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Catalog Number:
14440
CAS Number:
232953-09-2
Fmoc-S-allyloxycarbonylamidomethyl-L-cysteine
Purity:
≥ 98% (HPLC)
Synonym(s):
Fmoc-L-Cys(Allocam)-OH
Documents
$132.80 /100MG
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Product Information

Fmoc-S-allyloxycarbonylamidomethyl-L-cysteine is a versatile amino acid derivative widely utilized in peptide synthesis and drug development. This compound features a unique Fmoc (9-fluorenylmethyloxycarbonyl) protecting group, which facilitates the selective protection of the amino group during the synthesis of complex peptides. Its allyloxycarbonyl moiety enhances its reactivity and compatibility in various coupling reactions, making it an excellent choice for researchers focused on synthesizing bioactive peptides and pharmaceuticals.

The compound's structure allows for easy incorporation into peptide chains, providing researchers with the ability to create tailored peptides for therapeutic applications, including cancer treatment and drug delivery systems. Its stability and reactivity under standard laboratory conditions make it a reliable choice for both academic and industrial applications. With its unique properties, Fmoc-S-allyloxycarbonylamidomethyl-L-cysteine stands out as a valuable tool for chemists and biochemists aiming to innovate in the field of peptide chemistry.

Synonyms
Fmoc-L-Cys(Allocam)-OH
CAS Number
232953-09-2
Purity
≥ 98% (HPLC)
Molecular Formula
C23H24N2O6S
Molecular Weight
456.51
MDL Number
MFCD00273447
PubChem ID
100963998
Appearance
White powder
Optical Rotation
[a]D20 = -32 ± 2 º (C=1 in MeOH)
Conditions
Store at 0 - 8 °C
General Information
Synonyms
Fmoc-L-Cys(Allocam)-OH
CAS Number
232953-09-2
Purity
≥ 98% (HPLC)
Molecular Formula
C23H24N2O6S
Molecular Weight
456.51
MDL Number
MFCD00273447
PubChem ID
100963998
Appearance
White powder
Optical Rotation
[a]D20 = -32 ± 2 º (C=1 in MeOH)
Conditions
Store at 0 - 8 °C
Properties
Additional property information coming soon!
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Safety and Regulations
Hazmat
No
Antibiotic
No
DEA-regulated
No
Warnings
-
Applications

Fmoc-S-allyloxycarbonylamidomethyl-L-cysteine is widely utilized in research focused on:

  • Peptide Synthesis: This compound serves as a key building block in the synthesis of peptides, allowing for the incorporation of specific functionalities that enhance biological activity.
  • Drug Development: It plays a crucial role in the development of novel therapeutics, particularly in designing drugs that target specific proteins or enzymes in disease pathways.
  • Bioconjugation: The compound is used in bioconjugation techniques, enabling the attachment of biomolecules to surfaces or other molecules, which is essential in creating targeted drug delivery systems.
  • Research in Cancer Therapeutics: Its unique structure allows researchers to explore new avenues in cancer treatment by modifying the compound to improve selectivity and efficacy against cancer cells.
  • Protein Engineering: The compound is beneficial in protein engineering applications, where it aids in the design of proteins with enhanced stability and functionality for various industrial and therapeutic uses.

Citations