LDCC Protein, E.coli (His)
Based on 1 Customer Validation
LDCC protein is also called lysine decarboxylase. As an enzyme that can catalyze the decarboxylation of lysine, it plays a key role in the utilization of lysine. This enzymatic activity enables LDCC to remove carboxyl groups from lysine, thereby generating cadaverine, a biogenic amine. LDCC Protein, E.coli (His) is the recombinant E. coli-derived LDCC protein, expressed by E. coli , with C-6*His labeled tag.
- Species: E.coli
- 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
LDCC protein is also called lysine decarboxylase. As an enzyme that can catalyze the decarboxylation of lysine, it plays a key role in the utilization of lysine. This enzymatic activity enables LDCC to remove carboxyl groups from lysine, thereby generating cadaverine, a biogenic amine. LDCC Protein, E.coli (His) is the recombinant E. coli-derived LDCC protein, expressed by E. coli , with C-6*His labeled tag.
LDCC protein, also known as lysine decarboxylase, plays a critical role in the utilization of lysine by acting as an enzyme capable of catalyzing the decarboxylation of lysine. This enzymatic activity allows LDCC to remove a carboxyl group from lysine, consequently generating cadaverine, a biogenic amine. Cadaverine is involved in various biological processes and has been implicated in the modulation of cell growth, differentiation, and immune responses. LDCC's function as a lysine decarboxylase is crucial for the efficient utilization of lysine in cellular metabolism, and further research is needed to fully understand its regulatory mechanisms and potential applications in various biological contexts.
Measured by its binding ability in a functional ELISA. Immobilized ldcC at 2 μg/mL can bind human ycbX, the EC50 of human ycbX protein is ≤90 μg/mL.
Technical Parameters
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Species E.coli
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Source E. coli
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Tag C-6*His
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Accession
P52095 (M1-G713)
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Gene ID66671526 [NCBI]
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Molecular Construction
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N-term
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LDCC (M1-G713)
Accession # P52095 -
6*His
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C-term
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Protein Length
Full Length
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Synonyms
ECK0185; JW0181; ldc; LDC2; ldcH; lysine decarboxylase 2, constitutive
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AA Sequence
MNIIAIMGPHGVFYKDEPIKELESALVAQGFQIIWPQNSVDLLKFIEHNPRICGVIFDWDEYSLDLCSDINQLNEYLPLYAFINTHSTMDVSVQDMRMALWFFEYALGQAEDIAIRMRQYTDEYLDNITPPFTKALFTYVKERKYTFCTPGHMGGTAYQKSPVGCLFYDFFGGNTLKADVSISVTELGSLLDHTGPHLEAEEYIARTFGAEQSYIVTNGTSTSNKIVGMYAAPSGSTLLIDRNCHKSLAHLLMMNDVVPVWLKPTRNALGILGGIPRREFTRDSIEEKVAATTQAQWPVHAVITNSTYDGLLYNTDWIKQTLDVPSIHFDSAWVPYTHFHPIYQGKSGMSGERVAGKVIFETQSTHKMLAALSQASLIHIKGEYDEEAFNEAFMMHTTTSPSYPIVASVETAAAMLRGNPGKRLINRSVERALHFRKEVQRLREESDGWFFDIWQPPQVDEAECWPVAPGEQWHGFNDADADHMFLDPVKVTILTPGMDEQGNMSEEGIPAALVAKFLDERGIVVEKTGPYNLLFLFSIGIDKTKAMGLLRGLTEFKRSYDLNLRIKNMLPDLYAEDPDFYRNMRIQDLAQGIHKLIRKHDLPGLMLRAFDTLPEMIMTPHQAWQRQIKGEVETIALEQLVGRVSANMILPYPPGVPLLMPGEMLTKESRTVLDFLLMLCSVGQHYPGFETDIHGAKQDEDGVYRVRVLKMAG
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Predicted Molecular Mass
81.8 kDa
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Molecular Weight
Approximately 85 kDa, based on SDS-PAGE under reducing conditions.
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Purity
≥ 90%, as determined by reducing SDS-PAGE.
Product Properties
Lyophilized powder.
Lyophilized from a 0.22 μm filtered solution of 20 mM Tris-HCl, 0.5 M NaCl, 6% trehalose, pH 8.0.
<1 EU/μg, determined by LAL method.
It is not recommended to reconstitute to a concentration less than 100 μg/mL in ddH2O.
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 (239 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)
Calculators
Concentration (start) × Volume (start) = Concentration (final) × Volume (final)