Bacchi A, Pelizzi G, Nebuloni M, Ferrari P
Biosearch Italia S.p.A., Via Lepetit, 34, I-21040 Gerenzano, Italy.
J Med Chem. 1998 Jun 18;41(13):2319-32. doi: 10.1021/jm970791o.
The mechanism of action of rifamycins against bacterial DNA-dependent RNA polymerase has been explained on the basis of the spatial arrangement of four oxygens which can form hydrogen bonds with the enzyme. Structural descriptors are derived from X-ray diffraction crystal structures of 25 active and nonactive rifamycins. Principal component analysis is used to find the combination of structural parameters which better discriminate between active and nonactive rifamycins. Two possible mechanisms of molecular rearrangement are described which can convert nonactive into active conformations. The energy involved for conformational rearrangements is studied by molecular modeling techniques. Methyl C34 is found to play a key role for determining the geometry of the pharmacophore. Rifamycin O, reported to be active, is obtained by oxidation of rifamycin B and is studied by X-ray single-crystal diffractometry, by solution IR and NMR spectroscopy, and by thermal analysis. Surprisingly the oxidation process is totally stereospecific, and an explanation is given based on solution spectroscopic evidence. The conformation found in the solid state is typical of nonactive compounds, and molecular mechanics calculations show that a molecular rearrangement to the active conformation would require about 15 kcal/mol. Thermal analysis confirms that rifamycin O has a sterically constrained conformation. Therefore, it is likely that the antibiotic activity of rifamycin O is due either to chemical modification prior to reaching the enzyme or to conformational activation.
利福霉素对细菌DNA依赖性RNA聚合酶的作用机制已根据四个可与该酶形成氢键的氧原子的空间排列进行了解释。结构描述符源自25种活性和非活性利福霉素的X射线衍射晶体结构。主成分分析用于寻找能更好地区分活性和非活性利福霉素的结构参数组合。描述了两种可能的分子重排机制,它们可将非活性构象转变为活性构象。通过分子建模技术研究了构象重排所涉及的能量。发现甲基C34在确定药效团的几何形状中起关键作用。据报道有活性的利福霉素O是通过利福霉素B氧化得到的,并通过X射线单晶衍射法、溶液红外光谱和核磁共振光谱以及热分析进行了研究。令人惊讶的是,氧化过程完全具有立体特异性,并基于溶液光谱证据给出了解释。在固态中发现的构象是典型的非活性化合物构象,分子力学计算表明,重排为活性构象需要约15千卡/摩尔的能量。热分析证实利福霉素O具有空间受限的构象。因此,利福霉素O的抗生素活性很可能是由于在到达酶之前进行了化学修饰或构象活化。