DL-2-Aminopimelic Acid

98%

  • Product Code: 95844
  CAS:    627-76-9
Molecular Weight: 175.18 g./mol Molecular Formula: C₇H₁₃NO₄
EC Number: MDL Number: MFCD00053314
Melting Point: Boiling Point:
Density: Storage Condition: room temperature
Product Description: DL-2-Aminopimelic Acid is primarily used in biochemical research as a precursor in the study of bacterial cell wall synthesis. It plays a significant role in understanding the mechanisms of peptidoglycan biosynthesis, which is crucial for bacterial growth and survival. Researchers utilize this compound to investigate the enzymatic pathways involved in the cross-linking of peptidoglycan strands, providing insights into potential targets for antibiotic development. Additionally, it serves as a substrate in enzymatic assays to study the activity of enzymes like L,L-diaminopimelate aminotransferase, which is involved in lysine biosynthesis in bacteria. Its applications extend to the development of novel antimicrobial agents by exploring its role in metabolic pathways unique to bacteria.
Product Specification:
Test Specification
APPEARANCE White to Light yellow to Light orange powder to crystal
PURITY 97.5-100
Infrared spectrum Conforms to Structure
Sizes / Availability / Pricing:
Size (g) Availability Price Quantity
0.100 10-20 days ฿1,150.00
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0.200 10-20 days ฿1,680.00
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DL-2-Aminopimelic Acid
DL-2-Aminopimelic Acid is primarily used in biochemical research as a precursor in the study of bacterial cell wall synthesis. It plays a significant role in understanding the mechanisms of peptidoglycan biosynthesis, which is crucial for bacterial growth and survival. Researchers utilize this compound to investigate the enzymatic pathways involved in the cross-linking of peptidoglycan strands, providing insights into potential targets for antibiotic development. Additionally, it serves as a substrate in enzymatic assays to study the activity of enzymes like L,L-diaminopimelate aminotransferase, which is involved in lysine biosynthesis in bacteria. Its applications extend to the development of novel antimicrobial agents by exploring its role in metabolic pathways unique to bacteria.
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