人类口蛋白的SPFH结构域上的一个隐磷酸盐结合袋,它调节一种新的纤维样自组装

IF 2.7 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY Current Research in Structural Biology Pub Date : 2022-01-01 DOI:10.1016/j.crstbi.2022.05.002
Koki Kataoka , Shota Suzuki , Takeshi Tenno , Natsuko Goda , Emi Hibino , Atsunori Oshima , Hidekazu Hiroaki
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引用次数: 1

摘要

人口蛋白(hSTOM)是红细胞膜骨架的一个组成部分,通过连接谱蛋白和肌动蛋白来维持膜的形状和硬度。hSTOM是一个蛋白家族的成员,在分子中心有一个单一的stomatin/prohibitin/flotillin/HflK (SPFH)结构域。尽管从古细菌到哺乳动物,SPFH结构域蛋白广泛分布,但其具体功能尚不清楚。在这项研究中,我们首先通过核磁共振确定了hSTOM(SPFH)的SPFH结构域的溶液结构。hSTOM(SPFH)的溶液结构与已有报道的小鼠的STOM SPFH结构域(mSTOM(SPFH))的晶体结构基本相同,只是表面存在一个小的亲水口袋。我们通过比较其带和不带磷酸盐离子的核磁共振光谱,确定了这个口袋是一个磷酸盐结合位点。同时,在常规的蛋白质NMR分析过程中,我们最终发现hSTOM(SPFH)在冻干后形成了一种独特的固体物质。冻干的hSTOM(SPFH)样品在生理缓冲液中缓慢溶解。有趣的是,它抵抗磷酸盐缓冲液的溶解。在电镜下,我们发现冻干的hSTOM(SPFH)形成了一个纤维样的组装体。最后,我们使用离心超滤装置成功地复制了hSTOM(SPFH)的原纤维样组装,从而表明增加的蛋白质浓度可能促进hSTOM(SPFH)自组装成原纤维形式。我们的观察可能有助于理解SPFH结构域的分子功能及其作为膜骨架组成部分参与的蛋白质寡聚化。(245字)。
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A cryptic phosphate-binding pocket on the SPFH domain of human stomatin that regulates a novel fibril-like self-assembly

Human stomatin (hSTOM) is a component of the membrane skeleton of erythrocytes that maintains the membrane's shape and stiffness through interconnecting spectrin and actin. hSTOM is a member of the protein family that possesses a single stomatin/prohibitin/flotillin/HflK (SPFH) domain at the center of the molecule. Although SPFH domain proteins are widely distributed from archaea to mammals, the detailed function of the domain remains unclear. In this study, we first determined the solution structure of the SPFH domain of hSTOM (hSTOM(SPFH)) via NMR. The solution structure of hSTOM(SPFH) is essentially identical to the already reported crystal structure of the STOM SPFH domain (mSTOM(SPFH)) of mice, except for the existence of a small hydrophilic pocket on the surface. We identified this pocket as a phosphate-binding site by comparing its NMR spectra with and without phosphate ions. Meanwhile, during the conventional process of protein NMR analysis, we eventually discovered that hSTOM(SPFH) formed a unique solid material after lyophilization. This lyophilized hSTOM(SPFH) sample was moderately slowly dissolved in a physiological buffer. Interestingly, it was resistant to dissolution against the phosphate buffer. We then found that the lyophilized hSTOM(SPFH) formed a fibril-like assembly under electron microscopy. Finally, we succeeded in reproducing this fibril-like assembly of hSTOM(SPFH) using a centrifugal ultrafiltration device, thus demonstrating that the increased protein concentration may promote self-assembly of hSTOM(SPFH) into fibril forms. Our observations may help understand the molecular function of the SPFH domain and its involvement in protein oligomerization as a component of the membrane skeleton. (245 words).

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