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Catalog Number:
01701
Fmoc-S-trityl-L-cysteine 4-alkoxybenzyl alcohol resin
Synonym(s):
Fmoc-L-Cys(Trt)-Wang resin
Documents
$29.34 /1G
Pack Size Availability Price
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Product Information

Fmoc-S-trityl-L-cysteine 4-alkoxybenzyl alcohol is a versatile compound widely utilized in peptide synthesis and drug development. This compound features a unique combination of protective groups that enhance its stability and reactivity, making it an ideal choice for researchers focused on synthesizing complex peptides. Its structure allows for selective deprotection, facilitating the incorporation of cysteine residues into peptides, which is crucial for the formation of disulfide bonds in biologically active molecules.

In addition to its applications in peptide synthesis, Fmoc-S-trityl-L-cysteine 4-alkoxybenzyl alcohol is also valuable in the development of novel therapeutics and bioconjugates. Its ability to serve as a building block in the creation of targeted drug delivery systems and its compatibility with various coupling reactions make it a preferred choice among professionals in medicinal chemistry and biochemistry. Researchers can leverage its unique properties to streamline their synthesis processes, ultimately leading to more efficient and effective drug development.

Synonyms
Fmoc-L-Cys(Trt)-Wang resin
MDL Number
MFCD00801374
Appearance
Pale to yellow beads
Substitution
0.3 - 0.8 mmol/g
Mesh Size
100 - 200
Conditions
Store at 0 - 8 °C
%DVB
1% DVB
General Information
Synonyms
Fmoc-L-Cys(Trt)-Wang resin
MDL Number
MFCD00801374
Appearance
Pale to yellow beads
Substitution
0.3 - 0.8 mmol/g
Mesh Size
100 - 200
Conditions
Store at 0 - 8 °C
%DVB
1% DVB
Properties
Additional property information coming soon!
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Safety and Regulations
Hazmat
No
Antibiotic
No
DEA-regulated
No
Warnings
-
Applications

Fmoc-S-trityl-L-cysteine 4-alkoxybenzyl alcohol is widely utilized in research focused on:

  • Peptide Synthesis: This compound serves as a protecting group in the synthesis of peptides, allowing for selective reactions while maintaining the integrity of the cysteine residue.
  • Drug Development: It plays a crucial role in the design of novel pharmaceuticals, particularly in creating compounds that target specific biological pathways.
  • Bioconjugation: The compound is used to attach biomolecules, such as proteins or nucleic acids, to surfaces or other molecules, enhancing the functionality of diagnostic tools and therapeutic agents.
  • Material Science: In the development of smart materials, it helps in creating polymeric systems that respond to environmental stimuli, which can be beneficial in drug delivery applications.
  • Research in Biochemistry: It aids in studying protein interactions and modifications, providing insights into cellular processes and disease mechanisms.

Citations