Cholera Toxin Subunit B (Recombinant) Conjugate
Invitrogen™

Cholera Toxin Subunit B (Recombinant) Conjugate

Recombinant cholera toxin B subunit (CT-B) conjugates bind with high affinity to GM1 ganglioside and support neuronal tracing, GM1 labeling, membrane trafficking, and membrane organization studies. Choose from Alexa Fluor™ 488, 555, 594, and 647 fluorescent conjugates, Biotin-XX, or horseradish peroxidase (HRP) to match your detection workflow.
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Catalog NumberConjugateQuantity
C22841Alexa Fluor 488500 μg
C34776Alexa Fluor 555100 μg
C22843Alexa Fluor 555500 μg
C34777Alexa Fluor 594100 μg
C22842Alexa Fluor 594500 μg
C34778Alexa Fluor 647100 μg
C34779Biotin100 μg
C34780
also known as C-34780
HRP (Horseradish Peroxidase)100 μg
Catalog number C22841
Price (USD)
980.65
Online exclusive
1,022.00
Save 41.35
Each
Conjugate:
Alexa Fluor 488
Quantity:
500 μg
Price (USD)
980.65
Online exclusive
1,022.00
Save 41.35
Each

Recombinant cholera toxin B conjugates for GM1 labeling and neuronal tracing

Cholera toxin B subunit (CT-B) binds with high affinity to GM1 ganglioside on the cell surface and is widely used for neuronal tracing, GM1 labeling, endocytosis, and membrane trafficking studies. At neutral pH, CT-B forms a pentamer with multiple GM1-binding sites, enabling multivalent interactions with GM1-containing membranes.

These conjugates are made using recombinant cholera toxin B subunit without the enzymatically active A subunit of native cholera toxin.

Why use recombinant cholera toxin B conjugates?

  • Label GM1 ganglioside: Use the high-affinity interaction between CT-B and GM1 to visualize and detect GM1-associated membrane structures.
  • Trace neuronal projections: Use CT-B for well-established retrograde labeling of neuronal pathways.
  • Study membrane trafficking: Follow CT-B/GM1 internalization and retrograde trafficking through endosomal pathways.
  • Investigate membrane organization: Label GM1 and examine GM1-associated membrane domains in lipid raft-related studies.
  • Use recombinant B subunit: Study GM1 binding and trafficking with CT-B lacking the enzymatically active A subunit of native cholera toxin.
  • Choose multiple detection formats: Select fluorescent Alexa Fluor™ conjugates, Biotin-XX, or HRP to match fluorescence, affinity-based, or enzyme-based detection workflows.

Choose a CT-B conjugate for your detection workflow

Select from Alexa Fluor™ 488, 555, 594, and 647 CT-B conjugates for fluorescence imaging, Biotin-XX for avidin- or streptavidin-based detection, or HRP for enzyme-based detection.

Why choose from multiple conjugates?

  • Match your imaging system: Select an Alexa Fluor™ conjugate compatible with available excitation sources, emission filters, and detectors.
  • Support multicolor imaging: Choose spectrally distinct Alexa Fluor™ dyes for use with other fluorescent probes, antibodies, and cellular markers.
  • Enable affinity-based detection: Use Biotin-XX conjugates with avidin- or streptavidin-based detection workflows.
  • Enable enzyme-based detection: Use HRP conjugates for chromogenic or chemiluminescent detection workflows.
  • Use one GM1-binding probe across workflows: Apply recombinant CT-B with different labels while maintaining the same GM1-binding biological probe.

Applications of cholera toxin B conjugates

Cholera toxin B conjugates are versatile probes for neuronal tracing, GM1 ganglioside labeling, endocytosis, and membrane trafficking studies.

