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Cepharanoline

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Identification
Molecular formula
C22H22N2O6S2
CAS number
372-35-6
IUPAC name
(16-hydroxy-2,13-dioxo-8,19-dioxa-23,24-dithia-3,14-diazahexacyclo[10.10.2.01,14.03,12.04,10.015,21]tetracosa-6,9,17,20-tetraen-5-yl) acetate
State
State

Cepharanoline is commonly found in a solid state at room temperature. It maintains its solid state under normal atmospheric conditions until it reaches its melting point.

Melting point (Celsius)
246.00
Melting point (Kelvin)
519.15
Boiling point (Celsius)
583.00
Boiling point (Kelvin)
856.15
General information
Molecular weight
400.48g/mol
Molar mass
400.4810g/mol
Density
1.3700g/cm3
Appearence

Cepharanoline typically appears as a white to off-white crystalline solid. It may also be observed in a powdered form, with the exact color nuances depending on the specific conditions, such as purity and light exposure.

Comment on solubility

Solubility of (16-hydroxy-2,13-dioxo-8,19-dioxa-23,24-dithia-3,14-diazahexacyclo[10.10.2.01,14.03,12.04,10.015,21]tetracosa-6,9,17,20-tetraen-5-yl) acetate

The solubility of complex compounds, such as (16-hydroxy-2,13-dioxo-8,19-dioxa-23,24-dithia-3,14-diazahexacyclo[10.10.2.01,14.03,12.04,10.015,21]tetracosa-6,9,17,20-tetraen-5-yl) acetate, can often be challenging to predict due to their intricate structures. Here are some factors that influence its solubility:

  • Polarity: Compounds with polar functional groups tend to have higher solubility in polar solvents (like water), whereas non-polar compounds are more soluble in non-polar solvents (like organic solvents).
  • Hydrogen Bonding: The presence of hydroxyl (-OH) groups can enhance solubility through hydrogen bonding with solvent molecules.
  • Molecular Size: Larger, more complex structures typically exhibit lower solubility due to steric hindrance and less surface area contact with solvent.
  • Temperature: Solubility generally increases with temperature for many solids but may vary based on the compound's characteristics.

While specific solubility data for this compound is not readily available, it could be anticipated that increased polarity and hydrogen-bonding capacity would enhance solubility in polar solvents. However, its large, complex structure may create challenges, suggesting that solubility may be limited overall. Experimental studies would be essential to determine the precise solubility profile.

Interesting facts

Interesting Facts about (16-hydroxy-2,13-dioxo-8,19-dioxa-23,24-dithia-3,14-diazahexacyclo[10.10.2.01,14.03,12.04,10.015,21]tetracosa-6,9,17,20-tetraen-5-yl) acetate

This compound, with its complex structure, embodies the fascinating intersection of organic chemistry and material science. Here are some intriguing aspects:

  • Structural Complexity: The name suggests a highly intricate architecture, containing multiple functional groups, dioxo and dioxa elements, as well as sulphur and nitrogen atoms. The cyclic components reveal the potential for unique stereochemistry, affecting reactivity and interactions with other molecules.
  • Biological Relevance: Compounds with such structures are often investigated for their biological activities. They may exhibit properties that could be beneficial in fields such as pharmacology, with potential applications in drug development.
  • Material Properties: The diverse elements within the structure can lead to interesting physical and chemical properties, making it suitable for studies in materials science. It may function as an effective ligand or catalyst in various reactions.
  • Synthetic Challenges: The synthesis of such complex compounds often requires advanced techniques in organic synthesis, highlighting the ingenuity and skill of chemists. This underscores the importance of synthetic strategies that allow for the creation of complex molecules from simpler precursors.
  • Potential Applications: Due to its multifaceted structure, it could have potential applications in areas like nanotechnology, where sophisticated compounds can be utilized for the development of advanced materials or sensors.

In summary, the compound (16-hydroxy-2,13-dioxo-8,19-dioxa-23,24-dithia-3,14-diazahexacyclo[10.10.2.01,14.03,12.04,10.015,21]tetracosa-6,9,17,20-tetraen-5-yl) acetate represents a remarkable example of the complexities found in chemical structures and their vast potential across various scientific domains. As the field progresses, the study of such compounds will surely unravel new discoveries and innovations.

Synonyms
Aranotin (USAN/INN)
SCHEMBL145759
DTXSID90864911
CHEBI:188552
A 21101-IL
DA-61187
NS00011773
D02974
13-Hydroxy-7,15-dioxo-5,5a,13,13a-tetrahydro-7H,8H,15H,16H-7a,15a-epidithiobisoxepino[3',4':4,5]pyrrolo[1,2-a:1',2'-d]pyrazin-5-yl acetate