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Effect of pH and salt bridges on structural assembly: Molecular structures of the monomer and intertwined dimer of the Eps8 SH3 domain

机译:pH和盐桥对结构组装的影响:Eps8 SH3结构域的单体和缠结二聚体的分子结构

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摘要

The SH3 domain of Eps8 was previously found to form an intertwined, domain-swapped dimer. We report here a monomeric structure of the EPS8 SH3 domain obtained from crystals grown at low pH, as well as an improved domain-swapped dimer structure at 1.8 Å resolution. In the domain-swapped dimer the asymmetric unit contains two "hybrid-monomers." In the low pH form there are two independently folded SH3 molecules per asymmetric unit. The formation of intermolecular salt bridges is thought to be the reason for the formation of the dimer. On the basis of the monomer SH3 structure, it is argued that Eps8 SH3 should, in principle, bind to peptides containing a PxxP motif. Recently it was reported that Eps8 SH3 binds to a peptide with a PxxDY motif. Because the "SH3 fold" is conserved, alternate binding sites may be possible for the PxxDY motif to bind. The strand exchange or domain swap occurs at the n-src loops because the n-src loops are flexible. The thermal b-factors also indicate the flexible nature of n-src loops and a possible handle for domain swap initiation. Despite the loop swapping, the typical SH3 fold in both forms is conserved structurally. The interface of the acidic form of SH3 is stabilized by a tetragonal network of water molecules above hydrophobic residues. The intertwined dimer interface is stabilized by hydrophobic and aromatic stacking interactions in the core and by hydrophilic interactions on the surface.
机译:先前发现Eps8的SH3结构域形成了一个相互缠绕的结构域交换的二聚体。我们在这里报告从低pH值生长的晶体获得的EPS8 SH3域的单体结构,以及在1.8Å分辨率下改进的域交换二聚体结构。在域交换的二聚体中,不对称单元包含两个“杂化单体”。在低pH形式下,每个不对称单元有两个独立折叠的SH3分子。分子间盐桥的形成被认为是二聚体形成的原因。根据单体SH3的结构,有人认为Eps8 SH3原则上应与含有PxxP基序的肽结合。最近,据报道,Eps8 SH3与具有PxxDY基序的肽结合。因为“ SH3折叠”是保守的,所以PxxDY基序可以结合其他结合位点。链交换或域交换发生在n-src循环中,因为n-src循环是灵活的。热b因子还指示n-src循环的灵活性,以及​​域交换启动的可能句柄。尽管有环交换,但两种形式的典型SH3折叠在结构上都是保守的。 SH3的酸性形式的界面通过疏水残基上方的水分子四方网络来稳定。交缠的二聚体界面通过核心中的疏水和芳族堆积相互作用以及表面上的亲水相互作用而得以稳定。

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