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Erythrolide B

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Identification
Molecular formula
C25H39NO8
CAS number
193309-83-8
IUPAC name
[(7S,8R)-7-(2-methylbut-2-enoyloxy)-5,6,7,8-tetrahydro-3H-pyrrolizin-1-yl]methyl (2R)-2,3-dihydroxy-2-[(1R)-1-methoxyethyl]-3-methyl-butanoate
State
State

At room temperature, Erythrolide B is typically in a solid state.

Melting point (Celsius)
112.00
Melting point (Kelvin)
385.15
Boiling point (Celsius)
470.00
Boiling point (Kelvin)
743.15
General information
Molecular weight
460.58g/mol
Molar mass
460.5770g/mol
Density
1.2500g/cm3
Appearence

Erythrolide B is a white crystalline solid.

Comment on solubility

Solubility Characteristics

The solubility of the compound [(7S,8R)-7-(2-methylbut-2-enoyloxy)-5,6,7,8-tetrahydro-3H-pyrrolizin-1-yl]methyl (2R)-2,3-dihydroxy-2-[(1R)-1-methoxyethyl]-3-methyl-butanoate can be a nuanced aspect to consider due to its complex molecular structure. Here’s what we can ascertain about its solubility:

  • Polar and Non-Polar Interactions: The presence of hydroxyl groups (-OH) generally enhances solubility in polar solvents, such as water, while hydrophobic segments can favor solubility in non-polar solvents.
  • Structural Influences: The intricate structure, including multiple substituents like methoxy and butanoate groups, indicates that the compound may exhibit variable solubility depending on the solvent used.
  • Potential Solubility Classes: Based on general trends:
    • If predominantly polar: likely soluble in water.
    • If predominantly non-polar: likely soluble in organic solvents like ethanol or acetone.

In conclusion, while the exact solubility profile can only be confirmed through experimental testing, this compound illustrates how molecular complexity plays a critical role in determining solubility behavior across different solvents.

Interesting facts

Interesting Facts about [(7S,8R)-7-(2-methylbut-2-enoyloxy)-5,6,7,8-tetrahydro-3H-pyrrolizin-1-yl]methyl (2R)-2,3-dihydroxy-2-[(1R)-1-methoxyethyl]-3-methyl-butanoate

This fascinating compound, often characterized by its complex structure, belongs to the realm of organic chemistry and is noteworthy due to its potential applications in various fields. Below are some intriguing aspects:

  • Biological Significance: Compounds similar to this one are frequently studied for their potential biological activity. They may exhibit properties that can contribute to medicinal chemistry, particularly in the design of new pharmaceuticals.
  • Stereochemistry: The presence of specific stereocenters, such as (7S,8R), plays a crucial role in determining the compound's reactivity and interaction with biological systems. Stereoisomerism can significantly affect the efficacy of a compound in therapeutic applications.
  • Functional Groups: This compound showcases various functional groups, including esters and alcohols, which are known for their reactivity in organic reactions. Understanding how these groups interact is pivotal for synthetic chemists.
  • Use in Research: Due to its intricate molecular structure, this compound can serve as a valuable model in biochemical research, aiding scientists in the exploration of enzyme activity and reaction mechanisms.
  • Potential Applications: Emerging research suggests that compounds like this might be useful in agrochemicals or as natural pesticides, providing safer alternatives to traditional chemicals.

To quote famous chemist Linus Pauling, "The best way to have a good idea is to have a lot of ideas." This compound exemplifies the kind of innovative thinking that can arise from understanding complex molecular architectures.

In summary, [(7S,8R)-7-(2-methylbut-2-enoyloxy)-5,6,7,8-tetrahydro-3H-pyrrolizin-1-yl]methyl (2R)-2,3-dihydroxy-2-[(1R)-1-methoxyethyl]-3-methyl-butanoate opens doors to exciting possibilities in the fields of medicinal chemistry and beyond. Continual research and exploration into its properties may yield beneficial advancements for science and technology.

Synonyms
LASIOCARPINE
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