CAS 1951439-51-2

C17H27NO5

Other Click Chemistry Reagents

About This Compound

This category encompasses diverse reagents used across various click chemistry reactions, including activated esters, Michael acceptors, epoxides, and multi-functional building blocks. These compounds participate in thiol-ene reactions, Michael additions, ring-opening reactions, and other modular coupling strategies that meet the criteria of click chemistry — high yield, wide scope, simple conditions, and easy purification.

Molecular FormulaC17H27NO5 Molecular Weight325.405 g/mol InChIKeyPEXDOIHAKXYTET-XYPWUTKMSA-N CAS Registry1951439-51-2 Literature Refs3 references

Synthesis Routes

Showing 3 of 3 available routes, sorted by yield.

Route 1

1 step Yield: 98%
2-(2-(2-aminoethoxy)ethoxy)ethan-1-ol
CAS 6338-55-2
C6H15NO3
+
(1R,8S,9s)-bicyclo[6.1.0]non-4-yn-9-ylmethyl N-succinimidyl carbonate
CAS 1426827-79-3
C15H17NO5
C17H27NO5
Conditions With triethylamine In dichloromethane at 0℃; for 1h; Inert atmosphere;
Reference Current Patent Assignee: STELLA PHARMA - US2025/325670, 2025, A1 Location in patent: Paragraph 0096-0097
Source Reaxys

Route 2

1 step Yield: 22%
C17H27NO5
C17H27NO5
+
p-toluenesulfonyl chloride
CAS 98-59-9
C7H7ClO2S
C17H27NO5
Conditions With triethylamine In dichloromethane at 0℃; for 3h; Inert atmosphere;
Reference Current Patent Assignee: STELLA PHARMA - US2025/325670, 2025, A1 Location in patent: Paragraph 0096; 0098-0099
Source Reaxys

Route 3

2 steps Yield: —
C17H27NO5
C17H27NO5
C17H27NO5
Conditions Multi-step reaction with 2 steps 1: triethylamine / dichloromethane / 3 h / 0 °C / Inert atmosphere
Reference Current Patent Assignee: STELLA PHARMA - US2025/325670, 2025, A1
Source Reaxys

Related Compounds

Other Other Click Chemistry Reagents in our catalog:

Frequently Asked Questions

What defines a reaction as "click chemistry"?

According to Sharpless (2001), click reactions must be modular, wide in scope, high-yielding, generate only inoffensive byproducts, be stereospecific, and use readily available starting materials. They should proceed under simple conditions (ideally insensitive to oxygen and water), use benign solvents, and products should be easy to isolate without chromatography.

How do I choose the right click reaction for my application?

For in vitro bioconjugation: CuAAC is the gold standard. For live-cell work: use SPAAC or IEDDA (copper-free). For protein labeling: SuFEx or Staudinger ligation. For polymer chemistry: thiol-ene or thiol-Michael. For prodrug activation: click-to-release (IEDDA-based elimination). Consider reaction speed, biocompatibility, and orthogonality requirements.

Can click reactions be performed in aqueous media?

Most click reactions are compatible with aqueous conditions. CuAAC works in water/t-BuOH mixtures. SPAAC and IEDDA proceed rapidly in pure aqueous buffer. Thiol-ene reactions can be performed in water with water-soluble photoinitiators. SuFEx reactions work in organic/aqueous biphasic systems. This aqueous compatibility is one of the key advantages of click chemistry for biological applications.

How do I confirm click reaction completeness?

For CuAAC/SPAAC: disappearance of the azide stretch at ~2100 cm⁻¹ in IR spectroscopy. For IEDDA: loss of the tetrazine UV-Vis absorption (pink color fades). General methods: TLC, HPLC, ¹H NMR (triazole peak), and mass spectrometry. For bioconjugation: SDS-PAGE with fluorescent readout or western blot.

What is the typical shelf life of click chemistry reagents?

Azides: 6–12 months at −20 °C (avoid light). Terminal alkynes: 12+ months at −20 °C. Cyclooctynes (DIBO, DBCO, BCN): 6–12 months at −20 °C (light-sensitive). Tetrazines: 6–12 months at −20 °C (light and moisture sensitive). TCO derivatives: 3–6 months at −20 °C (isomerization-prone). Sulfonyl fluorides: 12+ months at room temperature.

Last updated: July 27, 2026