Zhong Zhixia, Chang Siwei A, Kalinowski Agnieszka, Wilson Katherine L, Dahl Kris Noel
Department of Chemical Engineering, Carnegie Mellon University, Pittsburgh, Pennsylvania.
Cell Mol Bioeng. 2010 Jun 1;3(2):139-150. doi: 10.1007/s12195-010-0121-3.
Nesprins are located at the outer and inner membranes of the nuclear envelope and help link the cytoskeleton to the nucleoskeleton. Nesprin-1α, located at the inner nuclear membrane, binds to A-type lamins and emerin and has homology to spectrin-repeat proteins. However, the mechanical and thermodynamic properties of the spectrin-like repeats (SLRs) of nesprin-1α and the potential structural contributions of the unique central domain were untested. In other spectrin superfamily proteins, tandem spectrin-repeat domains undergo cooperatively coupled folding and unfolding. We hypothesized that the large central domain, which interrupts SLRs and is conserved in other nesprin isoforms, might confer unique structural properties. To test this model we measured the thermal unfolding of nesprin-1α fragments using circular dichroism and dynamic light scattering. The SLRs in nesprin-1α were found to have structural and thermodynamic properties typical of spectrins. The central domain had relatively little secondary structure as an isolated fragment, but significantly stabilized larger SLR-containing molecules by increasing their overall helicity, thermal stability and cooperativity of folding. We suggest this domain, now termed the 'adaptive' domain (AD), also strengthens dimerization and inhibits unfolding. Further engineering of the isolated AD, and AD-containing nesprin molecules, may yield new information about the higher-order association of cooperative protein motifs.
核膜蛋白位于核膜的外膜和内膜,有助于将细胞骨架与核骨架连接起来。位于内核膜的核膜蛋白-1α与A型核纤层蛋白和emerin结合,与血影蛋白重复序列蛋白具有同源性。然而,核膜蛋白-1α的血影蛋白样重复序列(SLR)的力学和热力学性质以及独特中央结构域的潜在结构贡献尚未得到测试。在其他血影蛋白超家族蛋白中,串联血影蛋白重复结构域经历协同偶联的折叠和去折叠。我们推测,打断SLR且在其他核膜蛋白异构体中保守的大中央结构域可能赋予独特的结构特性。为了验证该模型,我们使用圆二色性和动态光散射测量了核膜蛋白-1α片段的热去折叠。发现核膜蛋白-1α中的SLR具有血影蛋白典型的结构和热力学性质。中央结构域作为一个孤立片段时二级结构相对较少,但通过增加其整体螺旋度、热稳定性和折叠协同性,显著稳定了更大的含SLR分子。我们认为这个现在被称为“适应性”结构域(AD)的结构域,也增强了二聚化并抑制去折叠。对孤立的AD以及含AD的核膜蛋白分子进行进一步改造,可能会产生有关协同蛋白基序高阶缔合的新信息。