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Netrin-G1a Antibody [Unconjugated]

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Transient expression of Cyp26b1 in the PFC does not occur in the absence of thalamus–cortex interactions in Gbx2 mutant mice. A–F, Thalamus–PFC disconnection in Gbx2 mutant mice. A, B, Immunostaining for NetrinG1 ...read more
Normal induction of Cyp26b1 in PFC in mice expressing tetanus toxin light chain in thalamocortical axons. A–D, Immunostaining for VAMP2 on frontal sections of somatosensory cortex at E16.5 control (A, B) and mutant ...read more
Transient expression of Cyp26b1 in the PFC does not occur in the absence of thalamus–cortex interactions in Gbx2 mutant mice. A–F, Thalamus–PFC disconnection in Gbx2 mutant mice. A, B, Immunostaining for NetrinG1 ...read more
Transient expression of Cyp26b1 in the PFC does not occur in the absence of thalamus–cortex interactions in Gbx2 mutant mice. A–F, Thalamus–PFC disconnection in Gbx2 mutant mice. A, B, Immunostaining for NetrinG1 ...read more

Product Details

Summary
Reactivity MuSpecies Glossary
Applications WB
Clonality
Polyclonal
Host
Goat
Conjugate
Unconjugated
Concentration
LYOPH

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Catalog# & Formulation Size Price
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Netrin-G1a Antibody [Unconjugated] Summary

Immunogen
S. frugiperda insect ovarian cell line Sf 21-derived recombinant mouse Netrin-G1a
His29-Gly513
Accession # Q8R4G0.2
Specificity
Detects mouse Netrin-G1a in direct ELISAs and Western blots. 
Source
N/A
Isotype
IgG
Clonality
Polyclonal
Host
Goat
Gene
Ntng1
Purity Statement
Antigen Affinity-purified
Innovator's Reward
Test in a species/application not listed above to receive a full credit towards a future purchase.

Applications/Dilutions

Dilutions
  • Western Blot 0.1 ug/mL
Publications
Read Publications using
AF1166 in the following applications:

  • ICC
    1 publication
  • IHC
    4 publications

Packaging, Storage & Formulations

Storage
Use a manual defrost freezer and avoid repeated freeze-thaw cycles.
  • 12 months from date of receipt, -20 to -70 °C as supplied.
  • 1 month, 2 to 8 °C under sterile conditions after reconstitution.
  • 6 months, -20 to -70 °C under sterile conditions after reconstitution.
Buffer
Lyophilized from a 0.2 μm filtered solution in PBS with Trehalose. *Small pack size (SP) is supplied either lyophilized or as a 0.2 µm filtered solution in PBS.
Preservative
No Preservative
Concentration
LYOPH
Reconstitution Instructions
Reconstitute at 0.2 mg/mL in sterile PBS.

Notes

This product or the use of this product is covered by U.S. Patents owned by The Regents of the University of California. This product is for research use only and is not to be used for commercial purposes. Use of this product to produce products for sale or for diagnostic, therapeutic or drug discovery purposes is prohibited. In order to obtain a license to use this product for such purposes, contact The Regents of the University of California.

U.S. Patent # 5,565,331, 6,096,866, 6,017,714, 6,309,638, 6,670,451, and other U.S. and international patents pending.



This product is produced by and ships from R&D Systems, Inc., a Bio-Techne brand.

Alternate Names for Netrin-G1a Antibody [Unconjugated]

