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Understanding the correlation between structure and dynamics of clocortolone pivalate by solid state NMR measurement

机译:了解固态NMR测量结构与动力学之间的相关性和动力学

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Structural characteristics of clocortolone pivalate are unique in the topical corticosteroid field having high penetration power through the stratum corneum of skin as well as low corticosteroid-related adverse effects. The molecule was thoroughly studied by ~(13) C 2DPASS CP MAS NMR and spin–lattice relaxation time measurements. Molecular correlation time at different carbon nuclei positions was calculated by assuming that the chemical shift anisotropy interaction and heteronuclear dipole–dipole interaction play vital roles in the ~(13) C spin–lattice relaxation mechanism. The CSA parameters are substantially varied at different carbon nuclei sites. This suggests that the electronic distribution surrounding the carbon nuclei varies widely when the same carbon atom is placed in different chemical surroundings of the molecule. The spinning CSA sideband pattern for C11, C17, C26 nuclei is axially symmetric. The asymmetry parameter is very small (≤0.3) for C2, C5, C10, C22, C23, C24 nuclei, and it is reasonably high (≥0.9) for C3, C4, C6, C18, C19, C21 nuclei. The anisotropy parameter is very high for double bonded C14, C15, C18, C19, C21, C22, and C23 nuclei. Spin–lattice relaxation time and molecular correlation time are also varied substantially for carbon nuclei situated at various positions of the molecule. The spin–lattice relaxation time is slow for carbon nuclei residing at the carbon ring, and it is very fast for C12, C17, C16, C26 carbon nuclei situated at the side portion of the molecule. Molecular correlation time is of the order of 10 ~(?4) s for those carbon nuclei attached with neighbouring carbon or oxygen atoms by double bonds like C14, C15, C18, C19, C21, C22, and C23. It implies that the molecular correlation time is very high for those carbon nuclei associated with high values of the chemical shift anisotropy parameter. In contrast, the molecular correlation time is of the order of 10 ~(?8) s for C12, C16, and C17 carbon nuclei. From these studies, it is clear that the various portions of the molecule exhibit different degrees of motion and the dynamics is related with the structural characteristics of the molecule. These investigations on important drug clocortolone pivalate by solid state NMR will help researchers to understand the structure and dynamics of the molecule, which will give a direction to develop advance corticosteroids.
机译:Clocortolone Pivalate的结构特征在局部皮质类固醇场中具有高穿透力的局部皮质类固醇领域,通过皮肤角质层以及低皮质类固醇相关的不良反应。通过〜(13)C 2DPASC CP MAS NMR和旋转晶格弛豫时间测量进行彻底研究分子。通过假设化学移位各向异性相互作用和异核偶极偶偶极物相互作用在〜(13)C旋转晶格弛豫机构中起重要作用,计算不同碳核位置的分子相关时间。 CSA参数在不同的碳核位点基本上变化。这表明当碳原子置于分子的不同化学环境中,围绕碳核的电子分布很大。用于C11,C17,C26核的纺丝CSA边带图案是轴向对称的。对于C2,C5,C10,C22,C23,C24核的不对称参数非常小(≤0.3),C3,C4,C6,C18,C19,C21核的合理高(≥0.9)。双键C14,C15,C18,C19,C21,C22和C23核非常高的各向异性参数非常高。旋转晶格弛豫时间和分子相关时间也基本上用于位于分子各种位置的碳核。旋转晶格弛豫时间慢性用于碳环的碳核慢,并且对于位于分子的侧部的C12,C17,C16,C26碳核非常快。用于通过C14,C15,C18,C19,C21,C22和C23等双键连接的那些用相邻碳或氧原子连接的那些碳核的10〜(α4)S的顺序为10〜(α4)S。它意味着与化学移位各向异性参数的高值相关的那些碳核的分子相关时间非常高。相反,分子相关时间为C12,C16和C17碳核的10〜(β8)。根据这些研究,显然分子的各个部分表现出不同程度的运动,动力学与分子的结构特征有关。这些对重要药物Clocortolone的调查通过固态NMR将有助于研究人员了解分子的结构和动态,这将提供发展前进皮质类固醇的方向。

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