Transferrin From Human Serum, Alexa Fluor™ Conjugate
Invitrogen™

Transferrin From Human Serum, Alexa Fluor™ Conjugate

Transferrin is a monomeric serum glycoprotein that binds to a specific receptor on the surface of vertebrate cells and delivers up to two Fe3+ atoms via receptor-mediated endocytosis—our labeled LDL complexes are useful tools for studying this phenomenon.
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產品號碼Dye TypeQuantity
T23364Alexa Fluor Dyes5 mg
T13342Alexa Fluor Dyes5 mg
T2871Classic Dyes5 mg
T35352Alexa Fluor Dyes5 mg
T23365Alexa Fluor Dyes5 mg
T13343Alexa Fluor Dyes5 mg
T23362Alexa Fluor Dyes5 mg
T23366Alexa Fluor Dyes5 mg
產品號碼 T23364
價格 (HKD)
5,750.00
5 mg
Dye Type:
Alexa Fluor Dyes
Quantity:
5 mg
價格 (HKD)
5,750.00
5 mg

Fluorescent transferrin for receptor-mediated endocytosis and recycling

Fluorescent transferrin conjugates are widely used to study transferrin receptor-mediated endocytosis, endosomal trafficking, and recycling using live-cell imaging or fixed-cell endpoint analysis. Transferrin binds transferrin receptor 1 (TfR1) at the cell surface and is internalized through clathrin-mediated endocytosis. Following endosomal acidification and iron release, apo-transferrin remains bound to TfR1 and the complex recycles to the plasma membrane, where apo-transferrin dissociates.

Why use fluorescent transferrin for endocytosis studies?

  • Track receptor-mediated endocytosis: Follow transferrin binding, TfR-mediated internalization, and intracellular trafficking.
  • Monitor endocytic recycling: Use fluorescent transferrin as a well-established marker of the endosomal recycling pathway.
  • Study trafficking kinetics: Follow uptake and recycling using live-cell imaging, pulse-chase experiments, or fixed-cell endpoint analysis.
  • Assess endosomal trafficking: Investigate trafficking events associated with endosomal acidification, cargo sorting, and membrane transport.
  • Compare trafficking pathways: Combine fluorescent transferrin with fluorescent LDL or other cargo markers to compare recycling and lysosomally directed pathways.
  • Enable multiplex fluorescence imaging: Choose from fluorescein and Alexa Fluor™ 488, 546, 555, 568, 594, 633, and 647 conjugates for multicolor imaging workflows.

Fluorescent transferrin enables a direct fluorescence readout of a well-characterized endocytic pathway, making it a versatile probe for studying receptor internalization, endosomal trafficking, and recycling.

Choose a fluorescent transferrin conjugate for your imaging workflow

Select from fluorescein and Alexa Fluor™ 488, 546, 555, 568, 594, 633, and 647 transferrin conjugates, with fluorescence spanning green to far-red wavelengths.

Multiple fluorophore options

  • Match your imaging system: Select a conjugate compatible with available excitation sources, emission filters, and detectors.
  • Support multicolor imaging: Choose spectrally distinct labels for use with antibodies, organelle markers, and other fluorescent probes.
  • Optimize experimental design: Select the excitation and emission profile that best fits your available fluorescence channels.
  • Use one biological probe across workflows: Study transferrin receptor trafficking with fluorophore options suitable for a range of fluorescence microscopy applications.

Applications of fluorescent transferrin

Fluorescent transferrin is a well-established probe for studying transferrin receptor-mediated endocytosis and intracellular trafficking.

Use fluorescent transferrin to:

  • Visualize receptor-mediated internalization and recycling using live-cell imaging or fixed-cell endpoint analysis
  • Track endosomal trafficking using fluorescence and confocal microscopy
  • Study trafficking events associated with endosomal acidification and changes in endosomal function
  • Investigate transferrin receptor dynamics, including appropriately designed FRET-based studies
  • Measure transferrin receptor binding in mammalian and parasite model systems
  • Compare recycling and lysosomal trafficking using complementary fluorescent cargo markers
For Research Use Only. Not for use in diagnostic procedures.
規格
Detection MethodFluorescence
Dye TypeAlexa Fluor Dyes
Excitation/Emission556/573
FormSolid
Protein FamilyTransferrin
Quantity5 mg
Shipping ConditionRoom Temperature
Product LineAlexa Fluor
Product TypeTransferrin
pH7.2
Unit Size5 mg
內容物與存放
Store in freezer (-5 to -30°C) and protect from light.

