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酵母 BMH 蛋白的 C 末端片段与其他 14-3-3 蛋白同工型的结构不同。

The C-terminal segment of yeast BMH proteins exhibits different structure compared to other 14-3-3 protein isoforms.

机构信息

Institute of Physiology, Academy of Sciences of the Czech Republic, 14220 Prague, Czech Republic.

出版信息

Biochemistry. 2010 May 11;49(18):3853-61. doi: 10.1021/bi100273k.

DOI:10.1021/bi100273k
PMID:20384366
Abstract

Yeast 14-3-3 protein isoforms BMH1 and BMH2 possess a distinctly variant C-terminal tail which differentiates them from the isoforms of higher eukaryotes. Their C-termini are longer and contain a polyglutamine stretch of unknown function. It is now well established that the C-terminal segment of 14-3-3 proteins plays an important regulatory role by functioning as an autoinhibitor which occupies the ligand binding groove and blocks the binding of inappropriate ligands. Whether the same holds true or not for the yeast isoforms is unclear. Therefore, we investigated the conformational behavior of the C-terminal segment of BMH proteins using various biophysical techniques. Dynamic light scattering, sedimentation velocity, time-resolved fluorescence anisotropy decay, and size exclusion chromatography measurements showed that the molecules of BMH proteins are significantly larger compared to the human 14-3-3zeta isoform. On the other hand, the sedimentation analysis confirmed that BMH proteins form dimers. Time-resolved tryptophan fluorescence experiments revealed no dramatic structural changes of the C-terminal segment upon the ligand binding. Taken together, the C-terminal segment of BMH proteins adopts a widely opened and extended conformation that makes difficult its folding into the ligand binding groove, thus increasing the apparent molecular size. It seems, therefore, that the C-terminal segment of BMH proteins does not function as an autoinhibitor.

摘要

酵母 14-3-3 蛋白同工型 BMH1 和 BMH2 具有明显不同的 C 末端尾部,这使它们与高等真核生物的同工型区分开来。它们的 C 端较长,含有一段未知功能的多聚谷氨酰胺延伸。现在已经明确,14-3-3 蛋白的 C 末端片段通过作为自身抑制剂发挥重要的调节作用,该抑制剂占据配体结合槽并阻止不合适配体的结合。酵母同工型是否也是如此尚不清楚。因此,我们使用各种生物物理技术研究了 BMH 蛋白 C 末端片段的构象行为。动态光散射、沉降速度、时间分辨荧光各向异性衰减和尺寸排阻色谱测量表明,与人类 14-3-3zeta 同工型相比,BMH 蛋白的分子明显更大。另一方面,沉降分析证实 BMH 蛋白形成二聚体。时间分辨色氨酸荧光实验表明,配体结合后 C 末端片段没有明显的结构变化。总之,BMH 蛋白的 C 末端片段采用广泛开放和延伸的构象,使其难以折叠到配体结合槽中,从而增加了表观分子大小。因此,BMH 蛋白的 C 末端片段似乎不起自身抑制剂的作用。

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