945212-26-0
Chemical Structure
Fmoc-(R)-2-(7-octenyl)Ala-OH
- CAS No.: 945212-26-0
- Formula:C26H31NO4
- Molecular Weight:421.53
IUPAC Name: (R)-2-((((9H-fluoren-9-yl)methoxy)carbonyl)amino)-2-methyldec-9-enoic acid
InChIKey: MADFVGMQNXRFAF-AREMUKBSSA-N
SMILES: C=CCCCCCC[C@@](C(O)=O)(C)NC(OCC1C2=CC=CC=C2C3=CC=CC=C31)=O
Biological Activity:
Fmoc-(R)-2-(7-octenyl) Ala-OH is an unnatural Fmoc-protected amino acid and modification module. Fmoc-(R)-2-(7-octenyl) Ala-OH serves as a key building block for all-hydrocarbon cross-linking modification of antimicrobial peptides, and facilitates the generation of stapled peptide derivatives. When introduced into specific sites of the parent peptide, Fmoc-(R)-2-(7-octenyl) Ala-OH effectively increases the α-helix content of the peptide chain, thereby significantly enhancing its antimicrobial activity and proteolytic stability. Fmoc-(R)-2-(7-octenyl) Ala-OH is widely used in research on bacterial infections and the development of related antimicrobial agents[1][2]. Stapled peptide is a specially chemically modified polypeptide. It locks the peptide chain into a stable α-helical structure by introducing a "staple"-like chemical bridge (usually an all-carbon backbone) at specific positions of the peptide chain.
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Fmoc-(R)-2-(7-octenyl)Ala-OH | 99.43% | Fmoc-(R)-2-(7-octenyl) Ala-OH is an unnatural Fmoc-protected amino acid and modification module. Fmoc-(R)-2-(7-octenyl) Ala-OH serves as a key building block for all-hydrocarbon cross-linking modification of antimicrobial peptides, and facilitates the generation of stapled peptide derivatives. When introduced into specific sites of the parent peptide, Fmoc-(R)-2-(7-octenyl) Ala-OH effectively increases the α-helix content of the peptide chain, thereby significantly enhancing its antimicrobial activity and proteolytic stability. Fmoc-(R)-2-(7-octenyl) Ala-OH is widely used in research on bacterial infections and the development of related antimicrobial agents. Stapled peptide is a specially chemically modified polypeptide. It locks the peptide chain into a stable α-helical structure by introducing a "staple"-like chemical bridge (usually an all-carbon backbone) at specific positions of the peptide chain. |
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- [1]. Wang N, et al. Design, Synthesis, and Antitumor Activities Study of Stapled A4K14-Citropin 1.1 Peptides. Front Chem. 2020;8:616147. Published 2020 Dec 10. [Content Brief]
- [2]. Xue J, et al. All-hydrocarbon stapling enables improvement of antimicrobial activity and proteolytic stability of peptide Figainin 2. J Pept Sci. 2024;30(6):e3566. [Content Brief]
Keywords