Use CT-B conjugates to:

  • Perform neuronal tracing, including widely used retrograde labeling of neuronal projections
  • Label GM1 ganglioside on cell membranes
  • Visualize GM1-associated membrane domains in lipid raft-related studies
  • Study CT-B/GM1 internalization and retrograde trafficking through endosomal pathways
  • Perform fluorescence imaging with Alexa Fluor™ 488, 555, 594, or 647 conjugates
  • Perform avidin- or streptavidin-based detection with Biotin-XX conjugates
  • Perform enzyme-based detection with HRP conjugates

For Research Use Only. Not for use in diagnostic procedures.

For Research Use Only. Not for use in diagnostic procedures.
Specifications
Label TypeAlexa Fluor Dyes
Product LineAlexa Fluor
Protein FormRecombinant
Protein SubtypeCholera Toxin
Quantity500 μg
Shipping ConditionRoom Temperature
ConjugateAlexa Fluor 488
FormLyophilized
RecombinantRecombinant
Unit SizeEach
Contents & Storage
Store in freezer (-5 to -30°C) and protect from light.

Citations & References (53)

Citations & References
Abstract
Intracellular trafficking of Clostridium perfringens iota-toxin b.
Authors:Nagahama M, Umezaki M, Tashiro R, Oda M, Kobayashi K, Shibutani M, Takagishi T, Ishidoh K, Fukuda M, Sakurai J,
Journal:Infect Immun
PubMed ID:22825447
'Clostridium perfringens iota-toxin is composed of an enzymatic component (Ia) and a binding component (Ib). Ib binds to a cell surface receptor, undergoes oligomerization in lipid rafts, and binds Ia. The resulting complex is then endocytosed. Here, we show the intracellular trafficking of iota-toxin. After the binding of the Ib ... More
The B cell-specific major raft protein, Raftlin, is necessary for the integrity of lipid raft and BCR signal transduction.
Authors:Saeki K, Miura Y, Aki D, Kurosaki T, Yoshimura A
Journal:EMBO J
PubMed ID:12805216
'Recent evidence indicates that membrane microdomains, termed lipid rafts, have a role in B-cell activation as platforms for B-cell antigen receptor (BCR) signal initiation. To gain an insight into the possible functioning of lipid rafts in B cells, we applied liquid chromatography electrospray ionization tandem mass spectrometry (LC-ESI-MS/MS) methodologies to ... More
Lipid raft microdomains: a gateway for compartmentalized trafficking of Ebola and Marburg viruses.
Authors:Bavari S, Bosio CM, Wiegand E, Ruthel G, Will AB, Geisbert TW, Hevey M, Schmaljohn C, Schmaljohn A, Aman MJ
Journal:J Exp Med
PubMed ID:11877482
'Spatiotemporal aspects of filovirus entry and release are poorly understood. Lipid rafts act as functional platforms for multiple cellular signaling and trafficking processes. Here, we report the compartmentalization of Ebola and Marburg viral proteins within lipid rafts during viral assembly and budding. Filoviruses released from infected cells incorporated raft-associated molecules, ... More
Gbetagamma activation of Src induces caveolae-mediated endocytosis in endothelial cells.
Authors:Shajahan AN, Tiruppathi C, Smrcka AV, Malik AB, Minshall RD,
Journal:J Biol Chem
PubMed ID:15345719
'Caveolae-mediated endocytosis in endothelial cells is stimulated by the binding of albumin to gp60, a specific albumin-binding protein localized in caveolae. The activation of gp60 induces its cell surface clustering and association with caveolin-1, the caveolar-scaffolding protein. This interaction leads to G(i)-induced Src kinase activation, which in turn signals dynamin-2-mediated ... More
Identification and characterization of small molecules that inhibit intracellular toxin transport.
Authors:Saenz JB, Doggett TA, Haslam DB
Journal:Infect Immun
PubMed ID:17576758
'Shiga toxin (Stx), cholera toxin (Ctx), and the plant toxin ricin are among several toxins that reach their intracellular destinations via a complex route. Following endocytosis, these toxins travel in a retrograde direction through the endosomal system to the trans-Golgi network, Golgi apparatus, and endoplasmic reticulum (ER). There the toxins ... More