Z-D-Trp-OH

98%

  • Product Code: 105654
  Alias:    N-CBZ-D-Tryptophan ; N(α)-Benzyloxycarbonyl-D-Tryptophan
  CAS:    2279-15-4
Molecular Weight: 338.36 g./mol Molecular Formula: C₁₉H₁₈N₂O₄
EC Number: MDL Number: MFCD00037945
Melting Point: 122-124°C Boiling Point:
Density: Storage Condition: room temperature
Product Description: Z-D-Trp-OH is primarily utilized in peptide synthesis, where it serves as a building block for creating specific peptide sequences. Its chiral nature makes it valuable in the development of enantiomerically pure compounds, which are crucial in pharmaceutical research and drug development. This compound is often employed in the study of peptide-based drugs, particularly those targeting neurological disorders, due to its structural similarity to tryptophan, an amino acid involved in neurotransmitter synthesis. Additionally, it is used in the preparation of peptidomimetics, which mimic the structure and function of peptides, aiding in the design of novel therapeutic agents. Its application extends to biochemical research, where it helps in understanding peptide interactions and enzyme mechanisms.
Product Specification:
Test Specification
Melting Point 121-125
Purity (HPLC) 98-100
Purity (Neutralization Titration) 97.5-102.5
Specific Rotation [A]20/D(C=1,MEOH) 8-13
Sizes / Availability / Pricing:
Size (g) Availability Price Quantity
5.000 10-20 days $13.56
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25.000 10-20 days $56.05
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100.000 10-20 days $198.44
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Z-D-Trp-OH
Z-D-Trp-OH is primarily utilized in peptide synthesis, where it serves as a building block for creating specific peptide sequences. Its chiral nature makes it valuable in the development of enantiomerically pure compounds, which are crucial in pharmaceutical research and drug development. This compound is often employed in the study of peptide-based drugs, particularly those targeting neurological disorders, due to its structural similarity to tryptophan, an amino acid involved in neurotransmitter synthesis. Additionally, it is used in the preparation of peptidomimetics, which mimic the structure and function of peptides, aiding in the design of novel therapeutic agents. Its application extends to biochemical research, where it helps in understanding peptide interactions and enzyme mechanisms.
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