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利用碱基特异性同位素编辑拉曼光谱探测腺嘌呤环和骨架连接:在 II 类内含子核糖酶结构域 V 中的应用。

Probing adenine rings and backbone linkages using base specific isotope-edited Raman spectroscopy: application to group II intron ribozyme domain V.

机构信息

Department of Biochemistry, School of Medicine, Case Western Reserve University, 10900 Euclid Avenue, Cleveland, Ohio 44106-4935, USA.

出版信息

Biochemistry. 2010 Apr 27;49(16):3427-35. doi: 10.1021/bi902117w.

Abstract

Raman difference spectroscopy is used to probe the properties of a 36-nt RNA molecule, "D5", which lies at the heart of the catalytic apparatus in group II introns. For D5 that has all of its adenine residues labeled with (13)C and (15)N and utilizing Raman difference spectroscopy, we identify the conformationally sensitive -C-O-P-O-C- stretching modes of the unlabeled bonds adjacent to adenine bases, as well as the adenine ring modes themselves. The phosphodiester modes can be assigned to individual adenine residues based on earlier NMR data. The effect of Mg(2+) binding was explored by analyzing the Raman difference spectra for [D5 + Mg(2+)] minus [D5 no Mg(2+)], for D5 unlabeled, or D5 labeled with (13)C/(15)N-enriched adenine. In both sets of data we assign differential features to G ring modes perturbed by Mg(2+) binding at the N7 position. In the A-labeled spectra we attribute a Raman differential near 1450 cm(-1) and changes of intensity at 1296 cm(-1) to Mg binding at the N7 position of adenine bases. The A and G bases involved in Mg(2+) binding again can be identified using earlier NMR results. For the unlabeled D5, a change in the C-O-P-O-C stretch profile at 811 cm(-1) upon magnesium binding is due to a "tightening up" (in the sense of a more rigid molecule with less dynamic interchange among competing ribose conformers) of the D5 structure. For adenine-labeled D5, small changes in the adenine backbone bond signatures in the 810-830 cm(-1) region suggest that small conformational changes occur in the tetraloop and bulge regions upon binding of Mg(2+). The PO(2)(-) stretching vibration, near 1100 cm(-1), from the nonbridging phosphate groups, probes the effect of Mg(2+)-hydrate inner-sphere interactions that cause an upshift. In turn, the upshift is modulated by the presence of monovalent cations since in the presence of Na(+) and Li(+) the upshift is 23 +/- 2 cm(-1) while in the presence of K(+) and Cs(+) it is 13 +/- 3 cm(-1), a finding that correlates with the differences in hydration radii. These subtle differences in electrostatic interactions may be related to observed variations in catalytic activity. For a reconstructed ribozyme comprising domains 1-3 (D123) connected in cis plus domain 5 (D5) supplied in trans, cleavage of spliced exon substrates in the presence of magnesium and K(+) or Cs(+) is more efficient than that in the presence of magnesium with Na(+) or Li(+).

摘要

拉曼差光谱用于探测 36nt RNA 分子“D5”的性质,该分子位于 II 类内含子催化装置的核心。对于用 (13)C 和 (15)N 标记了所有腺嘌呤残基的 D5,并利用拉曼差光谱,我们确定了与腺嘌呤碱基相邻的未标记键的构象敏感 -C-O-P-O-C-伸缩模式,以及腺嘌呤环模式本身。根据早期的 NMR 数据,可以将磷酸二酯键模式分配给各个腺嘌呤残基。通过分析 [D5+Mg(2+)]与 [D5 无 Mg(2+)]之间的拉曼差光谱,研究了 Mg(2+)结合的影响,其中 D5 未标记,或用 (13)C/(15)N 富集的腺嘌呤标记。在这两组数据中,我们将差异特征分配给 G 环模式,这些模式受到 N7 位置 Mg(2+)结合的干扰。在 A 标记的光谱中,我们将位于 1450cm(-1)附近的拉曼差和位于 1296cm(-1)的强度变化归因于腺嘌呤碱基 N7 位置的 Mg 结合。使用早期的 NMR 结果可以再次识别涉及 Mg(2+)结合的 A 和 G 碱基。对于未标记的 D5,镁结合后 811cm(-1)处 C-O-P-O-C 伸缩谱的变化是由于 D5 结构的“收紧”(在更刚性的分子中,竞争核糖构象之间的动态交换较少)。对于腺嘌呤标记的 D5,在 810-830cm(-1)区域中腺嘌呤骨架键特征的微小变化表明,在结合 Mg(2+)时,四链环和凸起区域会发生微小的构象变化。非桥接磷酸基团的 PO(2)(-)伸缩振动,接近 1100cm(-1),探测 Mg(2+)-水合内球相互作用的影响,导致向上移动。反过来,向上移动被单价阳离子的存在调制,因为在 Na(+)和 Li(+)存在下,向上移动 23 +/- 2cm(-1),而在 K(+)和 Cs(+)存在下,向上移动 13 +/- 3cm(-1),这一发现与水合半径的差异相关。这些静电相互作用的细微差异可能与观察到的催化活性变化有关。对于由顺式连接的结构域 1-3(D123)和反式供应的结构域 5(D5)组成的重建核酶,在镁和 K(+)或 Cs(+)存在下切割拼接外显子底物的效率高于在镁与 Na(+)或 Li(+)存在下的效率。

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