MethADP

≥98%

  • Product Code: 66466
  CAS:    3768-14-7
Molecular Weight: 425.23 g./mol Molecular Formula: C₁₁H₁₇N₅O₉P₂
EC Number: MDL Number: MFCD00042991
Melting Point: Boiling Point:
Density: Storage Condition: -20°C, dry, sealed
Product Description: MethADP is primarily used in biochemical research to study the mechanisms of enzymes involved in nucleotide metabolism, particularly those related to ADP and ATP. It serves as a stable analog of ADP, allowing researchers to investigate the binding and catalytic processes of kinases, phosphatases, and other enzymes that interact with ADP. This compound is also valuable in understanding the regulation of cellular energy processes and signaling pathways. Additionally, MethADP is utilized in the development of inhibitors or modulators for therapeutic targets in diseases where nucleotide metabolism is disrupted, such as cancer or metabolic disorders. Its application extends to structural biology, where it aids in elucidating the three-dimensional structures of proteins complexed with nucleotide analogs.
Product Specification:
Test Specification
APPEARANCE White to Off-white Powder
PURITY 97.5-100
Solubility Turbidity 10 mgmL H2O Clear Colorless
Infrared spectrum Conforms to Structure
NMR Conforms to Structure
Sizes / Availability / Pricing:
Size (g) Availability Price Quantity
0.005 10-20 days $892.70
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MethADP
MethADP is primarily used in biochemical research to study the mechanisms of enzymes involved in nucleotide metabolism, particularly those related to ADP and ATP. It serves as a stable analog of ADP, allowing researchers to investigate the binding and catalytic processes of kinases, phosphatases, and other enzymes that interact with ADP. This compound is also valuable in understanding the regulation of cellular energy processes and signaling pathways. Additionally, MethADP is utilized in the development of inhibitors or modulators for therapeutic targets in diseases where nucleotide metabolism is disrupted, such as cancer or metabolic disorders. Its application extends to structural biology, where it aids in elucidating the three-dimensional structures of proteins complexed with nucleotide analogs.
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