive
Ends: 31-Dec-2025
7,300.00
Save 1,914.00 (26%)
Each
Add to cart
Ask our AI about this Product
Perform live-cell imaging of endocytosis faster and more accurately without the need for wash steps or quencher dye with pHrodo Red and Green dextran 10,000 MW conjugates. The pH-sensitive pHrodo Red and Green dextran conjugates are nonfluorescent in neutral environments but elicit bright red or green fluorescent signal in pH ranges 5–8, such as those in endosomes and lysosomes. These pHrodo-labeled dextrans can be multiplexed with other dyes and used in imaging, HTS, tracing, and flow applications.
pHrodo Red Dextran (Cat. No. P10361) is a superior alternative to other fluorescent dextran conjugates (e.g., BCECF and tetramethylrhodamine [TRITC]) for live-cell imaging of endocytosis, the process whereby the plasma membrane buds to form membrane-bound vesicles (endosomes), which are then trafficked to various destinations within the cell. pHrodo Red Dextran has pH-sensitive fluorescence excitation/emission spectra of 560/585 nm, and its fluorescence emission increases in intensity with increasing acidity. This increase is particularly dramatic in the range pH 5–8, as commonly seen within endocytic vesicles. pHrodo Red Dextran is essentially dark in the extracellular environment; however, upon internalization, the dextran conjugate elicits a bright, red-fluorescent signal in the acidic environment of the endosomes. pHrodo Red Dextran can also be multiplexed with a wide variety of blue, green, and far-red dyes and reporters such as GFP, Fuo-4, calcein, NucBlue, CellEvent Caspase 3/7 green, Mitosox Green, and Mitotracker Deep Red, among many others.

pHrodo Green Dextran (Cat. No. P35368), like pHrodo Red Dextran, offers fast and accurate results for live-cell endocytosis and phagocytosis assays. pHrodo Green conjugates are non-fluorescent outside the cell at neutral pH, but fluoresce bright green at acidic pH ranges, such as those in endosomes and lysosomes. The pHrodo Green dye can be multiplexed with a wide variety of blue, red, and far-red dye reporters such as Mitosox Red, CellEvent Caspase 3/7 Red, NucBlue, RFPs, and Mitotracker Deep Red, among many others. pHrodo Green Dextran 10,000 MW conjugate can be used in cell imaging, high content screening, high throughput screening, and flow applications. For a broader selection of compatible dyes, please refer to the Cell Staining Tool or SpectraViewer.

Key applications using labeled dextrans:
There are many citations describing the use of labeled dextrans. Some of the most common uses include the following:
• Neuronal tracing (anterograde and retrograde) in live cells
• Cell lineage tracing in live cells
• Neuroanatomical tracing
• Examining intercellular communications (e.g., in gap junctions, during wound healing, and during embryonic development)
• Investigating vascular permeability and blood-brain barrier integrity
• Tracking endocytosis
• Monitoring acidification (some dextran-dye conjugates are pH-sensitive)
• Studying the hydrodynamic properties of the cytoplasmic matrix.

High manufacturing standards
We offer more than 50 fluorescent and biotinylated dextran conjugates in several molecular weight ranges. Dextrans are hydrophilic polysaccharides characterized by their moderate-to-high molecular weight, good water solubility, and low toxicity. They also generally exhibit low immunogeniticy. Dextrans are biologically inert due to their uncommon poly-(α-D-1,6-glucose) linkages, which render them resistant to cleavage by most endogenous cellular glycosidases.

In most cases, our fluorescent dextrans are much brighter and have higher negative charge than dextrans available from other sources. Furthermore, we use rigorous methods for removing as much unconjugated dye as practical, and then assay our dextran conjugates by thin-layer chromatography to help ensure the absence of low molecular weight contaminants.

Wide selection of substituents and molecular weights
Our dextrans are conjugated to biotin or a wide variety of fluorophores, including seven of our Alexa Fluor dyes and are available in these nominal molecular weights (MW): 3,000; 10,000; 40,000; 70,000; 500,000; and 2,000,000 daltons.

For Research Use Only. Not for human or animal therapeutic or diagnostic use.
Specifications
Cell TypeMammalian
DescriptionpHrodo™ Red Dextran, 10,000 MW, for Endocytosis
Detection MethodFluorescence
Dye TypeOther Label(s) or Dye(s), pH-Sensitive Dyes
Excitation/Emission565/585
FormLyophilized
IndicatorEndocytosis
Quantity0.5 mg
Shipping ConditionRoom Temperature
SolubilitypH >6
Sub Cellular LocalizationEndosomes, Lysosomes
ColorRed
For Use With (Application)Cell Analysis
For Use With (Equipment)Confocal Microscope, Fluorescence Microscope, Flow Cytometer, High Content Analysis Instrument
Product LinepHrodo
Product TypeSupplement
pH5 to 8
Unit SizeEach
Contents & Storage
Store at –20°C, desiccate, and protect from light.

