4-Phenylbutyric Acid (CAS 1821-12-1): A Versatile Chemical Intermediate for Pharmaceutical and Research Applications

Discover the unique properties and diverse applications of 4-Phenylbutyric Acid, a key chemical compound supporting advancements in pharmaceuticals and scientific research. Explore its role as a chemical chaperone and its potential in treating complex diseases.

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Key Product Advantages

Chemical Chaperone Properties

4-Phenylbutyric Acid acts as a chemical chaperone, a vital function for cells experiencing endoplasmic reticulum stress. This property is critical for maintaining protein homeostasis and is being investigated for its role in conditions like cystic fibrosis and Parkinson's disease.

Oxidative Stress Reduction

By mitigating endoplasmic reticulum stress, this compound helps to suppress oxidative stress within cells. This is fundamental for protecting cells from damage and is a key focus in research for age-related diseases and inflammatory conditions.

Pharmaceutical Intermediate Excellence

As a high-purity pharmaceutical intermediate, 4-Phenylbutyric Acid is essential for the synthesis of Active Pharmaceutical Ingredients (APIs). Its reliable supply chain from China ensures consistent quality for drug manufacturers.

Key Applications

Pharmaceutical Development

4-Phenylbutyric acid is extensively studied for its therapeutic potential in neurological disorders and conditions involving protein misfolding, making it a valuable molecule for drug development.

Cell Culture

In cell culture, it serves as a chemical chaperone to improve protein folding and yield, supporting biopharmaceutical production and research into recombinant protein therapies.

Metabolic Disorder Research

This compound is investigated for its effects on metabolic pathways, showing promise in studies related to diabetes and lipid metabolism regulation.

Biomedical Research

Its ability to modulate cellular processes makes it a compound of significant interest for a broad range of biomedical applications, from disease modeling to therapeutic development.