GemC1 螺旋线圈的结构及其与螺旋线圈蛋白 Geminin 家族的相互作用。

IF 2.2 4区 生物学
Christophe Caillat, Alexander Fish, Dafni Eleftheria Pefani, Stavros Taraviras, Zoi Lygerou, Anastassis Perrakis
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引用次数: 0

摘要

GemC1与Idas和Geminin(DNA复制许可和分化决策的重要调节因子)共同构成了一个超家族,它们共享一个同源的中心盘旋结构域。为了更好地了解这个蛋白质家族,我们测定了一个 GemC1 盘旋结构域变体的晶体结构,该变体具有更好的溶解性,其分辨率达到 2.2 Å。与 Geminin 同源二聚体和 Geminin-Idas 异源二聚体结构相比,GemC1 的盘旋结构不太典型。研究还表明,在体外和细胞中,GemC1 都是通过其线圈结构域与 Geminin 相互作用,形成比 GemC1 同二聚体更稳定的异二聚体。对所有可能的超家族复合物的热稳定性进行的比较分析表明,盘绕线圈的展开可能是从 C 端向 N 端进行的。研究还表明,同源二聚体呈现单态展开,而异源二聚体呈现双态展开,这表明二聚体首先解体,然后螺旋根据每个蛋白质的稳定性展开。研究结果认为,Geminin 家族成员之间会形成同源二聚体和异源二聚体,这种能力可能对调节它们在循环和分化细胞中的功能非常重要。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The structure of the GemC1 coiled coil and its interaction with the Geminin family of coiled-coil proteins.

GemC1, together with Idas and Geminin, an important regulator of DNA-replication licensing and differentiation decisions, constitute a superfamily sharing a homologous central coiled-coil domain. To better understand this family of proteins, the crystal structure of a GemC1 coiled-coil domain variant engineered for better solubility was determined to 2.2 Å resolution. GemC1 shows a less typical coiled coil compared with the Geminin homodimer and the Geminin-Idas heterodimer structures. It is also shown that both in vitro and in cells GemC1 interacts with Geminin through its coiled-coil domain, forming a heterodimer that is more stable that the GemC1 homodimer. Comparative analysis of the thermal stability of all of the possible superfamily complexes, using circular dichroism to follow the unfolding of the entire helix of the coiled coil, or intrinsic tryptophan fluorescence of a unique conserved N-terminal tryptophan, shows that the unfolding of the coiled coil is likely to take place from the C-terminus towards the N-terminus. It is also shown that homodimers show a single-state unfolding, while heterodimers show a two-state unfolding, suggesting that the dimer first falls apart and the helices then unfold according to the stability of each protein. The findings argue that Geminin-family members form homodimers and heterodimers between them, and this ability is likely to be important for modulating their function in cycling and differentiating cells.

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来源期刊
自引率
13.60%
发文量
0
审稿时长
3 months
期刊介绍: Acta Crystallographica Section D welcomes the submission of articles covering any aspect of structural biology, with a particular emphasis on the structures of biological macromolecules or the methods used to determine them. Reports on new structures of biological importance may address the smallest macromolecules to the largest complex molecular machines. These structures may have been determined using any structural biology technique including crystallography, NMR, cryoEM and/or other techniques. The key criterion is that such articles must present significant new insights into biological, chemical or medical sciences. The inclusion of complementary data that support the conclusions drawn from the structural studies (such as binding studies, mass spectrometry, enzyme assays, or analysis of mutants or other modified forms of biological macromolecule) is encouraged. Methods articles may include new approaches to any aspect of biological structure determination or structure analysis but will only be accepted where they focus on new methods that are demonstrated to be of general applicability and importance to structural biology. Articles describing particularly difficult problems in structural biology are also welcomed, if the analysis would provide useful insights to others facing similar problems.
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