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首页> 外文期刊>Biophysical Journal >Self-assembly of thin plates from micrococcal nuclease-digested chromatin of metaphase chromosomes
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Self-assembly of thin plates from micrococcal nuclease-digested chromatin of metaphase chromosomes

机译:微球菌核酸酶消化的中期染色体染色质的薄板自组装

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The three-dimensional organization of the enormously long DNA molecules packaged within metaphase chromosomes has been one of the most elusive problems in structural biology. Chromosomal DNA is associated with histones and different structural models consider that the resulting long chromatin fibers are folded forming loops or more irregular three-dimensional networks. Here, we report that fragments of chromatin fibers obtained from human metaphase chromosomes digested with micrococcal nuclease associate spontaneously forming multilaminar platelike structures. These self-assembled structures are identical to the thin plates found previously in partially denatured chromosomes. Under metaphase ionic conditions, the fragments that are initially folded forming the typical 30-nm chromatin fibers are untwisted and incorporated into growing plates. Large plates can be self-assembled from very short chromatin fragments, indicating that metaphase chromatin has a high tendency to generate plates even when there are many discontinuities in the DNA chain. Self-assembly at 37°C favors the formation of thick plates having many layers. All these results demonstrate conclusively that metaphase chromatin has the intrinsic capacity to self-organize as a multilayered planar structure. A chromosome structure consistent of many stacked layers of planar chromatin avoids random entanglement of DNA, and gives compactness and a high physical consistency to chromatids.
机译:包装在中期染色体中的超长DNA分子的三维组织一直是结构生物学中最难以捉摸的问题之一。染色体DNA与组蛋白有关,不同的结构模型认为所得的长染色质纤维是折叠形成环或更不规则的三维网络。在这里,我们报道从人类中期染色体获得的染色质纤维的片段与微球菌核酸酶消化后自然形成多层板状结构。这些自组装结构与先前在部分变性染色体中发现的薄板相同。在中期离子条件下,将最初折叠形成典型的30 nm染色质纤维的片段解捻并掺入生长板中。大的板块可以由非常短的染色质片段自组装,这表明即使DNA链上存在许多不连续性,中期染色质也很容易生成板块。在37℃下的自组装有利于形成具有许多层的厚板。所有这些结果最终证明,中期染色质具有自组织为多层平面结构的固有能力。平面染色质的许多堆叠层一致的染色体结构避免了DNA的随机纠缠,并为染色单体提供了紧密性和高度物理一致性。

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