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首页> 外文期刊>Journal of Molecular Biology >Using soft X-rays for a detailed picture of divalent metal binding in the nucleosome.
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Using soft X-rays for a detailed picture of divalent metal binding in the nucleosome.

机译:使用软X射线查看核小体中二价金属结合的详细图片。

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摘要

Divalent metals associate with DNA in a site-selective manner, which can influence nucleosome positioning, mobility, compaction, and recognition by nuclear factors. We previously characterized divalent metal binding in the nucleosome core using hard (short-wavelength) X-rays allowing high-resolution crystallographic determination of the strongest affinity sites, which revealed that Mn(2+) associates with the DNA major groove in a sequence- and conformation-dependent manner. In this study, we obtained diffraction data with soft X-rays at the Mn(2+) absorption edge for a core particle crystal in the presence of 10 mM MnSO(4), mimicking prevailing Mg(2+) concentration in the nucleus. This provides an exceptional view of counterion binding in the nucleosome through identification of 45 divalent metal binding sites. In addition to that at the well-characterized major interparticle interface, only one other histone-divalent metal binding site is found, which corresponds to a symmetry-related counterpart on the 'free' H2B alpha1 helix C-terminus. This emphasizes the importance of the alpha-helix dipole in ion binding and suggests that the H2B motif may serve as a nucleation site in nucleosome compaction. The 43 sites associated with the DNA are characterized by (1) high-affinity direct coordination at the most electrostatically favorable major groove locations, (2) metal hydrate binding to the major groove, (3) direct coordination to phosphate groups at sites of high charge density, (4) metal hydrate binding in the minor groove, or (5) metal hydrate-divalent anion pairing. Metal hydrates are found within the minor groove only at locations displaying a narrow range of high-intermediate width and to which histone N-terminal tails are not associated or proximal. This indicates that divalent metals and histone tails can both collaborate and compete in minor groove association, which sheds light on nucleosome solubility and chromatin compaction behavior.
机译:二价金属以位点选择的方式与DNA缔合,这​​可以影响核小体的定位,迁移,紧实和被核因子识别。我们先前使用硬(短波长)X射线表征了核小体核心中的二价金属结合,从而可以对最强的亲和力位点进行高分辨率晶体学测定,从而揭示了Mn(2+)与序列中的DNA主沟相关。和构象依赖的方式。在这项研究中,我们获得了在存在10 mM MnSO(4)的情况下模拟核心中Mg(2+)浓度的核心颗粒晶体的Mn(2+)吸收边缘处的软X射线衍射数据。通过鉴定45个二价金属结合位点,从而提供了反义离子在核小体中结合的独特视角。除了在特征明确的主要颗粒间界面处,仅发现了另一个组蛋白-二价金属结合位点,其与“游离” H2B alpha1螺旋C端上的对称相关对应物相对应。这强调了α-螺旋偶极子在离子结合中的重要性,并暗示H2B基序可以充当核小体紧实过程中的成核位点。与DNA相关的43个位点的特征是(1)在静电最有利的主凹槽位置处具有高亲和力的直接配位;(2)与主凹槽结合的金属水合物;(3)在高位点处的磷酸根具有直接配位电荷密度,(4)在小沟中结合的金属水合物或(5)金属水合物-二价阴离子对。金属水合物仅在小凹槽内发现,该位置显示出高中间宽度的狭窄范围,并且组蛋白的N末端尾巴不相关或邻近。这表明二价金属和组蛋白尾巴可以在小沟关联中相互协作和竞争,从而揭示了核小体的溶解度和染色质紧实行为。

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