CNDP2 Protein, Mouse (HEK293, His)
Based on 1 Customer Validation
CNDP2 Protein, an enzyme, plays a vital role in the metabolism of carnosine and homocarnosine. Dysregulation of CNDP2 Protein has been linked to diabetic nephropathy and neurodegenerative disorders. Targeting CNDP2 Protein may offer potential therapeutic strategies by regulating carnosine metabolism, improving renal function, and potentially treating these conditions. CNDP2 Protein, Mouse (HEK293, His) is the recombinant mouse-derived CNDP2 protein, expressed by HEK293 , with C-6*His labeled tag.
- Species: Mouse
- Source: HEK293
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Storage:Stored at -80°C for 1 year from date of receipt. It is stable at -20°C for 3 months after opening. It is recommended to freeze aliquots at -80°C for extended storage. Avoid repeated freeze-thaw cycles.
Biological Activity
Description
CNDP2 Protein, an enzyme, plays a vital role in the metabolism of carnosine and homocarnosine. Dysregulation of CNDP2 Protein has been linked to diabetic nephropathy and neurodegenerative disorders. Targeting CNDP2 Protein may offer potential therapeutic strategies by regulating carnosine metabolism, improving renal function, and potentially treating these conditions. CNDP2 Protein, Mouse (HEK293, His) is the recombinant mouse-derived CNDP2 protein, expressed by HEK293 , with C-6*His labeled tag.
Background
The CNDP2 protein exhibits a unique function in catalyzing the hydrolysis of peptide bonds in dipeptides, particularly threonyl dipeptides. It plays a tissue-specific role in the catabolism of threonyl dipeptides. Additionally, CNDP2 protein displays significant dipeptidase activity towards cysteinylglycine, which is an intermediate metabolite in glutathione metabolism. It is also involved in the metabolism of N-lactoyl-amino acids, both by hydrolyzing them to form lactic acid and amino acids, as well as through reverse proteolysis to generate these compounds. Furthermore, CNDP2 protein contributes to the regulation of cell cycle arrest and apoptosis.
Verified Bioactivity
The enzyme activity of this recombinant protein is testing in progress, we cannot offer a guarantee yet.
Technical Parameters
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Species Mouse
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Source HEK293
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Tag C-6*His
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Accession
Q9D1A2 (M1-N475)
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Molecular Construction
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N-term
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CNDP2 (M1-N475)
Accession # Q9D1A2 -
6*His
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C-term
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Protein Length
Full Length
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Synonyms
CNDP2; Glutamate Carboxypeptidase-Like Protein 1; Prev. PEPA; Carnosine Dipeptidase II; CPGL; CNDP Dipeptidase 2; CN2; Carnosinase-2; Cytosolic Non-Specific Dipeptidase; FLJ10830; Threonyl Dipeptidase; HEL-S-13; Peptidase A; Epididymis Secretory Protein L
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AA Sequence
MSALKAVFQYIDENQDRYVKKLAEWVAIQSVSAWPEKRGEIRRMMEVAAADVQRLGGSVELVDIGKQKLPDGSEIPLPPILLGKLGSDPQKKTVCIYGHLDVQPAALEDGWDSEPFTLVEREGKLYGRGSTDDKGPVAGWMNALEAYQKTGQEIPVNLRFCLEGMEESGSEGLDELIFAQKDKFFKDVDYVCISDNYWLGKNKPCITYGLRGICYFFIEVECSDKDLHSGVYGGSVHEAMTDLISLMGCLVDKKGKILIPGINDAVAPVTDEEHALYDHIDFDMEEFAKDVGAETLLHSCKKDILMHRWRYPSLSLHGIEGAFSGSGAKTVIPRKVVGKFSIRLVPDMIPEVVSEQVSSYLSKKFAELQSPNKFKVYMGHGGKPWVSDFNHPHYQAGRRALKTVFGVEPDLTREGGSIPVTLTFQEATGKNVMLLPVGSADDGAHSQNEKLNRLNYIEGTKMLAAYLYEVSQLKN
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Predicted Molecular Mass
53.8 kDa
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Molecular Weight
Approximately 56-60 kDa, based on SDS-PAGE under reducing conditions.
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Purity
≥ 95%, as determined by reducing SDS-PAGE.
Product Properties
Solution
Supplied as a 0.22 μm filtered solution of 20 mM Tris-HCl, 150 mM NaCl, 10% glycerol, pH 8.0.
Note: For SPR assay, please replace the buffer. Primary amine components (e.g., Tris, imidazole) can affect protein-coupled chips.
<1 EU/μg, determined by LAL method.
Stored at -80°C for 1 year from date of receipt. It is stable at -20°C for 3 months after opening. It is recommended to freeze aliquots at -80°C for extended storage. Avoid repeated freeze-thaw cycles.
Shipping with dry ice.
Documentation
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Data Sheet (262 KB)
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SDS (252 KB)
- English - EN (252 KB)
- Français - FR (252 KB)
- Deutsch - DE (252 KB)
- Norwegian - NO (252 KB)
- Español - ES (252 KB)
- Swedish - SV (252 KB)
- Italian - IT (252 KB)
- Korean - KR (252 KB)
- Portuguese - PT (252 KB)
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Handling Instructions (2659 KB)
Calculators
Concentration (start) × Volume (start) = Concentration (final) × Volume (final)