引用資料與參考文獻 (26)

引用資料與參考文獻
Abstract
Grp1-associated scaffold protein (GRASP) is a regulator of the ADP ribosylation factor 6 (Arf6)-dependent membrane trafficking pathway.
Authors:Venkataraman A, Nevrivy DJ, Filtz TM, Leid M,
Journal:Cell Biol Int
PubMed ID:22931251
GRASP interacts with Grp1 (general receptor for phosphoinositides 1; cytohesin 3), which catalyses nucleotide exchange on and activation of Arf6 (ADP-ribosylation factor-6). Arf6 is a low-molecular-mass GTPase that regulates key aspects of endocytic recycling pathways. Overexpressed GRASP accumulated in the juxtanuclear ERC (endocytic recycling compartment). GRASP co-localized with a constitutively ... More
Amino acid residues critical for endoplasmic reticulum export and trafficking of platelet-activating factor receptor.
Authors:Hirota N, Yasuda D, Hashidate T, Yamamoto T, Yamaguchi S, Nagamune T, Nagase T, Shimizu T, Nakamura M,
Journal:J Biol Chem
PubMed ID:20007715
'Several residues are conserved in the transmembrane domains (TMs) of G-protein coupled receptors. Here we demonstrate that a conserved proline, Pro(247), in TM6 of platelet-activating factor receptor (PAFR) is required for endoplasmic reticulum (ER) export and trafficking after agonist-induced internalization. Alanine-substituted mutants of the conserved residues of PAFRs, including P247A, ... More
TLR9 signals after translocating from the ER to CpG DNA in the lysosome.
Authors:Latz E, Schoenemeyer A, Visintin A, Fitzgerald KA, Monks BG, Knetter CF, Lien E, Nilsen NJ, Espevik T, Golenbock DT
Journal:Nat Immunol
PubMed ID:14716310
'Microbial DNA sequences containing unmethylated CpG dinucleotides activate Toll-like receptor 9 (TLR9). We have found that TLR9 is localized to the endoplasmic reticulum (ER) of dendritic cells (DCs) and macrophages. Because there is no precedent for immune receptor signaling in the ER, we investigated how TLR9 is activated. We show ... More
Regulation of endocytosis via the oxygen-sensing pathway.
Authors:Wang Y, Roche O, Yan MS, Finak G, Evans AJ, Metcalf JL, Hast BE, Hanna SC, Wondergem B, Furge KA, Irwin MS, Kim WY, Teh BT, Grinstein S, Park M, Marsden PA, Ohh M,
Journal:Nat Med
PubMed ID:19252501
'Tumor hypoxia is associated with disease progression, resistance to conventional cancer therapies and poor prognosis. Hypoxia, by largely unknown mechanisms, leads to deregulated accumulation of and signaling via receptor tyrosine kinases (RTKs) that are critical for driving oncogenesis. Here, we show that hypoxia or loss of von Hippel-Lindau protein--the principal ... More
Chemical-genetic inhibition of a sensitized mutant myosin Vb demonstrates a role in peripheral-pericentriolar membrane traffic.
Authors:Provance DW, Gourley CR, Silan CM, Cameron LC, Shokat KM, Goldenring JR, Shah K, Gillespie PG, Mercer JA
Journal:Proc Natl Acad Sci U S A
PubMed ID:14766983
'Selective, in situ inhibition of individual unconventional myosins is a powerful approach to determine their specific physiological functions. Here, we report the engineering of a myosin Vb mutant that still hydrolyzes ATP, yet is selectively sensitized to an N(6)-substituted ADP analog that inhibits its activity, causing it to remain tightly ... More