  • Lmnt1
  • NetrinG1a
  • Netrin-G1a
  • NTG1
  • NTNG1

Background

Netrins/UNC-6 (netr: Sanskrit for “one who guides”) are a family of laminin-related small proteins that are involved in neurite outgrowth and axon guidance. Netrins bind to the DCC and UNC5 family of receptors to attract or repel axons. Mouse Netrin-G1a is synthesized as a 539 amino acid (aa) precursor with an 18 aa signal sequence, a 399 aa laminin-related region containing an N-terminal laminin globular domain (domain VI) followed by 3 laminin EGF-like repeats, and a 122 aa C domain with a hydrophobic signal for glycosyl phosphatidylinositol (GPI) lipid linkage. Unlike classical Netrins which have a C domain rich in basic aa residues that serves as a heparin binding site, Netrin-G1a is predominantly anchored on the cell surface via GPI linkages. By alternative splicing, at least six isoforms for Netrin-G1 have been identified. All G1a variants (G1b through G1f) are shorter than G1a and lack one or more of the EGF-like domains. Mouse Netrin-G1a shares 27%, 26%, and 31% aa sequence identity with mouse Netrins-1, 3 and 4, respectively. It also shares 60% aa identity with another GPI-anchored mouse Netrin-G2a. Although a human homolog of mouse Netrin-G1a has not been reported, a human G1f that shares 97% aa sequence identity with mouse G1f has been cloned. Netrin-G1 has widespread expression, occurring in olfactory mitral cells, cells of the inferior colliculus (hearing), dorsal thalamus (behavior), and cells of the deep cerebellar nuclei and inferior olive (motion). The G-type Netrins are found only in vertebrates and are suggested to play a role in forming circuits associated with motor activity. Conditioned media containing myc-tagged Netrin-G1a proteins did not bind to cells transiently transfected with the Netrin receptors DCC, UNC5H1, UNC5H2, or UNC5H3 (1‑4).

  1. McFarlane, S. (2000) Biochem. Cell. Biol. 78:563.
  2. Yu, T.W. and C.I. Bargmann (2001) Nature Neurosci. 4(Suppl):1169.
  3. Nakashiba, T. et al. (2002) Mech. Dev. 111:47.
  4. Nakashiba, T. et al. (2000) J. Neurosci. 20:6540.

Limitations

This product is for research use only and is not approved for use in humans or in clinical diagnosis. Primary Antibodies are guaranteed for 1 year from date of receipt.

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Publications for Netrin-G1a Antibody (AF1166)(7)

We have publications tested in 2 confirmed species: Mouse, Xenograft.

We have publications tested in 2 applications: ICC, IHC.


Filter By Application
ICC
(1)
IHC
(4)
All Applications
Filter By Species
Mouse
(4)
Xenograft
(1)
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Showing Publications 1 - 7 of 7.
Publications using AF1166 Applications Species
Sinclair-Wilson, A;Lawrence, A;Ferezou, I;Cartonnet, H;Mailhes, C;Garel, S;Lokmane, L; Plasticity of thalamocortical axons is regulated by serotonin levels modulated by preterm birth Proceedings of the National Academy of Sciences of the United States of America 2023-08-15 [PMID: 37549297] (IHC, Mouse) IHC Mouse
O Revah, F Gore, KW Kelley, J Andersen, N Sakai, X Chen, MY Li, F Birey, X Yang, NL Saw, SW Baker, ND Amin, S Kulkarni, R Mudipalli, B Cui, S Nishino, GA Grant, JK Knowles, M Shamloo, JR Huguenard, K Deisseroth, SP Pa?ca Maturation and circuit integration of transplanted human cortical organoids Nature, 2022-10-12;610(7931):319-326. 2022-10-12 [PMID: 36224417] (ICC, Xenograft) ICC Xenograft
Jessica G. Cunningham, James D. Scripter, Stephany A. Nti, Eric S. Tucker Early construction of the thalamocortical axon pathway requires c‐Jun N‐terminal kinase signaling within the ventral forebrain Developmental Dynamics 2022-03-01 [PMID: 34494344]
HE Vuong, GN Pronovost, DW Williams, EJL Coley, EL Siegler, A Qiu, M Kazantsev, CJ Wilson, T Rendon, EY Hsiao The maternal microbiome modulates fetal neurodevelopment in mice Nature, 2020-09-23;0(0):. 2020-09-23 [PMID: 32968276] (IHC, Mouse) IHC Mouse
Rachel Larsen, Alatheia Proue, Earl Parker Scott, Matthew Christiansen, Yasushi Nakagawa The Thalamus Regulates Retinoic Acid Signaling and Development of Parvalbumin Interneurons in Postnatal Mouse Prefrontal Cortex eNeuro 2019-02-25 [PMID: 30868103]
NOVA2-mediated RNA regulation is required for axonal pathfinding during development Elife, 2016-05-25;5(0):. 2016-05-25 [PMID: 27223325] (IHC, Mouse) IHC Mouse
Vue T, Lee M, Tan Y, Werkhoven Z, Wang L, Nakagawa Y Thalamic control of neocortical area formation in mice. J Neurosci, 2013-05-08;33(19):8442-53. 2013-05-08 [PMID: 23658181] (IHC, Mouse) IHC Mouse

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Bioinformatics

Gene Symbol Ntng1
Uniprot