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4-(4-Acetyl-phenoxy)-butyric acid

  CAS No.: 65623-82-7   Cat No.: BADC-01670 4.5  

4-(4-Acetyl-phenoxy)-butyric acid serves as an ADC linker component providing reactive acetyl groups for stable and efficient antibody conjugation in drug conjugate synthesis.

4-(4-Acetyl-phenoxy)-butyric acid

Structure of 65623-82-7

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Category
ADC Linker
Molecular Formula
C12H14O4
Molecular Weight
222.24

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Synonyms
AcBut; 4-(p-Acetylphenoxy)butyric acid
IUPAC Name
4-(4-acetylphenoxy)butanoic acid
Canonical SMILES
CC(=O)C1=CC=C(C=C1)OCCCC(=O)O
InChI
InChI=1S/C12H14O4/c1-9(13)10-4-6-11(7-5-10)16-8-2-3-12(14)15/h4-7H,2-3,8H2,1H3,(H,14,15)
InChIKey
FNHIEZKOCYDCOH-UHFFFAOYSA-N
Density
1.175±0.06 g/cm3
Appearance
White to Off-white Solid
Signal Word
Warning
Boiling Point
426.7±25.0 °C at 760 mmHg

4-(4-Acetyl-phenoxy)-butyric acid is a chemical compound with a range of potential applications across various scientific disciplines. Here are some key applications of 4-(4-Acetyl-phenoxy)-butyric acid:

Pharmaceutical Chemistry: 4-(4-Acetyl-phenoxy)-butyric acid is used in the synthesis of pharmaceutical compounds, serving as an important intermediate in drug development. Its versatile chemical structure allows for the creation of derivatives with potential therapeutic activities. This compound can aid in the exploration of new drug leads and the optimization of pharmacological properties.

Organic Synthesis: In organic chemistry, 4-(4-Acetyl-phenoxy)-butyric acid is employed as a building block for the synthesis of complex molecules. Its functional groups provide opportunities for various chemical modifications, facilitating the development of new materials and chemicals. Researchers use it to create novel compounds with unique properties for applications in materials science and chemical engineering.

Biochemical Research: This compound can be used as a tool in biochemical studies to investigate enzyme functions and metabolic pathways. By incorporating it into experimental setups, scientists can analyze its interactions with biological molecules and understand its effects on cellular processes. This information is crucial for elucidating molecular mechanisms and identifying potential targets for therapeutic intervention.

Material Science: 4-(4-Acetyl-phenoxy)-butyric acid finds applications in the design and synthesis of advanced materials with specific properties. It can be used to create polymers and coatings with desired characteristics, such as improved strength, flexibility, or chemical resistance. These materials are valuable in various industries, including electronics, packaging, and biomedical engineering.

The molarity calculator equation

Mass (g) = Concentration (mol/L) × Volume (L) × Molecular Weight (g/mol)

The dilution calculator equation

Concentration (start) × Volume (start) = Concentration (final) × Volume (final)

This equation is commonly abbreviated as: C1V1 = C2V2

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