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Temperature Dependence of Backbone Dynamics in Human Ileal Bile Acid-Binding Protein: Implications for the Mechanism of Ligand Binding

机译:人回肠胆汁酸结合蛋白的骨干动力学的温度依赖性:配体结合机制的含义。

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摘要

Human ileal bile acid-binding protein (I-BABP), a member of the family of intracellular lipid binding proteins plays a key role in the cellular trafficking and metabolic regulation of bile salts. The protein has two internal and, according to a recent study, an additional superficial binding site and binds di- and trihydroxy bile salts with positive cooperativity and a high degree of site-selectivity. Previously, in the apo form, we have identified an extensive network of conformational fluctuations on the millisecond time scale, which cease upon ligation. Additionally, ligand binding at room temperature was found to be accompanied by a slight rigidification of picosecond-nanosecond (ps-ns) backbone flexibility. In the current study, temperature-dependent N-15 NMR spin relaxation measurements were used to gain more insight into the role of dynamics in human I-BABP-bile salt recognition. According to our analysis, residues sensing a conformational exchange in the apo state can be grouped into two clusters with slightly different exchange rates. The entropy-enthalpy compensation observed for both clusters suggests a disorder-order transition between a ground and a sparsely populated higher energy state in the absence of ligands. Analysis of the faster, ps-ns motion of N-15-H-1 bond vectors indicates an unusual nonlinear temperature-dependence for both ligation states. Intriguingly, while bile salt binding results in a more uniform response to temperature change throughout the protein, the temperature derivative of the generalized order parameter shows different responses to temperature increase for the two forms of the protein in the investigated temperature range. Analysis of both slow and fast motions in human I-BABP indicates largely different energy landscapes for the apo and halo states suggesting that optimization of binding interactions might be achieved by altering the dynamic behavior of specific segments in the protein.
机译:人回肠胆汁酸结合蛋白(I-BABP)是细胞内脂质结合蛋白家族的成员,在胆汁盐的细胞运输和代谢调节中起关键作用。该蛋白质具有两个内部结构,并且根据最近的研究,还具有一个附加的表面结合位点,并以积极的协同作用和高度的位点选择性结合二和三羟基胆汁盐。以前,以载脂蛋白形式,我们已经确定了毫秒级的构象波动的广泛网络,该网络在结扎后就停止了。另外,发现在室温下配体结合伴随有皮秒-纳秒(ps-ns)主链柔性的轻微硬化。在当前的研究中,使用温度依赖性的N-15 NMR自旋弛豫测量来深入了解动力学在人I-BABP胆汁盐识别中的作用。根据我们的分析,在apo状态下感知构象交换的残基可以分为两个簇,交换速率略有不同。对两个簇观察到的熵-焓补偿表明,在没有配体的情况下,地面与稀疏的高能态之间存在无序变化。对N-15-H-1键矢量的更快ps-ns运动的分析表明,两种连接状态均具有异常的非线性温度依赖性。有趣的是,尽管胆汁盐结合导致整个蛋白质对温度变化的响应更加均匀,但广义阶次参数的温度导数在所研究的温度范围内显示了两种形式的蛋白质对温度升高的不同响应。对人I-BABP的慢速运动和快速运动的分析表明,载脂蛋白和晕环状态的能谱差异很大,这表明可以通过改变蛋白质中特定片段的动态行为来实现结合相互作用的优化。

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