Fmoc-Tyr(3,5-I2)-OH

98%

  • Product Code: 105000
  Alias:    N-[fluorenylmethoxycarbonyl]-3,5-diiodo-L-tyrosine
  CAS:    103213-31-6
Molecular Weight: 655.22 g./mol Molecular Formula: C₂₄H₁₉I₂NO₅
EC Number: MDL Number: MFCD00063330
Melting Point: Boiling Point:
Density: Storage Condition: 2~8°C
Product Description: Used in peptide synthesis, particularly in solid-phase peptide synthesis (SPPS), to incorporate iodinated tyrosine residues into peptides. The Fmoc group protects the amino group during synthesis, allowing selective deprotection and elongation of the peptide chain. The iodinated tyrosine is valuable in studies involving radioiodination for imaging or therapeutic purposes, such as in positron emission tomography (PET) or targeted radiotherapy. Additionally, it aids in research on protein-protein interactions, enzyme mechanisms, and structural studies due to the heavy iodine atoms, which can enhance X-ray crystallography resolution. Its application is critical in developing peptide-based drugs and biochemical probes.
Product Specification:
Test Specification
Carbon By Elemental Analysis 42.5-44.5
Oxygen By Elemental Analysis 11.5-12.7
Purity (HPLC) 98
Appearance White To Off-White Powder Or Solid Or Chunks
Infrared Spectrometry Conforms To Structure
Proton NMR Spectrum Conforms To Structure
Sizes / Availability / Pricing:
Size (g) Availability Price Quantity
1.000 10-20 days ฿1,500.00
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-
5.000 10-20 days ฿6,680.00
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-
Fmoc-Tyr(3,5-I2)-OH
Used in peptide synthesis, particularly in solid-phase peptide synthesis (SPPS), to incorporate iodinated tyrosine residues into peptides. The Fmoc group protects the amino group during synthesis, allowing selective deprotection and elongation of the peptide chain. The iodinated tyrosine is valuable in studies involving radioiodination for imaging or therapeutic purposes, such as in positron emission tomography (PET) or targeted radiotherapy. Additionally, it aids in research on protein-protein interactions, enzyme mechanisms, and structural studies due to the heavy iodine atoms, which can enhance X-ray crystallography resolution. Its application is critical in developing peptide-based drugs and biochemical probes.
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