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BRAND / VENDOR: Abcam

Abcam, ab184377, Anti-Neurofascin antibody [EPR19003]

CATALOG NUMBER: ab184377
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Product Description

Size: 100µL / 1mL
Rabbit Recombinant Monoclonal NFASC antibody. Suitable for WB, IHC-P and reacts with Mouse, Rat, Human samples. Cited in 3 publications.
Key facts
Host species:Rabbit,
Clonality:Monoclonal,
Clone number:EPR19003,
Isotype:IgG,
Carrier free:No,
Reacts with:Mouse, Rat, Human,
Applications:IHC-P, WBSee reactivity dataSee the reactivity data table below for information on validated species and application combinations.,
Immunogen:The exact immunogen used to generate this antibody is proprietary information.,
Specificity:IHC is recommended for mouse and rat only.

Product details:
Patented technology
Our RabMAb
technology is a patented hybridoma-based technology for making rabbit monoclonal antibodies. For details on our patents, please refer to
RabMAb® patents
What are the advantages of a recombinant monoclonal antibody?
This product is a recombinant monoclonal antibody, which offers several advantages including:
- High batch-to-batch consistency and reproducibility
- Improved sensitivity and specificity
- Long-term security of supply
- Animal-free batch production
For more information, read more on
recombinant antibodies

Properties and Storage Information:
Form-Liquid, Purification technique-Affinity purification Protein A, Storage buffer-pH: 7.2Preservative: 0.01% Sodium azideConstituents: PBS, 40% Glycerol (glycerin, glycerine), 0.05% BSA, Shipped at conditions-Blue Ice, Appropriate short-term storage duration-1-2 weeks, Appropriate short-term storage conditions-+4°C, Appropriate long-term storage conditions--20°C, Aliquoting information-Upon delivery aliquot, Storage information-Avoid freeze / thaw cycle

Supplementary Information:
This supplementary information is collated from multiple sources and compiled automatically.
Neurofascin also known as NFASC is a cell adhesion molecule with significant roles in the nervous system. It has various isoforms with Neurofascin-186 and Neurofascin-155 being the most studied. The molecular mass of Neurofascin is approximately 135 kDa. This protein is expressed in the nervous system particularly at nodes of Ranvier and paranodal regions as well as in the initial segment of axons. Neurofascin contributes to organizing and maintaining the axonal domains essential for neural signal transmission.
Biological function summary
This neural protein plays an integral role in developing and securing the nervous system's structural organization. Neurofascin helps form the nodes of Ranvier which are critical for saltatory conduction enhancing rapid and efficient nerve impulse transmission. It also interacts with other proteins such as Ankyrin G and Contactin to maintain the stability and function of neuronal domains. Through these interactions Neurofascin facilitates the proper conduction and coordination of electrical signals along neurons.
Pathways
Neurofascin is essential for neural signal transmission and maintenance pathways. It prominently participates in the axon guidance and myelination pathways working alongside proteins like Caspr (Contactin-associated protein) and Ankyrin B. These pathways ensure the growth and maintenance of myelin sheaths supporting nerve insulation and efficient signal relay. Neurofascin's interaction with these proteins reinforces the nodes of Ranvier's organization promoting stable and rapid signal conduction in the peripheral and central nervous systems.
Research links Neurofascin with autoimmune neuropathies like Guillain-Barré syndrome and multiple sclerosis. These conditions involve the immune-mediated destruction of myelin leading to severe motor and sensory deficits. Neurofascin acts as a target in some autoimmune responses where antibodies may mistakenly attack the protein disrupting neural conduction. Connections between Neurofascin and other proteins like Contactin and Ankyrin G highlight the complex interactions that can lead to pathological states when disrupted. Developing therapies targeting Neurofascin-related pathways holds potential for mitigating these disorders' impacts on neuronal functions.


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Collaboration

Tony Tang

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