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通过1H-31P交叉极化核磁共振研究完整鸡红细胞染色质的动态结构。

Dynamic structures of intact chicken erythrocyte chromatins as studied by 1H-31P cross-polarization NMR.

作者信息

Akutsu H, Nishimoto S, Kyogoku Y

机构信息

Department of Bioengineering, Faculty of Engineering, Yokohama National University, Japan.

出版信息

Biophys J. 1994 Aug;67(2):804-11. doi: 10.1016/S0006-3495(94)80540-5.

Abstract

The dynamic properties of DNA in intact chicken erythrocyte cells, nuclei, nondigested chromatins, digested soluble chromatins, H1, H5-depleted soluble chromatins and nucleosome cores were investigated by means of single-pulse and 1H-31P cross-polarization NMR. The temperature dependence of the phosphorus chemical shift anisotropy was identical for the former three in the presence of 3 mM MgCl2, suggesting that the local higher order structure is identical for these chromatins. The intrinsic phosphorus chemical shift anisotropy of the nucleosome cores was -159 ppm. The chemical shift anisotropy of DNA in the chromatins can be further averaged by the motion of the linker DNA. The spin-lattice relaxation time in the rotating frame of the proton spins (T1p) of the nondigested chromatins was measured at various locking fields. The result was analyzed on the assumption of the isotropic motion to get a rough value of the correlation time of the motion efficient for the relaxation, which was eventually ascribed to the segmental motion of the linker DNA with restricted amplitude. The 30 nm filament structure induced by NaCl was shown to be dynamically different from that induced by MgCl2. Side-by-side compaction of 30-nm filaments was suggested to be induced in the MgCl2 concentration range higher than 0.3 mM. Biological significance of the dynamic structure was discussed in connection with the results obtained.

摘要

通过单脉冲和1H-31P交叉极化核磁共振技术,研究了完整鸡红细胞、细胞核、未消化染色质、消化后的可溶性染色质、H1和H5缺失的可溶性染色质以及核小体核心中DNA的动态特性。在存在3 mM MgCl2的情况下,前三者的磷化学位移各向异性的温度依赖性相同,这表明这些染色质的局部高阶结构相同。核小体核心的固有磷化学位移各向异性为-159 ppm。染色质中DNA的化学位移各向异性可通过连接DNA的运动进一步平均化。在不同的锁定场下测量了未消化染色质的质子自旋在旋转框架中的自旋晶格弛豫时间(T1p)。在各向同性运动的假设下对结果进行分析,以获得对弛豫有效的运动相关时间的粗略值,最终将其归因于连接DNA具有受限幅度的节段运动。结果表明,NaCl诱导的30 nm细丝结构与MgCl2诱导的结构在动力学上不同。在高于0.3 mM的MgCl2浓度范围内,建议诱导30 nm细丝的并排压缩。结合所获得的结果讨论了动态结构的生物学意义。

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