3-trans-Hydroxycyclohexyl Glyburide

A summary of the most common chemical descriptors (InChI Key and SMILES codes) for 3-trans-Hydroxycyclohexyl Glyburide are summarized together with 3D and 2D structures and relevant physico-chemical properties.

What is the 3-trans-Hydroxycyclohexyl Glyburide?

The molecule 3-trans-Hydroxycyclohexyl Glyburide presents a molecular formula of C23H28ClN3O6S and its IUPAC name is 5-chloro-N-[2-[4-[[(1R,3R)-3-hydroxycyclohexyl]carbamoylsulfamoyl]phenyl]ethyl]-2-methoxybenzamide.

3-trans-Hydroxycyclohexyl Glyburide is a molecule that has been shown to have potential therapeutic effects in the treatment of diabetes. In preclinical studies, 3-trans-hydroxycyclohexyl glyburide (3-THG) has shown to increase glucose uptake and decrease insulin resistance in skeletal muscle and adipocytes. 3-THG also has been shown to improve glucose tolerance in animal models of diabetes. The mechanisms by which 3-THG exerts its effects are not fully understood, but may involve activation of the insulin receptor and/or modification of glucose metabolism. 3-THG is currently in clinical trials for the treatment of type 2 diabetes..

3D structure

Cartesian coordinates

Geometry of 3-trans-Hydroxycyclohexyl Glyburide in x, y and z coordinates (Å units) to copy/paste elsewhere. Generated with Open Babel software.

2D drawing

 

3-trans-Hydroxycyclohexyl Glyburide VFBAJFAMXTVSQA-QZTJIDSGSA-N chemical compound 2D structure molecule svg
3-trans-Hydroxycyclohexyl Glyburide

 

Molecule descriptors

 
IUPAC name5-chloro-N-[2-[4-[[(1R,3R)-3-hydroxycyclohexyl]carbamoylsulfamoyl]phenyl]ethyl]-2-methoxybenzamide
InChI codeInChI=1S/C23H28ClN3O6S/c1-33-21-10-7-16(24)13-20(21)22(29)25-12-11-15-5-8-19(9-6-15)34(31,32)27-23(30)26-17-3-2-4-18(28)14-17/h5-10,13,17-18,28H,2-4,11-12,14H2,1H3,(H,25,29)(H2,26,27,30)/t17-,18-/m1/s1
InChI KeyVFBAJFAMXTVSQA-QZTJIDSGSA-N
SMILESCOc1ccc(Cl)cc1/C(O)=N\CCc1ccc(S(=O)(=O)/N=C(\O)N[C@@H]2CCC[C@@H](O)C2)cc1

Other names (synonyms)

IUPAC nomenclature provides a standardized method for naming chemical compounds. Although this system is widely used in chemistry, many chemical compounds have also other names commonly used in different contexts. These synonyms can come from a variety of sources and are used for a variety of purposes.

One common source of synonyms for chemical compounds is the common or trivial names, assigned on the basis of appearance, properties, or origin of the molecule.

Another source of synonyms are historical or obsolete names employed in the past, however replaced nowadays by more modern or standardized names.

In addition to common and historical names, chemical compounds may also have synonyms that are specific to a particular field or industry.

  • 3-trans-Hydroxycyclohexyl Glyburide
  • 5-Chloro-N-[2-[4-[[3-(3alpha-hydroxycyclohexan-1beta-yl)ureido]sulfonyl]phenyl]ethyl]-2-methoxybenzamide

Reference codes for other databases

There exist several different chemical codes commonly used in orded to identify molecules:
  • ZINC95619120

Physico-Chemical properties

IUPAC name5-chloro-N-[2-[4-[[(1R,3R)-3-hydroxycyclohexyl]carbamoylsulfamoyl]phenyl]ethyl]-2-methoxybenzamide
Molecular formulaC23H28ClN3O6S
Molecular weight510.003
Melting point (ºC)
Boiling point (ºC)
Density (g/cm3)
Molar refractivity131.31
LogP4.9
Topological polar surface area149.2

LogP and topological polar surface area (TPSA) values were estimated using Open Babel software.

The n-octanol/water partition coeficient (Kow) data is applied in toxicology and drug research. Kow values are used, to guess the environmental fate of persistent organic pollutants. High partition coefficients values, tend to accumulate in the fatty tissue of organisms. Molecules with a log(Kow) (or LogP) greater than 5 are considered to bioaccumulate.

TPSA values are the sum of the surface area over all polar atoms or molecules, mainly oxygen and nitrogen, also including hydrogen atoms.

In medicinal chemistry, TPSA is used to assess the ability of a drug to permeabilise cells.

For molecules to penetrate the blood-brain barrier (and act on receptors in the central nervous system), TPSA values below 90 Å2 are required. Thus, molecules with a polar surface area greater than 140 Å2 tend to be poorly permeable to cell membranes.