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Catalog Number:
20165
CAS Number:
885273-22-3
4-(1H-Indol-5-yl)tetrahydropyran-4-ol
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Product Information

4-(1H-Indol-5-yl)tetrahydropyran-4-ol is a versatile compound known for its unique structural features that make it valuable in various research and industrial applications. This compound, also recognized by its synonym 4-(1H-indol-5-yl)oxan-4-ol, exhibits properties that are particularly beneficial in the fields of medicinal chemistry and organic synthesis. Its indole moiety contributes to its biological activity, making it a candidate for drug development, especially in the exploration of novel therapeutic agents targeting neurological disorders and cancer.

Researchers have utilized 4-(1H-Indol-5-yl)tetrahydropyran-4-ol in the synthesis of complex organic molecules, showcasing its potential as an intermediate in the production of pharmaceuticals. Its ability to undergo various chemical transformations allows for the creation of diverse derivatives, enhancing its applicability in drug discovery and development. The compound's stability and reactivity profile make it an attractive option for professionals seeking reliable building blocks in their synthetic pathways.

CAS Number
885273-22-3
Molecular Formula
C13H15NO2
Molecular Weight
217.27
MDL Number
MFCD04114732
PubChem ID
40425149
Conditions
Store at 0-8°C
General Information
CAS Number
885273-22-3
Molecular Formula
C13H15NO2
Molecular Weight
217.27
MDL Number
MFCD04114732
PubChem ID
40425149
Conditions
Store at 0-8°C
Properties
Additional property information coming soon!
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Safety and Regulations
Hazmat
No
Antibiotic
No
DEA-regulated
No
Warnings
-
Applications

4-(1H-Indol-5-yl)tetrahydropyran-4-ol is widely utilized in research focused on:

  • Pharmaceutical Development: This compound serves as a potential lead in the synthesis of new drugs, particularly in oncology and neuropharmacology, due to its unique structural properties that can interact with biological targets.
  • Natural Product Synthesis: It is used in the synthesis of complex natural products, allowing researchers to explore new therapeutic compounds derived from natural sources.
  • Biochemical Research: The compound is valuable in studying enzyme interactions and metabolic pathways, providing insights into cellular processes and disease mechanisms.
  • Material Science: Its properties make it suitable for developing advanced materials, such as polymers or coatings, that require specific chemical stability and reactivity.
  • Analytical Chemistry: It can be employed as a standard reference material in analytical methods, ensuring accurate measurements and enhancing the reliability of experimental results.

Citations