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Catalog Number:
02769
Nα-Boc-Nε-2-chloro-Z-L-lysine Merrifield resin (0.8 - 1.2 meq/g, 100 - 200 mesh)
Synonym(s):
Boc-L-Lys(2-Cl-Z)-Merrifield resin
Documents
$18.53 /1G
Pack Size Availability Price
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Product Information

Na-Boc-Ne-2-chloro-Z-L-lysine Merrifield is a versatile amino acid derivative widely utilized in peptide synthesis and pharmaceutical research. This compound features a Boc (tert-butyloxycarbonyl) protecting group, which enhances its stability and reactivity, making it an ideal choice for solid-phase peptide synthesis. Its unique structure allows for selective reactions, facilitating the incorporation of lysine into peptides with precision. Researchers appreciate its role in developing bioactive peptides and therapeutic agents, particularly in the fields of drug discovery and development.

The compound's ability to undergo various coupling reactions while maintaining its integrity makes it a valuable asset in the synthesis of complex peptide sequences. Additionally, its compatibility with different coupling reagents and resins streamlines the synthesis process, reducing time and increasing yield. Na-Boc-Ne-2-chloro-Z-L-lysine Merrifield stands out for its efficiency in producing high-purity peptides, essential for both academic research and industrial applications.

Synonyms
Boc-L-Lys(2-Cl-Z)-Merrifield resin
MDL Number
MFCD00801203
Appearance
White beads
Substitution
0.8 - 1.2 meq/g
Mesh Size
100 - 200 mesh
Conditions
Store at 0-8 °C
%DVB
1% DVB
General Information
Synonyms
Boc-L-Lys(2-Cl-Z)-Merrifield resin
MDL Number
MFCD00801203
Appearance
White beads
Substitution
0.8 - 1.2 meq/g
Mesh Size
100 - 200 mesh
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

Na-Boc-Ne-2-chloro-Z-L-lysine Merrifield is widely utilized in research focused on:

  • Peptide Synthesis: This compound serves as a key building block in the synthesis of peptides, allowing researchers to create complex structures for various biological studies.
  • Drug Development: It plays a crucial role in the development of new pharmaceuticals, particularly in designing compounds that can interact effectively with biological targets.
  • Bioconjugation: The chemical is used in bioconjugation processes, where it helps link biomolecules to therapeutic agents, enhancing the efficacy of drugs.
  • Protein Engineering: Researchers utilize it to modify proteins, which can lead to the development of novel enzymes or therapeutic proteins with improved properties.
  • Research in Cancer Therapeutics: Its application in cancer research is significant, as it aids in creating targeted therapies that can selectively attack cancer cells while minimizing damage to healthy tissues.

Citations