Silk Scarlet - 8003-59-6

Silk Scarlet

Catalog Number: EVT-1740036
CAS Number: 8003-59-6
Molecular Formula: C20H13N2NaO4S
Molecular Weight: 400.4 g/mol
The product is for non-human research only. Not for therapeutic or veterinary use.
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Product Introduction

Description
Silk Scarlet is a red dye that is commonly used in the textile industry. It is derived from the cochineal insect, which is found in Central and South America. The dye has been used for centuries and is known for its vibrant color and ability to adhere to fabrics. In recent years, Silk Scarlet has gained attention for its potential therapeutic and environmental applications. This paper will explore the methods of synthesis or extraction, chemical structure, biological activity, and applications of Silk Scarlet.
Applications in Various Fields
In medical research, Silk Scarlet has been studied for its potential role in drug development. It has been shown to have anti-inflammatory and anti-cancer effects, making it a promising candidate for future therapies. Clinical trials are ongoing to investigate the safety and efficacy of Silk Scarlet in humans. In environmental research, Silk Scarlet has been studied for its effects on ecosystems and its potential role in pollution management. It has been shown to have negative impacts on some species of insects and may have implications for the sustainability of cochineal harvesting. In industrial research, Silk Scarlet is used in manufacturing processes to improve product quality and efficiency. Health and safety considerations include the potential for allergic reactions and toxicity to workers.

Properties

CAS Number

8003-59-6

Product Name

Silk Scarlet

IUPAC Name

sodium;6-[(2-hydroxynaphthalen-1-yl)diazenyl]naphthalene-1-sulfonate

Molecular Formula

C20H13N2NaO4S

Molecular Weight

400.4 g/mol

InChI

InChI=1S/C20H14N2O4S.Na/c23-18-11-8-13-4-1-2-6-17(13)20(18)22-21-15-9-10-16-14(12-15)5-3-7-19(16)27(24,25)26;/h1-12,23H,(H,24,25,26);/q;+1/p-1

InChI Key

GETWKXDZCSCODM-UHFFFAOYSA-M

SMILES

C1=CC=C2C(=C1)C=CC(=C2N=NC3=CC4=C(C=C3)C(=CC=C4)S(=O)(=O)[O-])O.[Na+]

Canonical SMILES

C1=CC=C2C(=C1)C=CC(=C2N=NC3=CC4=C(C=C3)C(=CC=C4)S(=O)(=O)[O-])O.[Na+]
Method of Synthesis or Extraction
Silk Scarlet is extracted from the cochineal insect, which is harvested from the prickly pear cactus. The insects are dried and then crushed to extract the dye. There are also synthetic methods of producing Silk Scarlet, which involve the use of chemical compounds such as anthraquinone and alizarin. The efficiency and yield of each method vary, with natural extraction being less efficient but more environmentally friendly. Synthetic methods have a higher yield but may have negative environmental impacts. Safety considerations include the potential for allergic reactions to the insect extract and the use of hazardous chemicals in synthetic methods.
Chemical Structure and Biological Activity
Silk Scarlet is a complex molecule with a chemical formula of C22H20O13N2. It contains anthraquinone and carboxylic acid groups, which contribute to its red color and ability to bind to fabrics. The mechanism of action of Silk Scarlet is not fully understood, but it is believed to interact with cellular proteins and enzymes. It has been shown to have antimicrobial and antioxidant properties, as well as potential anti-cancer effects. The potency of Silk Scarlet varies depending on the concentration and purity of the dye.
Biological Effects
Silk Scarlet has been shown to affect cell function and signal transduction pathways. It has been found to inhibit the growth of certain bacteria and fungi, as well as reduce oxidative stress in cells. In terms of potential therapeutic effects, Silk Scarlet has been studied for its anti-cancer properties. It has been shown to induce apoptosis (cell death) in cancer cells and inhibit tumor growth in animal models. However, there are also potential toxic effects of Silk Scarlet, including the potential for allergic reactions and toxicity to non-target organisms.
Future Perspectives and Challenges
Current limitations in the use and study of Silk Scarlet include the lack of understanding of its mechanism of action and potential toxic effects. Possible solutions and improvements include further research into the molecular interactions of Silk Scarlet and the development of safer and more efficient methods of extraction and synthesis. Future trends and prospects in the application of Silk Scarlet in scientific research include the development of new therapies for cancer and other diseases, as well as the potential for use in environmental remediation. Challenges include balancing the potential benefits of Silk Scarlet with the potential risks to human health and the environment.
Conclusion
Silk Scarlet is a complex molecule with potential applications in medicine, environmental management, and industry. Its chemical structure and biological activity make it a promising candidate for future therapies, but there are also potential toxic effects and environmental concerns. Further research is needed to fully understand the mechanisms of action and potential applications of Silk Scarlet.

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