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首页> 外文期刊>Journal of Molecular Biology >Water dynamics in the large cavity of three lipid-binding proteins monitored by (17)O magnetic relaxation dispersion.
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Water dynamics in the large cavity of three lipid-binding proteins monitored by (17)O magnetic relaxation dispersion.

机译:通过(17)O磁弛豫分散液监测三种脂质结合蛋白在大腔中的水动力学。

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摘要

Intracellular lipid-binding proteins contain a large binding cavity filled with water molecules. The role played by these water molecules in ligand binding is not well understood, but their energetic and dynamic properties must be important for protein function. Here, we use the magnetic relaxation dispersion (MRD) of the water 17O resonance to investigate the water molecules in the binding cavity of three different lipid-binding proteins: heart fatty acid-binding protein (H-FABP), ileal lipid-binding protein (I-LBP) and intestinal fatty acid-binding protein (I-FABP). Whereas about half of the crystallographically visible water molecules appear to be expelled by the ligand, we find that ligand binding actually increases the number of water molecules within the cavity. At 300 K, the water molecules in the cavity exchange positions on a time-scale of about 1ns and exchange with external water on longer time-scales (0.01-1 micros). Exchange of water molecules among hydration sites within the cavity shouldbe strongly coupled to ligand motion. Whereas a recent MD simulation indicates that the structure of the cavity water resembles a bulk water droplet, the present MRD results show that its dynamics is more than two orders of magnitude slower than in the bulk. These findings may have significant implications for the strength, specificity and kinetics of lipid binding.
机译:细胞内脂质结合蛋白包含一个充满水分子的大结合腔。这些水分子在配体结合中所起的作用尚不清楚,但是它们的能量和动力学特性对于蛋白质功能必不可少。在这里,我们使用水17O共振的磁弛豫弥散(MRD)来研究三种不同脂质结合蛋白:心脏脂肪酸结合蛋白(H-FABP),回肠脂质结合蛋白的结合腔中的水分子(I-LBP)和肠道脂肪酸结合蛋白(I-FABP)。尽管大约一半的晶体学上可见的水分子似乎被配体排出,但我们发现配体结合实际上增加了空腔中水分子的数量。在300 K时,空腔中的水分子在大约1ns的时间尺度上交换位置,并在更长的时间尺度(0.01-1微米)上与外部水交换。腔内水合部位之间的水分子交换应与配体运动密切相关。尽管最近的MD模拟表明腔体水的结构类似于大块水滴,但目前的MRD结果表明其动力学比大块水滴慢了两个数量级。这些发现可能对脂质结合的强度,特异性和动力学具有重要意义。

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