phrodo-red-5-internalization
live-cell-tracking-with-phrodo-dyes
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Figures

Fluorescence spectra

Fluorescence spectra

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Certificates

Lot #Certificate TypeDateCatalog Number(s)
3021976Certificate of AnalysisOct 17, 2024P35368
2896573Certificate of AnalysisApr 25, 2024P10361
2866023Certificate of AnalysisFeb 20, 2024P35368
2836724Certificate of AnalysisDec 13, 2023P35368
2600168Certificate of AnalysisJun 21, 2023P10361
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Safety Data Sheets

Frequently asked questions (FAQs)

pHrodo Red dextran dye is not known to be toxic to cells. What is more likely is that the cells are not healthy in PBS in the amount of time needed for the assay. Instead, we recommend labeling in a more physiological buffer, such as HBSS, or in phenol red-free media, at an optimal temperature for your cells.

Find additional tips, troubleshooting help, and resources within our Cell Analysis Support Center.

The working concentration for pHrodo Red and Green Dextran, 10,000 MW, for Endocytosis (Cat. Nos. P10361, P35368) is anywhere between 10 and 100 µg/mL, depending on cell type, level of background, duration of loading, and the detection modality. We recommend starting with 50 µg/mL treatment and then titrating up or down to get an optimal signal.

Find additional tips, troubleshooting help, and resources within our Cell Analysis Support Center.

Citations & References (41)

Citations & References
Abstract
A Review of Reagents for Fluorescence Microscopy of Cellular Compartments and Structures, Part I: BacMam Labeling and Reagents for Vesicular Structures.
Authors:Dolman NJ, Kilgore JA, Davidson MW,
Journal:
PubMed ID:23835803
'Fluorescent labeling of vesicular structures in cultured cells, particularly for live cells, can be challenging for a number of reasons. The first challenge is to identify a reagent that will be specific enough where some structures have a number of potential reagents and others very few options. The emergence of ... More
Loss of PiT-1 results in abnormal endocytosis in the yolk sac visceral endoderm.
Authors:Wallingford MC, Giachelli CM
Journal:
PubMed ID:25138534
'PiT-1 protein is a transmembrane sodium-dependent phosphate (Pi) transporter. PiT-1 knock out (KO) embryos die from largely unknown causes by embryonic day (E) 12.5. We tested the hypothesis that PiT-1 is required for endocytosis in the embryonic yolk sac (YS) visceral endoderm (VE). Here we present data supporting that PiT-1 ... More
d-Tocopherol Reduces Lipid Accumulation in Niemann-Pick Type C1 and Wolman Cholesterol Storage Disorders.
Authors:Xu M, Liu K, Swaroop M, Porter FD, Sidhu R, Finkes S, Ory DS, Marugan JJ, Xiao J, Southall N, Pavan WJ, Davidson C, Walkley SU, Remaley AT, Baxa U, Sun W, McKew JC, Austin CP, Zheng W,
Journal:J Biol Chem
PubMed ID:23035117
'Niemann-Pick disease type C (NPC) and Wolman disease are two members of a family of storage disorders caused by mutations of genes encoding lysosomal proteins. Deficiency in function of either the NPC1 or NPC2 protein in NPC disease or lysosomal acid lipase in Wolman disease results in defective cellular cholesterol ... More
Molecular basis for pH-dependent mucosal dehydration in cystic fibrosis airways.
Authors:Garland AL, Walton WG, Coakley RD, Tan CD, Gilmore RC, Hobbs CA, Tripathy A, Clunes LA, Bencharit S, Stutts MJ, Betts L, Redinbo MR, Tarran R,
Journal:
PubMed ID:24043776
'The ability to maintain proper airway surface liquid (ASL) volume homeostasis is vital for mucus hydration and clearance, which are essential aspects of the mammalian lung''s innate defense system. In cystic fibrosis (CF), one of the most common life-threatening genetic disorders, ASL dehydration leads to mucus accumulation and chronic infection. ... More
Walking nanothermometers: spatiotemporal temperature measurement of transported acidic organelles in single living cells.
Authors:Oyama K, Takabayashi M, Takei Y, Arai S, Takeoka S, Ishiwata S, Suzuki M
Journal:Lab Chip
PubMed ID:22437040
We fabricated fluorescent nanoparticles which monitor temperature changes without sensitivity to pH (4-10) and ionic strength (0-500 mM). The nanothermometers spontaneously enter living HeLa cells via endocytosis, enclosed in acidic organelles, i.e., endosome/lysosome, and then transported along microtubules in a temperature-dependent manner, working as "walking nanothermometers". ... More
41 total citations

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