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BRMS1 核输出信号和 SNX6 相互作用区域的结构揭示了由反平行卷曲螺旋形成的六聚体。

The structure of BRMS1 nuclear export signal and SNX6 interacting region reveals a hexamer formed by antiparallel coiled coils.

机构信息

Instituto de Biomedicina de Valencia (IBV-CSIC), C/ Jaime Roig 11, 46010 Valencia, Spain.

出版信息

J Mol Biol. 2011 Sep 2;411(5):1114-27. doi: 10.1016/j.jmb.2011.07.006. Epub 2011 Jul 18.

Abstract

We present here the first structural report derived from breast cancer metastasis suppressor 1 (BRMS1), a member of the metastasis suppressor protein group, which, during recent years, have drawn much attention since they suppress metastasis without affecting the growth of the primary tumor. The relevance of the predicted N-terminal coiled coil on the molecular recognition of some of the BRMS1 partners, on its cellular localization and on the role of BRMS1 biological functions such as transcriptional repression prompted us to characterize its three-dimensional structure by X-ray crystallography. The structure of BRMS1 N-terminal region reveals that residues 51-98 form an antiparallel coiled-coil motif and, also, that it has the capability of homo-oligomerizing in a hexameric conformation by forming a trimer of coiled-coil dimers. We have also performed hydrodynamic experiments that strongly supported the prevalence in solution of this quaternary structure for BRMS1(51-98). This work explores the structural features of BRMS1 N-terminal region to help clarify the role of this area in the context of the full-length protein. Our crystallographic and biophysical results suggest that the biological function of BRMS1 may be affected by its ability to promote molecular clustering through its N-terminal coiled-coil region.

摘要

我们在此呈现了第一个源自乳腺癌转移抑制因子 1(BRMS1)的结构报告,BRMS1 是转移抑制蛋白家族的成员之一。近年来,由于其在不影响原发性肿瘤生长的情况下抑制转移而备受关注。预测的 N 端卷曲螺旋对 BRMS1 部分伴侣的分子识别、细胞定位以及 BRMS1 生物学功能(如转录抑制)的相关性促使我们通过 X 射线晶体学对其三维结构进行了表征。BRMS1 N 端区域的结构揭示了残基 51-98 形成了一个反平行的卷曲螺旋 motif,并且还具有通过形成三聚体卷曲螺旋二聚体形成六聚体构象的同型寡聚化能力。我们还进行了流体力学实验,这强烈支持了 BRMS1(51-98)在溶液中这种四级结构的普遍性。这项工作探索了 BRMS1 N 端区域的结构特征,以帮助阐明该区域在全长蛋白中的作用。我们的晶体学和生物物理结果表明,BRMS1 的生物学功能可能受到其通过 N 端卷曲螺旋区域促进分子聚集的能力的影响。

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