Interesting facts
              Interesting Facts about 6,7-Dimethoxy-2-phenyl-quinoxaline
6,7-dimethoxy-2-phenyl-quinoxaline is a fascinating compound, primarily due to its structural characteristics and potential applications. Here are some engaging facts about this compound:
- Quinoxaline Derivative: This compound is a member of the quinoxaline family, which are bicyclic compounds featuring two nitrogen atoms in the ring. These types of molecules are known for their diverse biological activities.
- Biological Significance: Quinoxaline derivatives have drawn considerable attention in medicinal chemistry due to their pharmacological properties. For instance, they can act as:
- Antimicrobial agents
- Antitumor compounds
- Neuroprotective agents
- Structure-Activity Relationship: The presence of the methoxy groups at the 6 and 7 positions enhances the compound's lipophilicity, aiding in its ability to cross biological membranes. The phenyl group attached at the 2-position may also contribute to its biological activity by providing additional electron-donating characteristics that can stabilize interactions with target proteins.
- Research Frontiers: Scientists are actively exploring the potential of this compound in various fields, including:
- Cancer therapies
- Neurological disorders
- Innovative synthetic pathways
- Future Directions: Ongoing research aims to optimize the synthesis of derivatives of 6,7-dimethoxy-2-phenyl-quinoxaline, which may lead to the discovery of new drugs. Research indicates that modifying the substituents on the quinoxaline backbone can lead to enhanced efficacy and reduced side effects.
In conclusion, the compound 6,7-dimethoxy-2-phenyl-quinoxaline stands out due to its unique molecular structure and promising biological applications. As research continues, this compound could play a significant role in advancing medicinal chemistry and therapeutic strategies.
Synonyms
          146535-11-7
          Tyrphostin AG 1296
          6,7-dimethoxy-2-phenylquinoxaline
          AG-1296
          AG 1296
          6,7-Dimethoxy-3-phenylquinoxaline
          Quinoxaline, 6,7-dimethoxy-2-phenyl-
          ag1296
          Tyrphostin AG1296
          Tyrphostin AG-1296
          MFCD00270913
          CHEMBL71191
          6,7-Dimethoxy-2-phenyl-quinoxaline
          tyrphostin-AG1296
          6,7-Dimethoxy-2-phenylquinozaline
          tyrphostin-AG-1296
          BiomolKI_000055
          BiomolKI2_000061
          BMK1-F7
          BSPBio_001422
          KBioGR_000142
          KBioSS_000142
          SCHEMBL595944
          GTPL5915
          CHEBI:93335
          KBio2_000142
          KBio2_002710
          KBio2_005278
          KBio3_000283
          KBio3_000284
          DTXSID70163393
          Bio2_000142
          Bio2_000622
          HMS1361H04
          HMS1791H04
          HMS1989H04
          HMS3229M21
          HMS3402H04
          HMS3653H21
          BCP06928
          EX-A4245
          Tyrphostin AG 1296, >=98%
          BDBM50154227
          s8024
          AKOS025287463
          CCG-100659
          Quinozaline, 6,7-dimethoxy-2-phenyl-
          SDCCGSBI-0086718.P004
          Tyrphostin AG 1296 (AG 1296)
          IDI1_033892
          NCGC00163386-01
          NCGC00163386-02
          NCGC00163386-03
          NCGC00163386-04
          AG-1296?
          AS-62520
          DA-68436
          HY-13894
          CS-0008498
          D4601
          SW220231-1
          A10799
          EN300-25893073
          SR-03000001061
          SR-03000001061-1
          AG 1296 - CAS 146535-11-7
          BRD-K76064317-001-03-2
          BRD-K76064317-001-04-0
          BRD-K76064317-001-07-3
          BRD-K76064317-001-08-1
          Q27074335
          Z2216889477
              
Solubility of 6,7-dimethoxy-2-phenyl-quinoxaline (C16H14N2O2)
The solubility of 6,7-dimethoxy-2-phenyl-quinoxaline can be intriguing due to its complex molecular structure. Understanding its solubility can be beautifully summarized with the following points:
In summary, while 6,7-dimethoxy-2-phenyl-quinoxaline is expected to exhibit limited solubility in aqueous environments, it holds potential for solubility in organic solvents, offering valuable insights for applications in chemical processes and pharmaceuticals.