Lipophilic 4-Isoxazolyl-1,4-dihydropyridines: Synthesis and Structure−Activity Relationships
摘要:
A series of 4-isoxazolyl-1,4-dihydropyridines bearing lipophilic side chains at the C-5 position of the isoxazole ring have been prepared. The calcium channel antagonistic activity of these compounds has been evaluated. A hypothetical model for binding of these compounds in the calcium channel. is proposed, and the validity of this model is evaluated based on the. SAR of this series of calcium binding, especially for the two most active derivatives, 1a,g. The solid-state structure for the most active compound, 1a, has also been determined, and its important features are reported.
Lipophilic 4-Isoxazolyl-1,4-dihydropyridines: Synthesis and Structure−Activity Relationships
摘要:
A series of 4-isoxazolyl-1,4-dihydropyridines bearing lipophilic side chains at the C-5 position of the isoxazole ring have been prepared. The calcium channel antagonistic activity of these compounds has been evaluated. A hypothetical model for binding of these compounds in the calcium channel. is proposed, and the validity of this model is evaluated based on the. SAR of this series of calcium binding, especially for the two most active derivatives, 1a,g. The solid-state structure for the most active compound, 1a, has also been determined, and its important features are reported.
Lipophilic 4-Isoxazolyl-1,4-dihydropyridines: Synthesis and Structure−Activity Relationships
作者:Nicholas R. Natale、Mark E. Rogers、Richard Staples、David J. Triggle、Aleta Rutledge
DOI:10.1021/jm980439q
日期:1999.8.1
A series of 4-isoxazolyl-1,4-dihydropyridines bearing lipophilic side chains at the C-5 position of the isoxazole ring have been prepared. The calcium channel antagonistic activity of these compounds has been evaluated. A hypothetical model for binding of these compounds in the calcium channel. is proposed, and the validity of this model is evaluated based on the. SAR of this series of calcium binding, especially for the two most active derivatives, 1a,g. The solid-state structure for the most active compound, 1a, has also been determined, and its important features are reported.