Animal-Free GDNF Protein, Mouse (His)
Based on 1 Customer Validation
Glial-cell-line-derived neurotrophic factor (GDNF), a neurotrophic factor belongs to the GDNF family ligands (GFLs)., promotes survival of dopamine neurons. GDNF demonstrates a variety of neuroprotective roles for mammalian neurons. Animal-Free GDNF Protein, Mouse (His), a recombinant animal-free protein, is produced in E.coil with a C-Terminal His-tag. It consists of 134 amino acids (S78-I211).This product is for cell culture use only.
- Species: Mouse
- Source: E. coli
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Storage:Stored at -20°C for 2 years from date of receipt. After reconstitution, it is stable at 4°C for 1 week or -20°C for longer (with carrier protein). It is recommended to freeze aliquots at -20°C or -80°C for extended storage.
Biological Activity
Description
Glial-cell-line-derived neurotrophic factor (GDNF), a neurotrophic factor belongs to the GDNF family ligands (GFLs)., promotes survival of dopamine neurons. GDNF demonstrates a variety of neuroprotective roles for mammalian neurons[1]. Animal-Free GDNF Protein, Mouse (His), a recombinant animal-free protein, is produced in E.coil with a C-Terminal His-tag. It consists of 134 amino acids (S78-I211).This product is for cell culture use only.
Background
Glial cell line-derived neurotrophic factor (GDNF) is a 134 amino acid protein belonging in the GDNF family ligands (GFLs). GDNF protein is widely distributed throughout both the central and peripheral nervous systems. Synthesis and secretion of GDNF occur in many cell types such as glial cells like astrocytes, oligodendrocytes, and Schwann cells; motor neurons (MNs); and skeletal muscle[1].
Mature human GDNF shares 91-92% amino acid sequence identity with mouse, rat, and Canine GDNF proteins. While, mouse GDNF shares 99% aa sequence identity with rat GDNF protein.
GDNF is originally isolated from cultured B49 rat glial cells and found to enhance the survival and differentiation of dopaminergic neurons in primary cultures by promoting dopamine uptake. Similar to other members of the TGF-β superfamily, GDNF is first synthesized as a precursor protein (pro-GDNF). After a series of protein cleavage and processing, the 211 amino acid pro-GDNF is finally converted into the active and mature form of GDNF. GDNF has the ability to trigger receptor tyrosine kinase RET phosphorylation, whose downstream effects have been found to promote neuronal health and survival. The binding of GDNF to its receptors triggers several intracellular signaling pathways which play roles in promoting the development, survival, and maintenance of neuron-neuron and neuron-target tissue interactions. The synthesis and regulation of GDNF have been shown to be altered in many diseases, aging, exercise, and addiction. The neuroprotective effects of GDNF may be used to develop treatments and therapies to ameliorate neurodegenerative diseases such as amyotrophic lateral sclerosis (ALS)[1].
GDNF is a potent neurotrophic factor for regulating MN survival in the peripheral nervous system. GDNF prevents apoptosis of MNs during development in vivo, decreases the loss of MNs in animal models of motor neuropathy and degeneration, rescues MNs from axotomy-induced cell death, and protects MNs from chronic degeneration. Intracerebral GDNF administration exerts both protective and reparative effects on the nigrostriatal dopamine system, which may have implications for the development of new treatment strategies for Parkinson's disease[1][2].
In Vitro
Recombinant rat GDNF (10 ng/mL) maintains proliferation and self-renewal of mouse spermatogonial stem cells[3].
In Vivo
In a mouse Parkinson's disease model, recombinant mouse GDNF (10 μg/2 μL) injected over the substantia nigra or in striatum before MPTP potently protects the dopamine system, as shown by numbers of mesencephalic dopamine nerve cell bodies, dopamine nerve terminal densities and dopamine levels. When GDNF is given after MPTP, dopamine levels and fibre densities are significantly restored[1].
Technical Parameters
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Species Mouse
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Source E. coli
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Tag C-6*His
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Accession
P48540 (S78-I211)
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Molecular Construction
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N-term
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GDNF (S78-I211)
Accession # P48540 -
6*His
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C-term
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Protein Length
Full Length of Mature Protein
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Synonyms
GDNF; ATF2; Glial Cell Derived Neurotrophic Factor; ATF; Astrocyte-Derived Trophic Factor; Glial Cell Line Derived Neurotrophic Factor; Glial Cell Line-Derived Neurotrophic Factor; Glial Derived Neurotrophic Factor; HFB1-GDNF; HSCR3; ATF1; HGDNF
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AA Sequence
SPDKQAAALPRRERNRQAAAASPENSRGKGRRGQRGKNRGCVLTAIHLNVTDLGLGYETKEELIFRYCSGSCESAETMYDKILKNLSRSRRLTSDKVGQACCRPVAFDDDLSFLDDNLVYHILRKHSAKRCGCI
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Predicted Molecular Mass
15.9 kDa
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Molecular Weight
Approximately 17 kDa, based on SDS-PAGE under reducing conditions.
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Purity
≥ 95%, as determined by reducing SDS-PAGE.
Product Properties
Lyophilized powder.
Lyophilized from a 0.22 μm filtered solution of PBS, pH 7.4, trehalose.
<0.1 EU per 1 μg of the protein by the LAL method.
It is recommended to reconstitute to a concentration of 100-200 μg/mL in ddH2O. For long term storage it is recommended to add a carrier protein (0.1% BSA, 5% HSA, 10% FBS or 5% Trehalose).
Stored at -20°C for 2 years from date of receipt. After reconstitution, it is stable at 4°C for 1 week or -20°C for longer (with carrier protein). It is recommended to freeze aliquots at -20°C or -80°C for extended storage.
Room temperature in continental US; may vary elsewhere.
Documentation
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Data Sheet (263 KB)
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SDS (251 KB)
- English - EN (251 KB)
- Français - FR (251 KB)
- Deutsch - DE (251 KB)
- Norwegian - NO (251 KB)
- Español - ES (251 KB)
- Swedish - SV (251 KB)
- Italian - IT (251 KB)
- Korean - KR (251 KB)
- Portuguese - PT (251 KB)
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Handling Instructions (2659 KB)
References
[1]. Alberto F Cintrón-Colón, et al. GDNF synthesis, signaling, and retrograde transport in motor neurons. Cell Tissue Res. 2020 Oct;382(1):47-56. [Content Brief]
[2]. Tomac A, et al. Protection and repair of the nigrostriatal dopaminergic system by GDNF in vivo. Nature.1995;373 (6512): 335-339. [Content Brief]
[3]. Hannu Sariola, et al. GDNF maintains mouse spermatogonial stem cells in vivo and in vitro. Methods Mol Biol. 2008;450:127-35. [Content Brief]
Calculators
Concentration (start) × Volume (start) = Concentration (final) × Volume (final)